adsprpc.c 247 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright (c) 2012-2021, The Linux Foundation. All rights reserved.
  4. * Copyright (c) 2022-2023, Qualcomm Innovation Center, Inc. All rights reserved.
  5. */
  6. /* Uncomment this block to log an error on every VERIFY failure */
  7. /*
  8. * #ifndef VERIFY_PRINT_ERROR
  9. * #define VERIFY_PRINT_ERROR
  10. * #endif
  11. */
  12. #include <linux/dma-buf.h>
  13. #include <linux/dma-mapping.h>
  14. #include <linux/qcom-dma-mapping.h>
  15. #include <linux/slab.h>
  16. #include <linux/completion.h>
  17. #include <linux/pagemap.h>
  18. #include <linux/mm.h>
  19. #include <linux/wait.h>
  20. #include <linux/sched.h>
  21. #include <linux/module.h>
  22. #include <linux/list.h>
  23. #include <linux/arch_topology.h>
  24. #include <linux/hash.h>
  25. #include <linux/msm_ion.h>
  26. #include <linux/qcom_scm.h>
  27. #include <linux/ipc_logging.h>
  28. #include <linux/remoteproc/qcom_rproc.h>
  29. #include <linux/scatterlist.h>
  30. #include <linux/uaccess.h>
  31. #include <linux/device.h>
  32. #include <linux/of.h>
  33. #include <linux/of_address.h>
  34. #include <linux/of_platform.h>
  35. #include <linux/dma-map-ops.h>
  36. #include <linux/cma.h>
  37. #include <linux/sort.h>
  38. #include <linux/cred.h>
  39. #include <linux/msm_dma_iommu_mapping.h>
  40. #include "adsprpc_compat.h"
  41. #include "adsprpc_shared.h"
  42. #include <soc/qcom/qcom_ramdump.h>
  43. #include <soc/qcom/minidump.h>
  44. #include <soc/qcom/secure_buffer.h>
  45. #include <linux/delay.h>
  46. #include <linux/debugfs.h>
  47. #include <linux/pm_qos.h>
  48. #include <linux/stat.h>
  49. #include <linux/preempt.h>
  50. #include <linux/of_reserved_mem.h>
  51. #include <linux/soc/qcom/pdr.h>
  52. #include <linux/soc/qcom/qmi.h>
  53. #include <linux/mem-buf.h>
  54. #include <linux/iommu.h>
  55. #include <asm/arch_timer.h>
  56. #include <linux/genalloc.h>
  57. #include <soc/qcom/socinfo.h>
  58. #ifdef CONFIG_HIBERNATION
  59. #include <linux/suspend.h>
  60. #include <linux/notifier.h>
  61. #endif
  62. #define CREATE_TRACE_POINTS
  63. #include "fastrpc_trace.h"
  64. #ifdef CONFIG_MSM_ADSPRPC_TRUSTED
  65. #include "../include/linux/fastrpc.h"
  66. #else
  67. #include "fastrpc.h"
  68. #endif
  69. #define TZ_PIL_PROTECT_MEM_SUBSYS_ID 0x0C
  70. #define TZ_PIL_CLEAR_PROTECT_MEM_SUBSYS_ID 0x0D
  71. #define TZ_PIL_AUTH_QDSP6_PROC 1
  72. #define FASTRPC_ENOSUCH 39
  73. #define VMID_SSC_Q6 5
  74. #define VMID_ADSP_Q6 6
  75. #define DEBUGFS_SIZE 3072
  76. #define PID_SIZE 10
  77. #define AUDIO_PDR_ADSP_DTSI_PROPERTY_NAME "qcom,fastrpc-adsp-audio-pdr"
  78. #define AUDIO_PDR_SERVICE_LOCATION_CLIENT_NAME "audio_pdr_adsprpc"
  79. #define AUDIO_PDR_ADSP_SERVICE_NAME "avs/audio"
  80. #define ADSP_AUDIOPD_NAME "msm/adsp/audio_pd"
  81. #define SENSORS_PDR_ADSP_DTSI_PROPERTY_NAME "qcom,fastrpc-adsp-sensors-pdr"
  82. #define SENSORS_PDR_ADSP_SERVICE_LOCATION_CLIENT_NAME "sensors_pdr_adsprpc"
  83. #define SENSORS_PDR_ADSP_SERVICE_NAME "tms/servreg"
  84. #define ADSP_SENSORPD_NAME "msm/adsp/sensor_pd"
  85. #define SENSORS_PDR_SLPI_DTSI_PROPERTY_NAME "qcom,fastrpc-slpi-sensors-pdr"
  86. #define SENSORS_PDR_SLPI_SERVICE_LOCATION_CLIENT_NAME "sensors_pdr_sdsprpc"
  87. #define SENSORS_PDR_SLPI_SERVICE_NAME SENSORS_PDR_ADSP_SERVICE_NAME
  88. #define SLPI_SENSORPD_NAME "msm/slpi/sensor_pd"
  89. #define FASTRPC_SECURE_WAKE_SOURCE_CLIENT_NAME "adsprpc-secure"
  90. #define FASTRPC_NON_SECURE_WAKE_SOURCE_CLIENT_NAME "adsprpc-non_secure"
  91. #define RPC_TIMEOUT (5 * HZ)
  92. #define BALIGN 128
  93. #define M_FDLIST (16)
  94. #define M_CRCLIST (64)
  95. #define M_KERNEL_PERF_LIST (PERF_KEY_MAX)
  96. #define M_DSP_PERF_LIST (12)
  97. #define FASTRPC_CTX_MAGIC (0xbeeddeed)
  98. /* Process status notifications from DSP will be sent with this unique context */
  99. #define FASTRPC_NOTIF_CTX_RESERVED 0xABCDABCD
  100. #define FASTRPC_CTX_JOB_TYPE_POS (4)
  101. #define FASTRPC_CTX_TABLE_IDX_POS (6)
  102. #define FASTRPC_CTX_JOBID_POS (16)
  103. #define FASTRPC_CTX_TABLE_IDX_MASK \
  104. ((FASTRPC_CTX_MAX - 1) << FASTRPC_CTX_TABLE_IDX_POS)
  105. #define FASTRPC_ASYNC_JOB_MASK (1)
  106. #define GET_TABLE_IDX_FROM_CTXID(ctxid) \
  107. ((ctxid & FASTRPC_CTX_TABLE_IDX_MASK) >> FASTRPC_CTX_TABLE_IDX_POS)
  108. /* Reserve few entries in context table for critical kernel and static RPC
  109. * calls to avoid user invocations from exhausting all entries.
  110. */
  111. #define NUM_KERNEL_AND_STATIC_ONLY_CONTEXTS (70)
  112. /* Maximum number of pending contexts per remote session */
  113. #define MAX_PENDING_CTX_PER_SESSION (64)
  114. #define NUM_DEVICES 2 /* adsprpc-smd, adsprpc-smd-secure */
  115. #define MINOR_NUM_DEV 0
  116. #define MINOR_NUM_SECURE_DEV 1
  117. #define NON_SECURE_CHANNEL 0
  118. #define SECURE_CHANNEL 1
  119. #define IS_CACHE_ALIGNED(x) (((x) & ((L1_CACHE_BYTES)-1)) == 0)
  120. #ifndef ION_FLAG_CACHED
  121. #define ION_FLAG_CACHED (1)
  122. #endif
  123. #ifndef topology_cluster_id
  124. #define topology_cluster_id(cpu) topology_physical_package_id(cpu)
  125. #endif
  126. /*
  127. * ctxid of every message is OR-ed with fastrpc_remote_pd_type before
  128. * it is sent to DSP. So mask 2 LSBs to retrieve actual context
  129. */
  130. #define CONTEXT_PD_CHECK (3)
  131. #define GET_CTXID_FROM_RSP_CTX(rsp_ctx) (rsp_ctx & ~CONTEXT_PD_CHECK)
  132. #define RH_CID ADSP_DOMAIN_ID
  133. #define FASTRPC_STATIC_HANDLE_PROCESS_GROUP (1)
  134. #define FASTRPC_STATIC_HANDLE_DSP_UTILITIES (2)
  135. #define FASTRPC_STATIC_HANDLE_LISTENER (3)
  136. #define FASTRPC_STATIC_HANDLE_MAX (20)
  137. #define FASTRPC_LATENCY_CTRL_ENB (1)
  138. /* Maximum PM timeout that can be voted through fastrpc */
  139. #define MAX_PM_TIMEOUT_MS 50
  140. /* timeout in us for busy polling after early response from remote processor */
  141. #define FASTRPC_POLL_TIME (4000)
  142. /* timeout in us for polling until memory barrier */
  143. #define FASTRPC_POLL_TIME_MEM_UPDATE (500)
  144. /* timeout in us for polling completion signal after user early hint */
  145. #define FASTRPC_USER_EARLY_HINT_TIMEOUT (500)
  146. /* Early wake up poll completion number received from remote processor */
  147. #define FASTRPC_EARLY_WAKEUP_POLL (0xabbccdde)
  148. /* Poll response number from remote processor for call completion */
  149. #define FASTRPC_POLL_RESPONSE (0xdecaf)
  150. /* latency in us, early wake up signal used below this value */
  151. #define FASTRPC_EARLY_WAKEUP_LATENCY (200)
  152. /* response version number */
  153. #define FASTRPC_RSP_VERSION2 (2)
  154. /* CPU feature information to DSP */
  155. #define FASTRPC_CPUINFO_DEFAULT (0)
  156. #define FASTRPC_CPUINFO_EARLY_WAKEUP (1)
  157. #define INIT_FILELEN_MAX (2*1024*1024)
  158. #define INIT_MEMLEN_MAX_STATIC (8*1024*1024)
  159. #define INIT_MEMLEN_MAX_DYNAMIC (200*1024*1024)
  160. #define INIT_MEMLEN_MIN_DYNAMIC (3*1024*1024)
  161. #define MAX_CACHE_BUF_SIZE (8*1024*1024)
  162. /* Maximum buffers cached in cached buffer list */
  163. #define MAX_CACHED_BUFS (32)
  164. /* Max no. of persistent headers pre-allocated per process */
  165. #define MAX_PERSISTENT_HEADERS (25)
  166. /* Max value of unique fastrpc tgid */
  167. #define MAX_FRPC_TGID 256
  168. #define PERF_CAPABILITY_SUPPORT (1 << 1)
  169. #define KERNEL_ERROR_CODE_V1_SUPPORT 1
  170. #define USERSPACE_ALLOCATION_SUPPORT 1
  171. #define DSPSIGNAL_SUPPORT 1
  172. #define MD_GMSG_BUFFER (1000)
  173. #define MINI_DUMP_DBG_SIZE (200*1024)
  174. /* Max number of region supported */
  175. #define MAX_UNIQUE_ID 5
  176. /* Convert the 19.2MHz clock count to micro-seconds */
  177. #define CONVERT_CNT_TO_US(CNT) (CNT * 10ull / 192ull)
  178. #define FASTRPC_USER_PD_FORCE_KILL 2
  179. /*
  180. * No. of pages shared with DSP during process init
  181. * First page for init-mem and second page for proc-attrs
  182. */
  183. #define PAGESLEN_WITH_SHAREDBUF 2
  184. /* Unique index flag used for mini dump */
  185. static int md_unique_index_flag[MAX_UNIQUE_ID] = { 0, 0, 0, 0, 0 };
  186. /* Array to keep track unique tgid_frpc usage */
  187. static bool frpc_tgid_usage_array[MAX_FRPC_TGID] = {0};
  188. /* Fastrpc remote process attributes */
  189. enum fastrpc_proc_attr {
  190. /* Macro for Debug attr */
  191. FASTRPC_MODE_DEBUG = 1 << 0,
  192. /* Macro for Ptrace */
  193. FASTRPC_MODE_PTRACE = 1 << 1,
  194. /* Macro for CRC Check */
  195. FASTRPC_MODE_CRC = 1 << 2,
  196. /* Macro for Unsigned PD */
  197. FASTRPC_MODE_UNSIGNED_MODULE = 1 << 3,
  198. /* Macro for Adaptive QoS */
  199. FASTRPC_MODE_ADAPTIVE_QOS = 1 << 4,
  200. /* Macro for System Process */
  201. FASTRPC_MODE_SYSTEM_PROCESS = 1 << 5,
  202. /* Macro for Prvileged Process */
  203. FASTRPC_MODE_PRIVILEGED = (1 << 6),
  204. /* Macro for system unsigned PD */
  205. FASTRPC_MODE_SYSTEM_UNSIGNED_PD = 1 << 17,
  206. };
  207. /* FastRPC remote subsystem state*/
  208. enum fastrpc_remote_subsys_state {
  209. SUBSYSTEM_RESTARTING = 0,
  210. SUBSYSTEM_DOWN,
  211. SUBSYSTEM_UP,
  212. };
  213. #define PERF_END ((void)0)
  214. #define PERF(enb, cnt, ff) \
  215. {\
  216. struct timespec64 startT = {0};\
  217. uint64_t *counter = cnt;\
  218. if (enb && counter) {\
  219. ktime_get_real_ts64(&startT);\
  220. } \
  221. ff ;\
  222. if (enb && counter) {\
  223. *counter += getnstimediff(&startT);\
  224. } \
  225. }
  226. #define GET_COUNTER(perf_ptr, offset) \
  227. (perf_ptr != NULL ?\
  228. (((offset >= 0) && (offset < PERF_KEY_MAX)) ?\
  229. (uint64_t *)(perf_ptr + offset)\
  230. : (uint64_t *)NULL) : (uint64_t *)NULL)
  231. /* Macro for comparing local client and PD names with those from callback */
  232. #define COMPARE_SERVICE_LOCATOR_NAMES(cb_client, local_client, \
  233. cb_pdname, local_pdname) \
  234. ((!strcmp(cb_client, local_client)) \
  235. && (!strcmp(cb_pdname, local_pdname)))
  236. #define IS_ASYNC_FASTRPC_AVAILABLE (1)
  237. /* Use the second definition to enable additional dspsignal debug logging */
  238. #define DSPSIGNAL_VERBOSE(x, ...)
  239. /*#define DSPSIGNAL_VERBOSE ADSPRPC_INFO*/
  240. MODULE_IMPORT_NS(DMA_BUF);
  241. static struct dentry *debugfs_root;
  242. static struct dentry *debugfs_global_file;
  243. static inline uint64_t buf_page_start(uint64_t buf)
  244. {
  245. uint64_t start = (uint64_t) buf & PAGE_MASK;
  246. return start;
  247. }
  248. static inline uint64_t buf_page_offset(uint64_t buf)
  249. {
  250. uint64_t offset = (uint64_t) buf & (PAGE_SIZE - 1);
  251. return offset;
  252. }
  253. static inline uint64_t buf_num_pages(uint64_t buf, size_t len)
  254. {
  255. uint64_t start = buf_page_start(buf) >> PAGE_SHIFT;
  256. uint64_t end = (((uint64_t) buf + len - 1) & PAGE_MASK) >> PAGE_SHIFT;
  257. uint64_t nPages = end - start + 1;
  258. return nPages;
  259. }
  260. static inline uint64_t buf_page_size(uint32_t size)
  261. {
  262. uint64_t sz = (size + (PAGE_SIZE - 1)) & PAGE_MASK;
  263. return sz > PAGE_SIZE ? sz : PAGE_SIZE;
  264. }
  265. static inline void *uint64_to_ptr(uint64_t addr)
  266. {
  267. void *ptr = (void *)((uintptr_t)addr);
  268. return ptr;
  269. }
  270. static inline uint64_t ptr_to_uint64(void *ptr)
  271. {
  272. uint64_t addr = (uint64_t)((uintptr_t)ptr);
  273. return addr;
  274. }
  275. static struct fastrpc_apps gfa;
  276. static struct fastrpc_channel_ctx gcinfo[NUM_CHANNELS] = {
  277. {
  278. .name = "adsprpc-smd",
  279. .subsys = "lpass",
  280. .spd = {
  281. {
  282. .servloc_name =
  283. AUDIO_PDR_SERVICE_LOCATION_CLIENT_NAME,
  284. .spdname = ADSP_AUDIOPD_NAME,
  285. .cid = ADSP_DOMAIN_ID,
  286. },
  287. {
  288. .servloc_name =
  289. SENSORS_PDR_ADSP_SERVICE_LOCATION_CLIENT_NAME,
  290. .spdname = ADSP_SENSORPD_NAME,
  291. .cid = ADSP_DOMAIN_ID,
  292. }
  293. },
  294. .cpuinfo_todsp = FASTRPC_CPUINFO_DEFAULT,
  295. .cpuinfo_status = false,
  296. },
  297. {
  298. .name = "mdsprpc-smd",
  299. .subsys = "mpss",
  300. .spd = {
  301. {
  302. .cid = MDSP_DOMAIN_ID,
  303. }
  304. },
  305. .cpuinfo_todsp = FASTRPC_CPUINFO_DEFAULT,
  306. .cpuinfo_status = false,
  307. },
  308. {
  309. .name = "sdsprpc-smd",
  310. .subsys = "dsps",
  311. .spd = {
  312. {
  313. .servloc_name =
  314. SENSORS_PDR_SLPI_SERVICE_LOCATION_CLIENT_NAME,
  315. .spdname = SLPI_SENSORPD_NAME,
  316. .cid = SDSP_DOMAIN_ID,
  317. }
  318. },
  319. .cpuinfo_todsp = FASTRPC_CPUINFO_DEFAULT,
  320. .cpuinfo_status = false,
  321. },
  322. {
  323. .name = "cdsprpc-smd",
  324. .subsys = "cdsp",
  325. .spd = {
  326. {
  327. .cid = CDSP_DOMAIN_ID,
  328. }
  329. },
  330. .cpuinfo_todsp = FASTRPC_CPUINFO_EARLY_WAKEUP,
  331. .cpuinfo_status = false,
  332. },
  333. };
  334. static uint32_t kernel_capabilities[FASTRPC_MAX_ATTRIBUTES -
  335. FASTRPC_MAX_DSP_ATTRIBUTES] = {
  336. PERF_CAPABILITY_SUPPORT,
  337. /* PERF_LOGGING_V2_SUPPORT feature is supported, unsupported = 0 */
  338. KERNEL_ERROR_CODE_V1_SUPPORT,
  339. /* Fastrpc Driver error code changes present */
  340. USERSPACE_ALLOCATION_SUPPORT,
  341. /* Userspace allocation allowed for DSP memory request*/
  342. DSPSIGNAL_SUPPORT
  343. /* Lightweight driver-based signaling */
  344. };
  345. static inline void fastrpc_pm_awake(struct fastrpc_file *fl, int channel_type);
  346. static int fastrpc_mem_map_to_dsp(struct fastrpc_file *fl, int fd, int offset,
  347. uint32_t flags, uintptr_t va, uint64_t phys,
  348. size_t size, uintptr_t *raddr);
  349. static inline void fastrpc_update_rxmsg_buf(struct fastrpc_channel_ctx *chan,
  350. uint64_t ctx, int retval, uint32_t rsp_flags,
  351. uint32_t early_wake_time, uint32_t ver, int64_t ns, uint64_t xo_time_in_us);
  352. static int fastrpc_file_get(struct fastrpc_file *fl);
  353. static void fastrpc_file_put(struct fastrpc_file *fl);
  354. /**
  355. * fastrpc_device_create - Create device for the fastrpc process file
  356. * @fl : Fastrpc process file
  357. * Returns: 0 on Success
  358. */
  359. static int fastrpc_device_create(struct fastrpc_file *fl);
  360. static inline int64_t getnstimediff(struct timespec64 *start)
  361. {
  362. int64_t ns;
  363. struct timespec64 ts, b;
  364. ktime_get_real_ts64(&ts);
  365. b = timespec64_sub(ts, *start);
  366. ns = timespec64_to_ns(&b);
  367. return ns;
  368. }
  369. /**
  370. * get_timestamp_in_ns - Gets time of day in nanoseconds
  371. *
  372. * Returns: Timestamp in nanoseconds
  373. */
  374. static inline int64_t get_timestamp_in_ns(void)
  375. {
  376. int64_t ns = 0;
  377. struct timespec64 ts;
  378. ktime_get_real_ts64(&ts);
  379. ns = timespec64_to_ns(&ts);
  380. return ns;
  381. }
  382. static inline int poll_for_remote_response(struct smq_invoke_ctx *ctx, uint32_t timeout)
  383. {
  384. int err = -EIO;
  385. uint32_t sc = ctx->sc, ii = 0, jj = 0;
  386. struct smq_invoke_buf *list;
  387. struct smq_phy_page *pages;
  388. uint64_t *fdlist = NULL;
  389. uint32_t *crclist = NULL, *poll = NULL;
  390. unsigned int inbufs, outbufs, handles;
  391. /* calculate poll memory location */
  392. inbufs = REMOTE_SCALARS_INBUFS(sc);
  393. outbufs = REMOTE_SCALARS_OUTBUFS(sc);
  394. handles = REMOTE_SCALARS_INHANDLES(sc) + REMOTE_SCALARS_OUTHANDLES(sc);
  395. list = smq_invoke_buf_start(ctx->rpra, sc);
  396. pages = smq_phy_page_start(sc, list);
  397. fdlist = (uint64_t *)(pages + inbufs + outbufs + handles);
  398. crclist = (uint32_t *)(fdlist + M_FDLIST);
  399. poll = (uint32_t *)(crclist + M_CRCLIST);
  400. /* poll on memory for DSP response. Return failure on timeout */
  401. for (ii = 0, jj = 0; ii < timeout; ii++, jj++) {
  402. if (*poll == FASTRPC_EARLY_WAKEUP_POLL) {
  403. /* Remote processor sent early response */
  404. err = 0;
  405. break;
  406. } else if (*poll == FASTRPC_POLL_RESPONSE) {
  407. /* Remote processor sent poll response to complete the call */
  408. err = 0;
  409. ctx->is_work_done = true;
  410. ctx->retval = 0;
  411. /* Update DSP response history */
  412. fastrpc_update_rxmsg_buf(&gfa.channel[ctx->fl->cid],
  413. ctx->msg.invoke.header.ctx, 0, POLL_MODE, 0,
  414. FASTRPC_RSP_VERSION2, get_timestamp_in_ns(),
  415. CONVERT_CNT_TO_US(__arch_counter_get_cntvct()));
  416. break;
  417. }
  418. if (jj == FASTRPC_POLL_TIME_MEM_UPDATE) {
  419. /* Wait for DSP to finish updating poll memory */
  420. rmb();
  421. jj = 0;
  422. }
  423. udelay(1);
  424. }
  425. return err;
  426. }
  427. enum interrupted_state {
  428. DEFAULT_STATE = 0,
  429. INTERRUPTED_STATE = 1,
  430. RESTORED_STATE = 2,
  431. };
  432. /**
  433. * fastrpc_update_txmsg_buf - Update history of sent glink messages
  434. * @msg : Pointer to RPC message to remote subsystem
  435. * @transport_send_err : Error from transport
  436. * @ns : Timestamp (in ns) of sent message
  437. * @xo_time_in_us : XO Timestamp (in us) of sent message
  438. * @ctx : invoke ctx
  439. * @interrupted : 0/1/2 (default/interrupted/restored)
  440. *
  441. * Returns none
  442. */
  443. static inline void fastrpc_update_txmsg_buf(struct smq_msg *msg,
  444. int transport_send_err, int64_t ns, uint64_t xo_time_in_us,
  445. struct smq_invoke_ctx *ctx, enum interrupted_state interrupted)
  446. {
  447. unsigned long flags = 0;
  448. unsigned int tx_index = 0;
  449. struct fastrpc_tx_msg *tx_msg = NULL;
  450. struct fastrpc_channel_ctx *chan = NULL;
  451. struct fastrpc_file *fl = ctx->fl;
  452. int err = 0, cid = -1;
  453. if (!fl) {
  454. err = -EBADF;
  455. goto bail;
  456. }
  457. cid = fl->cid;
  458. VERIFY(err, VALID_FASTRPC_CID(cid));
  459. if (err) {
  460. err = -ECHRNG;
  461. goto bail;
  462. }
  463. chan = &fl->apps->channel[cid];
  464. spin_lock_irqsave(&chan->gmsg_log.lock, flags);
  465. if (interrupted){
  466. if (ctx->tx_index >= 0 && ctx->tx_index < GLINK_MSG_HISTORY_LEN) {
  467. tx_msg = &chan->gmsg_log.tx_msgs[ctx->tx_index];
  468. if (tx_msg->msg.invoke.header.ctx == ctx->msg.invoke.header.ctx) {
  469. tx_msg->xo_time_in_us_interrupted = ctx->xo_time_in_us_interrupted;
  470. tx_msg->xo_time_in_us_restored = ctx->xo_time_in_us_restored;
  471. }
  472. }
  473. } else {
  474. tx_index = chan->gmsg_log.tx_index;
  475. ctx->tx_index = tx_index;
  476. tx_msg = &chan->gmsg_log.tx_msgs[tx_index];
  477. memcpy(&tx_msg->msg, msg, sizeof(struct smq_msg));
  478. tx_msg->transport_send_err = transport_send_err;
  479. tx_msg->ns = ns;
  480. tx_msg->xo_time_in_us = xo_time_in_us;
  481. tx_index++;
  482. chan->gmsg_log.tx_index =
  483. (tx_index > (GLINK_MSG_HISTORY_LEN - 1)) ? 0 : tx_index;
  484. }
  485. spin_unlock_irqrestore(&chan->gmsg_log.lock, flags);
  486. bail:
  487. if (err)
  488. ADSPRPC_ERR("adsprpc: %s: unable to update txmsg buf (err %d) for ctx: 0x%x\n",
  489. __func__, err, ctx->msg.invoke.header.ctx);
  490. }
  491. /**
  492. * fastrpc_update_rxmsg_buf - Update history of received glink responses
  493. * @chan : Channel context
  494. * @ctx : Context of received response from DSP
  495. * @retval : Return value for RPC call
  496. * @rsp_flags : Response type
  497. * @early_wake_time : Poll time for early wakeup
  498. * @ver : Version of response
  499. * @ns : Timestamp (in ns) of response
  500. * @xo_time_in_us : XO Timestamp (in us) of response
  501. *
  502. * Returns none
  503. */
  504. static inline void fastrpc_update_rxmsg_buf(struct fastrpc_channel_ctx *chan,
  505. uint64_t ctx, int retval, uint32_t rsp_flags,
  506. uint32_t early_wake_time, uint32_t ver, int64_t ns, uint64_t xo_time_in_us)
  507. {
  508. unsigned long flags = 0;
  509. unsigned int rx_index = 0;
  510. struct fastrpc_rx_msg *rx_msg = NULL;
  511. struct smq_invoke_rspv2 *rsp = NULL;
  512. spin_lock_irqsave(&chan->gmsg_log.lock, flags);
  513. rx_index = chan->gmsg_log.rx_index;
  514. rx_msg = &chan->gmsg_log.rx_msgs[rx_index];
  515. rsp = &rx_msg->rsp;
  516. rsp->ctx = ctx;
  517. rsp->retval = retval;
  518. rsp->flags = rsp_flags;
  519. rsp->early_wake_time = early_wake_time;
  520. rsp->version = ver;
  521. rx_msg->ns = ns;
  522. rx_msg->xo_time_in_us = xo_time_in_us;
  523. rx_index++;
  524. chan->gmsg_log.rx_index =
  525. (rx_index > (GLINK_MSG_HISTORY_LEN - 1)) ? 0 : rx_index;
  526. spin_unlock_irqrestore(&chan->gmsg_log.lock, flags);
  527. }
  528. static inline int get_unique_index(void)
  529. {
  530. int index = -1;
  531. mutex_lock(&gfa.mut_uid);
  532. for (index = 0; index < MAX_UNIQUE_ID; index++) {
  533. if (md_unique_index_flag[index] == 0) {
  534. md_unique_index_flag[index] = 1;
  535. mutex_unlock(&gfa.mut_uid);
  536. return index;
  537. }
  538. }
  539. mutex_unlock(&gfa.mut_uid);
  540. return index;
  541. }
  542. static inline void reset_unique_index(int index)
  543. {
  544. mutex_lock(&gfa.mut_uid);
  545. if (index > -1 && index < MAX_UNIQUE_ID)
  546. md_unique_index_flag[index] = 0;
  547. mutex_unlock(&gfa.mut_uid);
  548. }
  549. /**
  550. * fastrpc_minidump_add_region - Add mini dump region
  551. * @fastrpc_mmap : Input structure mmap
  552. *
  553. * Returns int
  554. */
  555. static int fastrpc_minidump_add_region(struct fastrpc_mmap *map)
  556. {
  557. int err = 0, ret_val = 0, md_index = 0;
  558. struct md_region md_entry;
  559. md_index = get_unique_index();
  560. if (md_index > -1 && md_index < MAX_UNIQUE_ID) {
  561. scnprintf(md_entry.name, MAX_NAME_LENGTH, "FRPC_%d", md_index);
  562. md_entry.virt_addr = map->va;
  563. md_entry.phys_addr = map->phys;
  564. md_entry.size = map->size;
  565. ret_val = msm_minidump_add_region(&md_entry);
  566. if (ret_val < 0) {
  567. ADSPRPC_ERR(
  568. "Failed to add/update CMA to Minidump for phys: 0x%llx, size: %zu, md_index %d, md_entry.name %s\n",
  569. map->phys,
  570. map->size, md_index,
  571. md_entry.name);
  572. reset_unique_index(md_index);
  573. err = ret_val;
  574. } else {
  575. map->frpc_md_index = md_index;
  576. }
  577. } else {
  578. pr_warn("failed to generate valid unique id for mini dump : %d\n", md_index);
  579. }
  580. return err;
  581. }
  582. /**
  583. * fastrpc_minidump_remove_region - Remove mini dump region if added
  584. * @fastrpc_mmap : Input structure mmap
  585. *
  586. * Returns int
  587. */
  588. static int fastrpc_minidump_remove_region(struct fastrpc_mmap *map)
  589. {
  590. int err = -EINVAL;
  591. struct md_region md_entry;
  592. if (map->frpc_md_index > -1 && map->frpc_md_index < MAX_UNIQUE_ID) {
  593. scnprintf(md_entry.name, MAX_NAME_LENGTH, "FRPC_%d",
  594. map->frpc_md_index);
  595. md_entry.virt_addr = map->va;
  596. md_entry.phys_addr = map->phys;
  597. md_entry.size = map->size;
  598. err = msm_minidump_remove_region(&md_entry);
  599. if (err < 0) {
  600. ADSPRPC_ERR(
  601. "Failed to remove CMA from Minidump for phys: 0x%llx, size: %zu index = %d\n",
  602. map->phys, map->size, map->frpc_md_index);
  603. } else {
  604. reset_unique_index(map->frpc_md_index);
  605. map->frpc_md_index = -1;
  606. }
  607. } else {
  608. ADSPRPC_WARN("mini-dump enabled with invalid unique id: %d\n", map->frpc_md_index);
  609. }
  610. return err;
  611. }
  612. static void fastrpc_buf_free(struct fastrpc_buf *buf, int cache)
  613. {
  614. struct fastrpc_file *fl = buf == NULL ? NULL : buf->fl;
  615. int vmid, err = 0, cid = -1;
  616. if (!fl)
  617. return;
  618. if (buf->in_use) {
  619. /* Don't free persistent header buf. Just mark as available */
  620. spin_lock(&fl->hlock);
  621. buf->in_use = false;
  622. spin_unlock(&fl->hlock);
  623. return;
  624. }
  625. if (cache && buf->size < MAX_CACHE_BUF_SIZE) {
  626. spin_lock(&fl->hlock);
  627. if (fl->num_cached_buf > MAX_CACHED_BUFS) {
  628. spin_unlock(&fl->hlock);
  629. goto skip_buf_cache;
  630. }
  631. hlist_add_head(&buf->hn, &fl->cached_bufs);
  632. fl->num_cached_buf++;
  633. buf->type = -1;
  634. spin_unlock(&fl->hlock);
  635. return;
  636. }
  637. skip_buf_cache:
  638. if (buf->type == USERHEAP_BUF) {
  639. spin_lock(&fl->hlock);
  640. hlist_del_init(&buf->hn_rem);
  641. spin_unlock(&fl->hlock);
  642. buf->raddr = 0;
  643. }
  644. if (!IS_ERR_OR_NULL(buf->virt)) {
  645. VERIFY(err, fl->sctx != NULL);
  646. if (err)
  647. goto bail;
  648. if (fl->sctx->smmu.cb)
  649. buf->phys &= ~((uint64_t)fl->sctx->smmu.cb << 32);
  650. cid = fl->cid;
  651. VERIFY(err, VALID_FASTRPC_CID(cid));
  652. if (err) {
  653. err = -ECHRNG;
  654. ADSPRPC_ERR(
  655. "invalid channel 0x%zx set for session\n",
  656. cid);
  657. goto bail;
  658. }
  659. vmid = fl->apps->channel[cid].vmid;
  660. if ((vmid) && (fl->apps->channel[cid].in_hib == 0)) {
  661. u64 src_perms = BIT(QCOM_SCM_VMID_HLOS)| BIT(vmid);
  662. struct qcom_scm_vmperm dest_perms = {0};
  663. int hyp_err = 0;
  664. dest_perms.vmid = QCOM_SCM_VMID_HLOS;
  665. dest_perms.perm = QCOM_SCM_PERM_RWX;
  666. hyp_err = qcom_scm_assign_mem(buf->phys,
  667. buf_page_size(buf->size),
  668. &src_perms, &dest_perms, 1);
  669. if (hyp_err) {
  670. ADSPRPC_ERR(
  671. "rh hyp unassign failed with %d for phys 0x%llx, size %zu\n",
  672. hyp_err, buf->phys, buf->size);
  673. }
  674. }
  675. trace_fastrpc_dma_free(cid, buf->phys, buf->size);
  676. dma_free_attrs(fl->sctx->smmu.dev, buf->size, buf->virt,
  677. buf->phys, buf->dma_attr);
  678. }
  679. bail:
  680. kfree(buf);
  681. }
  682. static void fastrpc_cached_buf_list_free(struct fastrpc_file *fl)
  683. {
  684. struct fastrpc_buf *buf, *free;
  685. do {
  686. struct hlist_node *n;
  687. free = NULL;
  688. spin_lock(&fl->hlock);
  689. hlist_for_each_entry_safe(buf, n, &fl->cached_bufs, hn) {
  690. hlist_del_init(&buf->hn);
  691. fl->num_cached_buf--;
  692. free = buf;
  693. break;
  694. }
  695. spin_unlock(&fl->hlock);
  696. if (free)
  697. fastrpc_buf_free(free, 0);
  698. } while (free);
  699. }
  700. static void fastrpc_remote_buf_list_free(struct fastrpc_file *fl)
  701. {
  702. struct fastrpc_buf *buf, *free;
  703. do {
  704. struct hlist_node *n;
  705. free = NULL;
  706. spin_lock(&fl->hlock);
  707. hlist_for_each_entry_safe(buf, n, &fl->remote_bufs, hn_rem) {
  708. free = buf;
  709. break;
  710. }
  711. spin_unlock(&fl->hlock);
  712. if (free)
  713. fastrpc_buf_free(free, 0);
  714. } while (free);
  715. }
  716. static void fastrpc_mmap_add_global(struct fastrpc_mmap *map)
  717. {
  718. struct fastrpc_apps *me = &gfa;
  719. unsigned long irq_flags = 0;
  720. spin_lock_irqsave(&me->hlock, irq_flags);
  721. hlist_add_head(&map->hn, &me->maps);
  722. spin_unlock_irqrestore(&me->hlock, irq_flags);
  723. }
  724. static void fastrpc_mmap_add(struct fastrpc_mmap *map)
  725. {
  726. struct fastrpc_file *fl = map->fl;
  727. hlist_add_head(&map->hn, &fl->maps);
  728. }
  729. static int fastrpc_mmap_find(struct fastrpc_file *fl, int fd,
  730. struct dma_buf *buf, uintptr_t va, size_t len, int mflags, int refs,
  731. struct fastrpc_mmap **ppmap)
  732. {
  733. struct fastrpc_mmap *match = NULL, *map = NULL;
  734. struct hlist_node *n;
  735. if ((va + len) < va)
  736. return -EFAULT;
  737. if (mflags == ADSP_MMAP_DMA_BUFFER) {
  738. hlist_for_each_entry_safe(map, n, &fl->maps, hn) {
  739. if (map->buf == buf) {
  740. if (refs) {
  741. if (map->refs + 1 == INT_MAX)
  742. return -ETOOMANYREFS;
  743. map->refs++;
  744. }
  745. match = map;
  746. break;
  747. }
  748. }
  749. } else {
  750. hlist_for_each_entry_safe(map, n, &fl->maps, hn) {
  751. if (va >= map->va &&
  752. va + len <= map->va + map->len &&
  753. map->fd == fd) {
  754. if (refs) {
  755. if (map->refs + 1 == INT_MAX)
  756. return -ETOOMANYREFS;
  757. map->refs++;
  758. }
  759. match = map;
  760. break;
  761. }
  762. }
  763. }
  764. if (match) {
  765. *ppmap = match;
  766. return 0;
  767. }
  768. return -ENXIO;
  769. }
  770. static int fastrpc_alloc_cma_memory(dma_addr_t *region_phys, void **vaddr,
  771. size_t size, unsigned long dma_attr)
  772. {
  773. int err = 0;
  774. struct fastrpc_apps *me = &gfa;
  775. if (me->dev == NULL) {
  776. ADSPRPC_ERR(
  777. "failed to allocate CMA memory, device adsprpc-mem is not initialized\n");
  778. return -ENODEV;
  779. }
  780. VERIFY(err, size > 0 && size < me->max_size_limit);
  781. if (err) {
  782. err = -EFAULT;
  783. pr_err("adsprpc: %s: invalid allocation size 0x%zx\n",
  784. __func__, size);
  785. return err;
  786. }
  787. *vaddr = dma_alloc_attrs(me->dev, size, region_phys,
  788. GFP_KERNEL, dma_attr);
  789. if (IS_ERR_OR_NULL(*vaddr)) {
  790. ADSPRPC_ERR(
  791. "dma_alloc_attrs failed for device %s size 0x%zx dma_attr %lu, returned %ld\n",
  792. dev_name(me->dev), size, dma_attr, PTR_ERR(*vaddr));
  793. return -ENOBUFS;
  794. }
  795. return 0;
  796. }
  797. static int fastrpc_mmap_remove(struct fastrpc_file *fl, int fd, uintptr_t va,
  798. size_t len, struct fastrpc_mmap **ppmap)
  799. {
  800. struct fastrpc_mmap *match = NULL, *map;
  801. struct hlist_node *n;
  802. struct fastrpc_apps *me = &gfa;
  803. unsigned long irq_flags = 0;
  804. /*
  805. * Search for a mapping by matching fd, remote address and length.
  806. * For backward compatibility, search for a mapping by matching is
  807. * limited to remote address and length when passed fd < 0.
  808. */
  809. spin_lock_irqsave(&me->hlock, irq_flags);
  810. hlist_for_each_entry_safe(map, n, &me->maps, hn) {
  811. if ((fd < 0 || map->fd == fd) && map->raddr == va &&
  812. map->raddr + map->len == va + len &&
  813. map->refs == 1 && !map->is_persistent &&
  814. /* Skip unmap if it is fastrpc shell memory */
  815. !map->is_filemap) {
  816. match = map;
  817. hlist_del_init(&map->hn);
  818. break;
  819. }
  820. }
  821. spin_unlock_irqrestore(&me->hlock, irq_flags);
  822. if (match) {
  823. *ppmap = match;
  824. return 0;
  825. }
  826. hlist_for_each_entry_safe(map, n, &fl->maps, hn) {
  827. if ((fd < 0 || map->fd == fd) && map->raddr == va &&
  828. map->raddr + map->len == va + len &&
  829. map->refs == 1 &&
  830. /* Remove map only if it isn't being used in any pending RPC calls */
  831. !map->ctx_refs &&
  832. /* Skip unmap if it is fastrpc shell memory */
  833. !map->is_filemap) {
  834. match = map;
  835. hlist_del_init(&map->hn);
  836. break;
  837. }
  838. }
  839. if (match) {
  840. *ppmap = match;
  841. return 0;
  842. }
  843. return -ETOOMANYREFS;
  844. }
  845. static void fastrpc_mmap_free(struct fastrpc_mmap *map, uint32_t flags)
  846. {
  847. struct fastrpc_apps *me = &gfa;
  848. struct fastrpc_file *fl;
  849. int vmid, cid = -1, err = 0;
  850. struct fastrpc_session_ctx *sess;
  851. unsigned long irq_flags = 0;
  852. if (!map)
  853. return;
  854. fl = map->fl;
  855. if (fl && !(map->flags == ADSP_MMAP_HEAP_ADDR ||
  856. map->flags == ADSP_MMAP_REMOTE_HEAP_ADDR)) {
  857. cid = fl->cid;
  858. VERIFY(err, VALID_FASTRPC_CID(cid));
  859. if (err) {
  860. err = -ECHRNG;
  861. pr_err("adsprpc: ERROR:%s, Invalid channel id: %d, err:%d\n",
  862. __func__, cid, err);
  863. return;
  864. }
  865. }
  866. if (map->flags == ADSP_MMAP_HEAP_ADDR ||
  867. map->flags == ADSP_MMAP_REMOTE_HEAP_ADDR) {
  868. spin_lock_irqsave(&me->hlock, irq_flags);
  869. map->refs--;
  870. if (!map->refs && !map->is_persistent && !map->ctx_refs)
  871. hlist_del_init(&map->hn);
  872. if (map->refs > 0) {
  873. ADSPRPC_WARN(
  874. "multiple references for remote heap size %zu va 0x%lx ref count is %d\n",
  875. map->size, map->va, map->refs);
  876. spin_unlock_irqrestore(&me->hlock, irq_flags);
  877. return;
  878. }
  879. if (map->is_persistent && map->in_use)
  880. map->in_use = false;
  881. spin_unlock_irqrestore(&me->hlock, irq_flags);
  882. } else {
  883. map->refs--;
  884. if (!map->refs && !map->ctx_refs)
  885. hlist_del_init(&map->hn);
  886. if (map->refs > 0 && !flags)
  887. return;
  888. }
  889. if (map->flags == ADSP_MMAP_HEAP_ADDR ||
  890. map->flags == ADSP_MMAP_REMOTE_HEAP_ADDR) {
  891. if (me->dev == NULL) {
  892. ADSPRPC_ERR(
  893. "failed to free remote heap allocation, device is not initialized\n");
  894. return;
  895. }
  896. if (msm_minidump_enabled() && !map->is_persistent)
  897. err = fastrpc_minidump_remove_region(map);
  898. if (map->phys && !map->is_persistent) {
  899. trace_fastrpc_dma_free(-1, map->phys, map->size);
  900. dma_free_attrs(me->dev, map->size, (void *)map->va,
  901. (dma_addr_t)map->phys, (unsigned long)map->attr);
  902. }
  903. } else if (map->flags == FASTRPC_MAP_FD_NOMAP) {
  904. trace_fastrpc_dma_unmap(cid, map->phys, map->size);
  905. if (!IS_ERR_OR_NULL(map->table))
  906. dma_buf_unmap_attachment(map->attach, map->table,
  907. DMA_BIDIRECTIONAL);
  908. if (!IS_ERR_OR_NULL(map->attach))
  909. dma_buf_detach(map->buf, map->attach);
  910. if (!IS_ERR_OR_NULL(map->buf))
  911. dma_buf_put(map->buf);
  912. } else {
  913. if (!fl)
  914. goto bail;
  915. if (map->secure)
  916. sess = fl->secsctx;
  917. else
  918. sess = fl->sctx;
  919. vmid = fl->apps->channel[cid].vmid;
  920. if (vmid && map->phys && (me->channel[cid].in_hib == 0)) {
  921. int hyp_err = 0;
  922. u64 src_perms = BIT(QCOM_SCM_VMID_HLOS) | BIT(vmid);
  923. struct qcom_scm_vmperm dst_perms = {0};
  924. dst_perms.vmid = QCOM_SCM_VMID_HLOS;
  925. dst_perms.perm = QCOM_SCM_PERM_RWX;
  926. hyp_err = qcom_scm_assign_mem(map->phys,
  927. buf_page_size(map->size),
  928. &src_perms, &dst_perms, 1);
  929. if (hyp_err) {
  930. ADSPRPC_ERR(
  931. "rh hyp unassign failed with %d for phys 0x%llx, size %zu\n",
  932. hyp_err, map->phys, map->size);
  933. }
  934. }
  935. trace_fastrpc_dma_unmap(cid, map->phys, map->size);
  936. if (!IS_ERR_OR_NULL(map->table))
  937. dma_buf_unmap_attachment(map->attach, map->table,
  938. DMA_BIDIRECTIONAL);
  939. if (!IS_ERR_OR_NULL(map->attach))
  940. dma_buf_detach(map->buf, map->attach);
  941. if (!IS_ERR_OR_NULL(map->buf))
  942. dma_buf_put(map->buf);
  943. }
  944. if (fl) {
  945. spin_lock(&fl->hlock);
  946. if ((map->flags == ADSP_MMAP_ADD_PAGES) || (map->flags == ADSP_MMAP_ADD_PAGES_LLC))
  947. fl->mem_snap.heap_bufs_size -= map->size;
  948. else
  949. fl->mem_snap.nonheap_bufs_size -= map->size;
  950. spin_unlock(&fl->hlock);
  951. }
  952. bail:
  953. if (!map->is_persistent)
  954. kfree(map);
  955. }
  956. static int fastrpc_session_alloc_secure_memory(
  957. struct fastrpc_channel_ctx *chan, int secure,
  958. int sharedcb, int pd_type, struct fastrpc_session_ctx **session);
  959. static inline bool fastrpc_get_persistent_map(size_t len, struct fastrpc_mmap **pers_map)
  960. {
  961. struct fastrpc_apps *me = &gfa;
  962. struct fastrpc_mmap *map = NULL;
  963. struct hlist_node *n = NULL;
  964. bool found = false;
  965. unsigned long irq_flags = 0;
  966. spin_lock_irqsave(&me->hlock, irq_flags);
  967. hlist_for_each_entry_safe(map, n, &me->maps, hn) {
  968. if (len == map->len &&
  969. map->is_persistent && !map->in_use) {
  970. *pers_map = map;
  971. map->in_use = true;
  972. /*
  973. * Incrementing map reference count when getting
  974. * the map to avoid negative reference count when
  975. * freeing the map.
  976. */
  977. map->refs++;
  978. found = true;
  979. break;
  980. }
  981. }
  982. spin_unlock_irqrestore(&me->hlock, irq_flags);
  983. return found;
  984. }
  985. static int fastrpc_mmap_create_remote_heap(struct fastrpc_file *fl,
  986. struct fastrpc_mmap *map, size_t len, int mflags)
  987. {
  988. int err = 0;
  989. struct fastrpc_apps *me = &gfa;
  990. dma_addr_t region_phys = 0;
  991. void *region_vaddr = NULL;
  992. map->apps = me;
  993. map->fl = NULL;
  994. map->attr |= DMA_ATTR_NO_KERNEL_MAPPING;
  995. err = fastrpc_alloc_cma_memory(&region_phys, &region_vaddr,
  996. len, (unsigned long) map->attr);
  997. if (err)
  998. goto bail;
  999. trace_fastrpc_dma_alloc(fl->cid, (uint64_t)region_phys, len,
  1000. (unsigned long)map->attr, mflags);
  1001. map->phys = (uintptr_t)region_phys;
  1002. map->size = len;
  1003. map->va = (uintptr_t)region_vaddr;
  1004. map->servloc_name = fl->servloc_name;
  1005. bail:
  1006. return err;
  1007. }
  1008. static int get_buffer_attr(struct dma_buf *buf, bool *exclusive_access, bool *hlos_access)
  1009. {
  1010. const int *vmids_list = NULL, *perms = NULL;
  1011. int err = 0, vmids_list_len = 0;
  1012. *exclusive_access = false;
  1013. *hlos_access = false;
  1014. err = mem_buf_dma_buf_get_vmperm(buf, &vmids_list, &perms, &vmids_list_len);
  1015. if (err)
  1016. goto bail;
  1017. /*
  1018. * If one VM has access to buffer and is the current VM,
  1019. * then VM has exclusive access to buffer
  1020. */
  1021. if (vmids_list_len == 1 && vmids_list[0] == mem_buf_current_vmid())
  1022. *exclusive_access = true;
  1023. #if IS_ENABLED(CONFIG_MSM_ADSPRPC_TRUSTED)
  1024. for (int ii = 0; ii < vmids_list_len; ii++) {
  1025. if (vmids_list[ii] == VMID_HLOS) {
  1026. *hlos_access = true;
  1027. break;
  1028. }
  1029. }
  1030. #endif
  1031. bail:
  1032. return err;
  1033. }
  1034. static int set_buffer_secure_type(struct fastrpc_mmap *map)
  1035. {
  1036. int err = 0;
  1037. bool hlos_access = false, exclusive_access = false;
  1038. VERIFY(err, 0 == (err = get_buffer_attr(map->buf, &exclusive_access, &hlos_access)));
  1039. if (err) {
  1040. ADSPRPC_ERR("failed to obtain buffer attributes for fd %d ret %d\n", map->fd, err);
  1041. err = -EBADFD;
  1042. goto bail;
  1043. }
  1044. #if IS_ENABLED(CONFIG_MSM_ADSPRPC_TRUSTED)
  1045. /*
  1046. * PVM (HLOS) can share buffers with TVM, in case buffers are to be shared to secure PD,
  1047. * PVM is expected to relinquish its ownership to those buffers before sharing.
  1048. * If PVM still retains access, then those buffers cannot be shared to secure PD.
  1049. */
  1050. if (hlos_access) {
  1051. ADSPRPC_ERR("Buffers with HLOS access (fd %d) are not allowed on TVM\n", map->fd);
  1052. err = -EACCES;
  1053. goto bail;
  1054. }
  1055. #endif
  1056. /*
  1057. * Secure buffers would always be owned by multiple VMs.
  1058. * If current VM is the exclusive owner of a buffer, it is considered non-secure.
  1059. * In PVM:
  1060. * - CPZ buffers are secure
  1061. * - All other buffers are non-secure
  1062. * In TVM:
  1063. * - Since it is a secure environment by default, there are no explicit "secure" buffers
  1064. * - All buffers are marked "non-secure"
  1065. */
  1066. #if IS_ENABLED(CONFIG_MSM_ADSPRPC_TRUSTED)
  1067. map->secure = 0;
  1068. #else
  1069. map->secure = (exclusive_access) ? 0 : 1;
  1070. #endif
  1071. bail:
  1072. return err;
  1073. }
  1074. static int fastrpc_mmap_create(struct fastrpc_file *fl, int fd, struct dma_buf *buf,
  1075. unsigned int attr, uintptr_t va, size_t len, int mflags,
  1076. struct fastrpc_mmap **ppmap)
  1077. {
  1078. struct fastrpc_apps *me = &gfa;
  1079. struct fastrpc_session_ctx *sess;
  1080. struct fastrpc_apps *apps = NULL;
  1081. int cid = -1;
  1082. struct fastrpc_channel_ctx *chan = NULL;
  1083. struct fastrpc_mmap *map = NULL;
  1084. int err = 0, vmid, sgl_index = 0;
  1085. struct scatterlist *sgl = NULL;
  1086. bool dma_attach_fail = false;
  1087. size_t tot_bufs_size = 0;
  1088. if (!fl) {
  1089. err = -EBADF;
  1090. goto bail;
  1091. }
  1092. apps = fl->apps;
  1093. cid = fl->cid;
  1094. VERIFY(err, VALID_FASTRPC_CID(cid));
  1095. if (err) {
  1096. err = -ECHRNG;
  1097. goto bail;
  1098. }
  1099. chan = &apps->channel[cid];
  1100. if (!fastrpc_mmap_find(fl, fd, NULL, va, len, mflags, 1, ppmap))
  1101. return 0;
  1102. map = kzalloc(sizeof(*map), GFP_KERNEL);
  1103. VERIFY(err, !IS_ERR_OR_NULL(map));
  1104. if (err) {
  1105. err = -ENOMEM;
  1106. goto bail;
  1107. }
  1108. INIT_HLIST_NODE(&map->hn);
  1109. map->flags = mflags;
  1110. map->refs = 1;
  1111. map->fl = fl;
  1112. map->fd = fd;
  1113. map->attr = attr;
  1114. map->buf = buf;
  1115. map->frpc_md_index = -1;
  1116. map->is_filemap = false;
  1117. ktime_get_real_ts64(&map->map_start_time);
  1118. if (mflags == ADSP_MMAP_HEAP_ADDR ||
  1119. mflags == ADSP_MMAP_REMOTE_HEAP_ADDR) {
  1120. VERIFY(err, 0 == (err = fastrpc_mmap_create_remote_heap(fl, map,
  1121. len, mflags)));
  1122. if (err)
  1123. goto bail;
  1124. if (msm_minidump_enabled()) {
  1125. err = fastrpc_minidump_add_region(map);
  1126. if (err)
  1127. goto bail;
  1128. }
  1129. } else if (mflags == FASTRPC_MAP_FD_NOMAP) {
  1130. VERIFY(err, !IS_ERR_OR_NULL(map->buf = dma_buf_get(fd)));
  1131. if (err) {
  1132. ADSPRPC_ERR("dma_buf_get failed for fd %d ret %ld\n",
  1133. fd, PTR_ERR(map->buf));
  1134. err = -EBADFD;
  1135. goto bail;
  1136. }
  1137. err = set_buffer_secure_type(map);
  1138. if (err)
  1139. goto bail;
  1140. map->va = 0;
  1141. map->phys = 0;
  1142. VERIFY(err, !IS_ERR_OR_NULL(map->attach =
  1143. dma_buf_attach(map->buf, me->dev)));
  1144. if (err) {
  1145. ADSPRPC_ERR(
  1146. "dma_buf_attach for fd %d for len 0x%zx failed to map buffer on SMMU device %s ret %ld\n",
  1147. fd, len, dev_name(me->dev), PTR_ERR(map->attach));
  1148. dma_attach_fail = true;
  1149. err = -EFAULT;
  1150. goto bail;
  1151. }
  1152. map->attach->dma_map_attrs |= DMA_ATTR_SKIP_CPU_SYNC;
  1153. VERIFY(err, !IS_ERR_OR_NULL(map->table =
  1154. dma_buf_map_attachment(map->attach,
  1155. DMA_BIDIRECTIONAL)));
  1156. if (err) {
  1157. ADSPRPC_ERR(
  1158. "dma_buf_map_attachment for fd %d for len 0x%zx failed on device %s ret %ld\n",
  1159. fd, len, dev_name(me->dev), PTR_ERR(map->table));
  1160. err = -EFAULT;
  1161. goto bail;
  1162. }
  1163. VERIFY(err, map->table->nents == 1);
  1164. if (err) {
  1165. ADSPRPC_ERR(
  1166. "multiple scatter-gather entries (%u) present for NOMAP fd %d\n",
  1167. map->table->nents, fd);
  1168. err = -EFAULT;
  1169. goto bail;
  1170. }
  1171. map->phys = sg_dma_address(map->table->sgl);
  1172. map->size = len;
  1173. map->flags = FASTRPC_MAP_FD_DELAYED;
  1174. trace_fastrpc_dma_map(cid, fd, map->phys, map->size,
  1175. len, map->attach->dma_map_attrs, mflags);
  1176. } else {
  1177. if (map->attr && (map->attr & FASTRPC_ATTR_KEEP_MAP)) {
  1178. ADSPRPC_INFO("buffer mapped with persist attr 0x%x\n",
  1179. (unsigned int)map->attr);
  1180. map->refs = 2;
  1181. }
  1182. if (mflags == ADSP_MMAP_DMA_BUFFER) {
  1183. VERIFY(err, !IS_ERR_OR_NULL(map->buf));
  1184. if (err) {
  1185. ADSPRPC_ERR("Invalid DMA buffer address %pK\n",
  1186. map->buf);
  1187. err = -EFAULT;
  1188. goto bail;
  1189. }
  1190. /* Increment DMA buffer ref count,
  1191. * so that client cannot unmap DMA buffer, before freeing buffer
  1192. */
  1193. get_dma_buf(map->buf);
  1194. } else {
  1195. VERIFY(err, !IS_ERR_OR_NULL(map->buf = dma_buf_get(fd)));
  1196. if (err) {
  1197. ADSPRPC_ERR("dma_buf_get failed for fd %d ret %ld\n",
  1198. fd, PTR_ERR(map->buf));
  1199. err = -EBADFD;
  1200. goto bail;
  1201. }
  1202. }
  1203. err = set_buffer_secure_type(map);
  1204. if (err)
  1205. goto bail;
  1206. if (map->secure) {
  1207. if (!fl->secsctx)
  1208. err = fastrpc_session_alloc_secure_memory(chan, 1,
  1209. me->share_securecb, fl->pd_type, &fl->secsctx);
  1210. if (err) {
  1211. ADSPRPC_ERR(
  1212. "fastrpc_session_alloc_secure_memory failed for fd %d ret %d\n",
  1213. fd, err);
  1214. err = -ENOSR;
  1215. goto bail;
  1216. }
  1217. }
  1218. if (map->secure)
  1219. sess = fl->secsctx;
  1220. else
  1221. sess = fl->sctx;
  1222. VERIFY(err, !IS_ERR_OR_NULL(sess));
  1223. if (err) {
  1224. ADSPRPC_ERR(
  1225. "session is invalid for fd %d, secure flag %d\n",
  1226. fd, map->secure);
  1227. err = -EBADR;
  1228. goto bail;
  1229. }
  1230. VERIFY(err, !IS_ERR_OR_NULL(map->attach =
  1231. dma_buf_attach(map->buf, sess->smmu.dev)));
  1232. if (err) {
  1233. ADSPRPC_ERR(
  1234. "dma_buf_attach for fd %d failed for len 0x%zx to map buffer on SMMU device %s ret %ld\n",
  1235. fd, len, dev_name(sess->smmu.dev),
  1236. PTR_ERR(map->attach));
  1237. dma_attach_fail = true;
  1238. err = -EFAULT;
  1239. goto bail;
  1240. }
  1241. map->attach->dma_map_attrs |= DMA_ATTR_DELAYED_UNMAP;
  1242. /*
  1243. * Skip CPU sync if IO Cohernecy is not supported
  1244. */
  1245. if (!sess->smmu.coherent)
  1246. map->attach->dma_map_attrs |= DMA_ATTR_SKIP_CPU_SYNC;
  1247. VERIFY(err, !IS_ERR_OR_NULL(map->table =
  1248. dma_buf_map_attachment(map->attach,
  1249. DMA_BIDIRECTIONAL)));
  1250. if (err) {
  1251. ADSPRPC_ERR(
  1252. "dma_buf_map_attachment for fd %d failed for len 0x%zx on device %s ret %ld\n",
  1253. fd, len, dev_name(sess->smmu.dev),
  1254. PTR_ERR(map->table));
  1255. err = -EFAULT;
  1256. goto bail;
  1257. }
  1258. if (!sess->smmu.enabled) {
  1259. VERIFY(err, map->table->nents == 1);
  1260. if (err) {
  1261. ADSPRPC_ERR(
  1262. "multiple scatter-gather entries (%u) present for fd %d mapped on SMMU disabled device\n",
  1263. map->table->nents, fd);
  1264. err = -EFAULT;
  1265. goto bail;
  1266. }
  1267. }
  1268. map->phys = sg_dma_address(map->table->sgl);
  1269. if (sess->smmu.cb) {
  1270. map->phys += ((uint64_t)sess->smmu.cb << 32);
  1271. for_each_sg(map->table->sgl, sgl, map->table->nents,
  1272. sgl_index)
  1273. map->size += sg_dma_len(sgl);
  1274. } else {
  1275. map->size = buf_page_size(len);
  1276. }
  1277. trace_fastrpc_dma_map(cid, fd, map->phys, map->size,
  1278. len, map->attach->dma_map_attrs, mflags);
  1279. VERIFY(err, map->size >= len && map->size < me->max_size_limit);
  1280. if (err) {
  1281. err = -EFAULT;
  1282. pr_err("adsprpc: %s: invalid map size 0x%zx len 0x%zx\n",
  1283. __func__, map->size, len);
  1284. goto bail;
  1285. }
  1286. vmid = fl->apps->channel[cid].vmid;
  1287. if (vmid) {
  1288. u64 src_perms = BIT(QCOM_SCM_VMID_HLOS);
  1289. struct qcom_scm_vmperm dst_perms[2] = {0};
  1290. dst_perms[0].vmid = QCOM_SCM_VMID_HLOS;
  1291. dst_perms[0].perm = QCOM_SCM_PERM_RW;
  1292. dst_perms[1].vmid = vmid;
  1293. dst_perms[1].perm = QCOM_SCM_PERM_RWX;
  1294. err = qcom_scm_assign_mem(map->phys,
  1295. buf_page_size(map->size),
  1296. &src_perms, dst_perms, 2);
  1297. if (err) {
  1298. ADSPRPC_ERR(
  1299. "rh hyp assign failed with %d for phys 0x%llx, size %zu\n",
  1300. err, map->phys, map->size);
  1301. err = -EADDRNOTAVAIL;
  1302. goto bail;
  1303. }
  1304. }
  1305. map->va = va;
  1306. }
  1307. map->len = len;
  1308. spin_lock(&fl->hlock);
  1309. if ((mflags == ADSP_MMAP_ADD_PAGES) || (mflags == ADSP_MMAP_ADD_PAGES_LLC))
  1310. fl->mem_snap.heap_bufs_size += map->size;
  1311. else
  1312. fl->mem_snap.nonheap_bufs_size += map->size;
  1313. spin_unlock(&fl->hlock);
  1314. if ((mflags != ADSP_MMAP_HEAP_ADDR) &&
  1315. (mflags != ADSP_MMAP_REMOTE_HEAP_ADDR))
  1316. fastrpc_mmap_add(map);
  1317. *ppmap = map;
  1318. bail:
  1319. if (dma_attach_fail && fl) {
  1320. tot_bufs_size = fl->mem_snap.heap_bufs_size
  1321. + fl->mem_snap.nonheap_bufs_size;
  1322. ADSPRPC_INFO("Heapbufs size: %zu, non-heapbufs size: %zu, total size: %zu\n",
  1323. fl->mem_snap.heap_bufs_size, fl->mem_snap.nonheap_bufs_size,
  1324. tot_bufs_size);
  1325. }
  1326. if (map)
  1327. ktime_get_real_ts64(&map->map_end_time);
  1328. if (err && map)
  1329. fastrpc_mmap_free(map, 0);
  1330. return err;
  1331. }
  1332. static inline bool fastrpc_get_cached_buf(struct fastrpc_file *fl,
  1333. size_t size, int buf_type, struct fastrpc_buf **obuf)
  1334. {
  1335. bool found = false;
  1336. struct fastrpc_buf *buf = NULL, *fr = NULL;
  1337. struct hlist_node *n = NULL;
  1338. if (buf_type == USERHEAP_BUF)
  1339. goto bail;
  1340. /* find the smallest buffer that fits in the cache */
  1341. spin_lock(&fl->hlock);
  1342. hlist_for_each_entry_safe(buf, n, &fl->cached_bufs, hn) {
  1343. if (buf->size >= size && (!fr || fr->size > buf->size))
  1344. fr = buf;
  1345. }
  1346. if (fr) {
  1347. hlist_del_init(&fr->hn);
  1348. fl->num_cached_buf--;
  1349. }
  1350. spin_unlock(&fl->hlock);
  1351. if (fr) {
  1352. fr->type = buf_type;
  1353. *obuf = fr;
  1354. found = true;
  1355. }
  1356. bail:
  1357. return found;
  1358. }
  1359. static inline bool fastrpc_get_persistent_buf(struct fastrpc_file *fl,
  1360. size_t size, int buf_type, struct fastrpc_buf **obuf)
  1361. {
  1362. unsigned int i = 0;
  1363. bool found = false;
  1364. struct fastrpc_buf *buf = NULL;
  1365. spin_lock(&fl->hlock);
  1366. if (!fl->num_pers_hdrs)
  1367. goto bail;
  1368. /*
  1369. * Persistent header buffer can be used only if
  1370. * metadata length is less than 1 page size.
  1371. */
  1372. if (buf_type != METADATA_BUF || size > PAGE_SIZE)
  1373. goto bail;
  1374. for (i = 0; i < fl->num_pers_hdrs; i++) {
  1375. buf = &fl->hdr_bufs[i];
  1376. /* If buffer not in use, then assign it for requested alloc */
  1377. if (!buf->in_use) {
  1378. buf->in_use = true;
  1379. *obuf = buf;
  1380. found = true;
  1381. break;
  1382. }
  1383. }
  1384. bail:
  1385. spin_unlock(&fl->hlock);
  1386. return found;
  1387. }
  1388. static int fastrpc_buf_alloc(struct fastrpc_file *fl, size_t size,
  1389. unsigned long dma_attr, uint32_t rflags,
  1390. int buf_type, struct fastrpc_buf **obuf)
  1391. {
  1392. int err = 0, vmid;
  1393. struct fastrpc_apps *me = &gfa;
  1394. struct fastrpc_buf *buf = NULL;
  1395. int cid = -1;
  1396. VERIFY(err, fl && fl->sctx != NULL);
  1397. if (err) {
  1398. err = -EBADR;
  1399. goto bail;
  1400. }
  1401. cid = fl->cid;
  1402. VERIFY(err, VALID_FASTRPC_CID(cid));
  1403. if (err) {
  1404. err = -ECHRNG;
  1405. goto bail;
  1406. }
  1407. VERIFY(err, size > 0 && size < me->max_size_limit);
  1408. if (err) {
  1409. err = -EFAULT;
  1410. pr_err("adsprpc: %s: invalid allocation size 0x%zx\n",
  1411. __func__, size);
  1412. goto bail;
  1413. }
  1414. VERIFY(err, size > 0 && fl->sctx->smmu.dev);
  1415. if (err) {
  1416. err = (fl->sctx->smmu.dev == NULL) ? -ENODEV : err;
  1417. goto bail;
  1418. }
  1419. if (fastrpc_get_persistent_buf(fl, size, buf_type, obuf))
  1420. return err;
  1421. if (fastrpc_get_cached_buf(fl, size, buf_type, obuf))
  1422. return err;
  1423. /* If unable to get persistent or cached buf, allocate new buffer */
  1424. VERIFY(err, NULL != (buf = kzalloc(sizeof(*buf), GFP_KERNEL)));
  1425. if (err) {
  1426. err = -ENOMEM;
  1427. goto bail;
  1428. }
  1429. INIT_HLIST_NODE(&buf->hn);
  1430. buf->fl = fl;
  1431. buf->virt = NULL;
  1432. buf->phys = 0;
  1433. buf->size = size;
  1434. buf->dma_attr = dma_attr;
  1435. buf->flags = rflags;
  1436. buf->raddr = 0;
  1437. buf->type = buf_type;
  1438. ktime_get_real_ts64(&buf->buf_start_time);
  1439. buf->virt = dma_alloc_attrs(fl->sctx->smmu.dev, buf->size,
  1440. (dma_addr_t *)&buf->phys,
  1441. GFP_KERNEL, buf->dma_attr);
  1442. if (IS_ERR_OR_NULL(buf->virt)) {
  1443. /* free cache and retry */
  1444. fastrpc_cached_buf_list_free(fl);
  1445. buf->virt = dma_alloc_attrs(fl->sctx->smmu.dev, buf->size,
  1446. (dma_addr_t *)&buf->phys, GFP_KERNEL,
  1447. buf->dma_attr);
  1448. VERIFY(err, !IS_ERR_OR_NULL(buf->virt));
  1449. }
  1450. if (err) {
  1451. ADSPRPC_ERR(
  1452. "dma_alloc_attrs failed for size 0x%zx, returned %pK\n",
  1453. size, buf->virt);
  1454. err = -ENOBUFS;
  1455. goto bail;
  1456. }
  1457. if (fl->sctx->smmu.cb)
  1458. buf->phys += ((uint64_t)fl->sctx->smmu.cb << 32);
  1459. trace_fastrpc_dma_alloc(cid, buf->phys, size,
  1460. dma_attr, (int)rflags);
  1461. vmid = fl->apps->channel[cid].vmid;
  1462. if (vmid) {
  1463. u64 src_perms = BIT(QCOM_SCM_VMID_HLOS);
  1464. struct qcom_scm_vmperm dst_perms[2] = {0};
  1465. dst_perms[0].vmid = QCOM_SCM_VMID_HLOS;
  1466. dst_perms[0].perm = QCOM_SCM_PERM_RW;
  1467. dst_perms[1].vmid = vmid;
  1468. dst_perms[1].perm = QCOM_SCM_PERM_RWX;
  1469. err = qcom_scm_assign_mem(buf->phys, buf_page_size(size),
  1470. &src_perms, dst_perms, 2);
  1471. if (err) {
  1472. ADSPRPC_DEBUG(
  1473. "rh hyp assign failed with %d for phys 0x%llx, size %zu\n",
  1474. err, buf->phys, size);
  1475. err = -EADDRNOTAVAIL;
  1476. goto bail;
  1477. }
  1478. }
  1479. if (buf_type == USERHEAP_BUF) {
  1480. INIT_HLIST_NODE(&buf->hn_rem);
  1481. spin_lock(&fl->hlock);
  1482. hlist_add_head(&buf->hn_rem, &fl->remote_bufs);
  1483. spin_unlock(&fl->hlock);
  1484. }
  1485. *obuf = buf;
  1486. bail:
  1487. if (buf)
  1488. ktime_get_real_ts64(&buf->buf_end_time);
  1489. if (err && buf)
  1490. fastrpc_buf_free(buf, 0);
  1491. return err;
  1492. }
  1493. static int context_restore_interrupted(struct fastrpc_file *fl,
  1494. struct fastrpc_ioctl_invoke_async *inv,
  1495. struct smq_invoke_ctx **po)
  1496. {
  1497. int err = 0;
  1498. struct smq_invoke_ctx *ctx = NULL, *ictx = NULL;
  1499. struct hlist_node *n;
  1500. struct fastrpc_ioctl_invoke *invoke = &inv->inv;
  1501. spin_lock(&fl->hlock);
  1502. hlist_for_each_entry_safe(ictx, n, &fl->clst.interrupted, hn) {
  1503. if (ictx->pid == current->pid) {
  1504. if (invoke->sc != ictx->sc || ictx->fl != fl) {
  1505. err = -EINVAL;
  1506. ictx->sc_interrupted = invoke->sc;
  1507. ictx->fl_interrupted = fl;
  1508. ictx->handle_interrupted = invoke->handle;
  1509. ADSPRPC_ERR(
  1510. "interrupted sc (0x%x) or fl (%pK) does not match with invoke sc (0x%x) or fl (%pK)\n",
  1511. ictx->sc, ictx->fl, invoke->sc, fl);
  1512. } else {
  1513. ictx->xo_time_in_us_restored = CONVERT_CNT_TO_US(__arch_counter_get_cntvct());
  1514. fastrpc_update_txmsg_buf(NULL, 0, 0, 0, ictx, RESTORED_STATE);
  1515. ADSPRPC_DEBUG(
  1516. "restored sc (0x%x) of fl (%pK), interrupt ts 0x%llx, restore ts 0x%llx \n",
  1517. ictx->sc, ictx->fl, ictx->xo_time_in_us_interrupted, ictx->xo_time_in_us_restored);
  1518. ctx = ictx;
  1519. hlist_del_init(&ctx->hn);
  1520. hlist_add_head(&ctx->hn, &fl->clst.pending);
  1521. }
  1522. break;
  1523. }
  1524. }
  1525. spin_unlock(&fl->hlock);
  1526. if (ctx)
  1527. *po = ctx;
  1528. return err;
  1529. }
  1530. static unsigned int sorted_lists_intersection(unsigned int *listA,
  1531. unsigned int lenA, unsigned int *listB, unsigned int lenB)
  1532. {
  1533. unsigned int i = 0, j = 0;
  1534. while (i < lenA && j < lenB) {
  1535. if (listA[i] < listB[j])
  1536. i++;
  1537. else if (listA[i] > listB[j])
  1538. j++;
  1539. else
  1540. return listA[i];
  1541. }
  1542. return 0;
  1543. }
  1544. #define CMP(aa, bb) ((aa) == (bb) ? 0 : (aa) < (bb) ? -1 : 1)
  1545. static int uint_cmp_func(const void *p1, const void *p2)
  1546. {
  1547. unsigned int a1 = *((unsigned int *)p1);
  1548. unsigned int a2 = *((unsigned int *)p2);
  1549. return CMP(a1, a2);
  1550. }
  1551. static int overlap_ptr_cmp(const void *a, const void *b)
  1552. {
  1553. struct overlap *pa = *((struct overlap **)a);
  1554. struct overlap *pb = *((struct overlap **)b);
  1555. /* sort with lowest starting buffer first */
  1556. int st = CMP(pa->start, pb->start);
  1557. /* sort with highest ending buffer first */
  1558. int ed = CMP(pb->end, pa->end);
  1559. return st == 0 ? ed : st;
  1560. }
  1561. static int context_build_overlap(struct smq_invoke_ctx *ctx)
  1562. {
  1563. int i, err = 0;
  1564. remote_arg_t *lpra = ctx->lpra;
  1565. int inbufs = REMOTE_SCALARS_INBUFS(ctx->sc);
  1566. int outbufs = REMOTE_SCALARS_OUTBUFS(ctx->sc);
  1567. int nbufs = inbufs + outbufs;
  1568. struct overlap max;
  1569. for (i = 0; i < nbufs; ++i) {
  1570. ctx->overs[i].start = (uintptr_t)lpra[i].buf.pv;
  1571. ctx->overs[i].end = ctx->overs[i].start + lpra[i].buf.len;
  1572. if (lpra[i].buf.len) {
  1573. VERIFY(err, ctx->overs[i].end > ctx->overs[i].start);
  1574. if (err) {
  1575. err = -EFAULT;
  1576. ADSPRPC_ERR(
  1577. "Invalid address 0x%llx and size %zu\n",
  1578. (uintptr_t)lpra[i].buf.pv,
  1579. lpra[i].buf.len);
  1580. goto bail;
  1581. }
  1582. }
  1583. ctx->overs[i].raix = i;
  1584. ctx->overps[i] = &ctx->overs[i];
  1585. }
  1586. sort(ctx->overps, nbufs, sizeof(*ctx->overps), overlap_ptr_cmp, NULL);
  1587. max.start = 0;
  1588. max.end = 0;
  1589. for (i = 0; i < nbufs; ++i) {
  1590. if (ctx->overps[i]->start < max.end) {
  1591. ctx->overps[i]->mstart = max.end;
  1592. ctx->overps[i]->mend = ctx->overps[i]->end;
  1593. ctx->overps[i]->offset = max.end -
  1594. ctx->overps[i]->start;
  1595. if (ctx->overps[i]->end > max.end) {
  1596. max.end = ctx->overps[i]->end;
  1597. } else {
  1598. if ((max.raix < inbufs &&
  1599. ctx->overps[i]->raix + 1 > inbufs) ||
  1600. (ctx->overps[i]->raix < inbufs &&
  1601. max.raix + 1 > inbufs))
  1602. ctx->overps[i]->do_cmo = 1;
  1603. ctx->overps[i]->mend = 0;
  1604. ctx->overps[i]->mstart = 0;
  1605. }
  1606. } else {
  1607. ctx->overps[i]->mend = ctx->overps[i]->end;
  1608. ctx->overps[i]->mstart = ctx->overps[i]->start;
  1609. ctx->overps[i]->offset = 0;
  1610. max = *ctx->overps[i];
  1611. }
  1612. }
  1613. bail:
  1614. return err;
  1615. }
  1616. #define K_COPY_FROM_USER(err, kernel, dst, src, size) \
  1617. do {\
  1618. if (!(kernel))\
  1619. err = copy_from_user((dst),\
  1620. (void const __user *)(src),\
  1621. (size));\
  1622. else\
  1623. memmove((dst), (src), (size));\
  1624. } while (0)
  1625. #define K_COPY_TO_USER(err, kernel, dst, src, size) \
  1626. do {\
  1627. if (!(kernel))\
  1628. err = copy_to_user((void __user *)(dst),\
  1629. (src), (size));\
  1630. else\
  1631. memmove((dst), (src), (size));\
  1632. } while (0)
  1633. static void context_free(struct smq_invoke_ctx *ctx);
  1634. static int context_alloc(struct fastrpc_file *fl, uint32_t kernel,
  1635. struct fastrpc_ioctl_invoke_async *invokefd,
  1636. struct smq_invoke_ctx **po)
  1637. {
  1638. struct fastrpc_apps *me = &gfa;
  1639. int err = 0, bufs, ii, size = 0, cid = fl->cid;
  1640. struct smq_invoke_ctx *ctx = NULL;
  1641. struct fastrpc_ctx_lst *clst = &fl->clst;
  1642. struct fastrpc_ioctl_invoke *invoke = &invokefd->inv;
  1643. struct fastrpc_channel_ctx *chan = NULL;
  1644. unsigned long irq_flags = 0;
  1645. uint32_t is_kernel_memory = 0;
  1646. spin_lock(&fl->hlock);
  1647. if (fl->clst.num_active_ctxs > MAX_PENDING_CTX_PER_SESSION &&
  1648. !(kernel || invoke->handle < FASTRPC_STATIC_HANDLE_MAX)) {
  1649. err = -EDQUOT;
  1650. spin_unlock(&fl->hlock);
  1651. goto bail;
  1652. }
  1653. spin_unlock(&fl->hlock);
  1654. bufs = REMOTE_SCALARS_LENGTH(invoke->sc);
  1655. size = bufs * sizeof(*ctx->lpra) + bufs * sizeof(*ctx->maps) +
  1656. sizeof(*ctx->fds) * (bufs) +
  1657. sizeof(*ctx->attrs) * (bufs) +
  1658. sizeof(*ctx->overs) * (bufs) +
  1659. sizeof(*ctx->overps) * (bufs);
  1660. VERIFY(err, NULL != (ctx = kzalloc(sizeof(*ctx) + size, GFP_KERNEL)));
  1661. if (err) {
  1662. err = -ENOMEM;
  1663. goto bail;
  1664. }
  1665. INIT_HLIST_NODE(&ctx->hn);
  1666. INIT_HLIST_NODE(&ctx->asyncn);
  1667. hlist_add_fake(&ctx->hn);
  1668. hlist_add_fake(&ctx->asyncn);
  1669. ctx->fl = fl;
  1670. ctx->maps = (struct fastrpc_mmap **)(&ctx[1]);
  1671. ctx->lpra = (remote_arg_t *)(&ctx->maps[bufs]);
  1672. ctx->fds = (int *)(&ctx->lpra[bufs]);
  1673. ctx->attrs = (unsigned int *)(&ctx->fds[bufs]);
  1674. ctx->overs = (struct overlap *)(&ctx->attrs[bufs]);
  1675. ctx->overps = (struct overlap **)(&ctx->overs[bufs]);
  1676. /* If user message, do not use copy_from_user to copy buffers for
  1677. * compat driver,as memory is already copied to kernel memory
  1678. * for compat driver
  1679. */
  1680. is_kernel_memory = ((kernel == USER_MSG) ? (fl->is_compat) : kernel);
  1681. K_COPY_FROM_USER(err, is_kernel_memory, (void *)ctx->lpra, invoke->pra,
  1682. bufs * sizeof(*ctx->lpra));
  1683. if (err) {
  1684. ADSPRPC_ERR(
  1685. "copy from user failed with %d for remote arguments list\n",
  1686. err);
  1687. err = -EFAULT;
  1688. goto bail;
  1689. }
  1690. if (invokefd->fds) {
  1691. K_COPY_FROM_USER(err, kernel, ctx->fds, invokefd->fds,
  1692. bufs * sizeof(*ctx->fds));
  1693. if (err) {
  1694. ADSPRPC_ERR(
  1695. "copy from user failed with %d for fd list\n",
  1696. err);
  1697. err = -EFAULT;
  1698. goto bail;
  1699. }
  1700. } else {
  1701. ctx->fds = NULL;
  1702. }
  1703. if (invokefd->attrs) {
  1704. K_COPY_FROM_USER(err, kernel, ctx->attrs, invokefd->attrs,
  1705. bufs * sizeof(*ctx->attrs));
  1706. if (err) {
  1707. ADSPRPC_ERR(
  1708. "copy from user failed with %d for attribute list\n",
  1709. err);
  1710. err = -EFAULT;
  1711. goto bail;
  1712. }
  1713. }
  1714. ctx->crc = (uint32_t *)invokefd->crc;
  1715. ctx->perf_dsp = (uint64_t *)invokefd->perf_dsp;
  1716. ctx->perf_kernel = (uint64_t *)invokefd->perf_kernel;
  1717. ctx->handle = invoke->handle;
  1718. ctx->sc = invoke->sc;
  1719. if (bufs) {
  1720. VERIFY(err, 0 == (err = context_build_overlap(ctx)));
  1721. if (err)
  1722. goto bail;
  1723. }
  1724. ctx->retval = -1;
  1725. ctx->pid = current->pid;
  1726. /* Store HLOS PID in context, it is not being sent to DSP */
  1727. ctx->tgid = fl->tgid;
  1728. init_completion(&ctx->work);
  1729. ctx->magic = FASTRPC_CTX_MAGIC;
  1730. ctx->rsp_flags = NORMAL_RESPONSE;
  1731. ctx->is_work_done = false;
  1732. ctx->copybuf = NULL;
  1733. ctx->is_early_wakeup = false;
  1734. ctx->is_job_sent_to_remote_ss = false;
  1735. if (ctx->fl->profile) {
  1736. ctx->perf = kzalloc(sizeof(*(ctx->perf)), GFP_KERNEL);
  1737. VERIFY(err, !IS_ERR_OR_NULL(ctx->perf));
  1738. if (err) {
  1739. kfree(ctx->perf);
  1740. err = -ENOMEM;
  1741. goto bail;
  1742. }
  1743. memset(ctx->perf, 0, sizeof(*(ctx->perf)));
  1744. /* Use HLOS PID, as perf tid is not being sent to DSP and is used to log in traces */
  1745. ctx->perf->tid = fl->tgid;
  1746. }
  1747. if (invokefd->job) {
  1748. K_COPY_FROM_USER(err, kernel, &ctx->asyncjob, invokefd->job,
  1749. sizeof(ctx->asyncjob));
  1750. if (err)
  1751. goto bail;
  1752. }
  1753. VERIFY(err, VALID_FASTRPC_CID(cid));
  1754. if (err) {
  1755. err = -ECHRNG;
  1756. goto bail;
  1757. }
  1758. chan = &me->channel[cid];
  1759. spin_lock_irqsave(&chan->ctxlock, irq_flags);
  1760. me->jobid[cid]++;
  1761. for (ii = ((kernel || ctx->handle < FASTRPC_STATIC_HANDLE_MAX)
  1762. ? 0 : NUM_KERNEL_AND_STATIC_ONLY_CONTEXTS);
  1763. ii < FASTRPC_CTX_MAX; ii++) {
  1764. if (!chan->ctxtable[ii]) {
  1765. chan->ctxtable[ii] = ctx;
  1766. ctx->ctxid = (me->jobid[cid] << FASTRPC_CTX_JOBID_POS)
  1767. | (ii << FASTRPC_CTX_TABLE_IDX_POS)
  1768. | ((ctx->asyncjob.isasyncjob &&
  1769. FASTRPC_ASYNC_JOB_MASK) << FASTRPC_CTX_JOB_TYPE_POS);
  1770. break;
  1771. }
  1772. }
  1773. spin_unlock_irqrestore(&chan->ctxlock, irq_flags);
  1774. VERIFY(err, ii < FASTRPC_CTX_MAX);
  1775. if (err) {
  1776. ADSPRPC_ERR(
  1777. "adsprpc: out of context table entries for handle 0x%x, sc 0x%x\n",
  1778. ctx->handle, ctx->sc);
  1779. err = -ENOKEY;
  1780. goto bail;
  1781. }
  1782. ctx->xo_time_in_us_created = CONVERT_CNT_TO_US(__arch_counter_get_cntvct());
  1783. spin_lock(&fl->hlock);
  1784. hlist_add_head(&ctx->hn, &clst->pending);
  1785. clst->num_active_ctxs++;
  1786. spin_unlock(&fl->hlock);
  1787. trace_fastrpc_context_alloc((uint64_t)ctx,
  1788. ctx->ctxid | fl->pd, ctx->handle, ctx->sc);
  1789. *po = ctx;
  1790. bail:
  1791. if (ctx && err)
  1792. context_free(ctx);
  1793. return err;
  1794. }
  1795. static void context_save_interrupted(struct smq_invoke_ctx *ctx)
  1796. {
  1797. struct fastrpc_ctx_lst *clst = &ctx->fl->clst;
  1798. ctx->xo_time_in_us_interrupted = CONVERT_CNT_TO_US(__arch_counter_get_cntvct());
  1799. fastrpc_update_txmsg_buf(NULL, 0, 0, 0, ctx, INTERRUPTED_STATE);
  1800. spin_lock(&ctx->fl->hlock);
  1801. hlist_del_init(&ctx->hn);
  1802. hlist_add_head(&ctx->hn, &clst->interrupted);
  1803. spin_unlock(&ctx->fl->hlock);
  1804. }
  1805. static void context_free(struct smq_invoke_ctx *ctx)
  1806. {
  1807. uint32_t i = 0;
  1808. struct fastrpc_apps *me = &gfa;
  1809. int nbufs = REMOTE_SCALARS_INBUFS(ctx->sc) +
  1810. REMOTE_SCALARS_OUTBUFS(ctx->sc);
  1811. int cid = ctx->fl->cid;
  1812. struct fastrpc_channel_ctx *chan = NULL;
  1813. unsigned long irq_flags = 0;
  1814. int err = 0;
  1815. VERIFY(err, VALID_FASTRPC_CID(cid));
  1816. if (err) {
  1817. ADSPRPC_ERR(
  1818. "invalid channel 0x%zx set for session\n",
  1819. cid);
  1820. return;
  1821. }
  1822. chan = &me->channel[cid];
  1823. i = (uint32_t)GET_TABLE_IDX_FROM_CTXID(ctx->ctxid);
  1824. spin_lock_irqsave(&chan->ctxlock, irq_flags);
  1825. if (i < FASTRPC_CTX_MAX && chan->ctxtable[i] == ctx) {
  1826. chan->ctxtable[i] = NULL;
  1827. } else {
  1828. for (i = 0; i < FASTRPC_CTX_MAX; i++) {
  1829. if (chan->ctxtable[i] == ctx) {
  1830. chan->ctxtable[i] = NULL;
  1831. break;
  1832. }
  1833. }
  1834. }
  1835. spin_unlock_irqrestore(&chan->ctxlock, irq_flags);
  1836. spin_lock(&ctx->fl->hlock);
  1837. if (!hlist_unhashed(&ctx->hn)) {
  1838. hlist_del_init(&ctx->hn);
  1839. ctx->fl->clst.num_active_ctxs--;
  1840. }
  1841. spin_unlock(&ctx->fl->hlock);
  1842. mutex_lock(&ctx->fl->map_mutex);
  1843. for (i = 0; i < nbufs; ++i) {
  1844. /*
  1845. * Decrement ctx refs count before mmap free,
  1846. * indicate remote call no longer using it
  1847. */
  1848. if (ctx->maps[i] && ctx->maps[i]->ctx_refs)
  1849. ctx->maps[i]->ctx_refs--;
  1850. fastrpc_mmap_free(ctx->maps[i], 0);
  1851. }
  1852. mutex_unlock(&ctx->fl->map_mutex);
  1853. fastrpc_buf_free(ctx->buf, 1);
  1854. if (ctx->copybuf != ctx->buf)
  1855. fastrpc_buf_free(ctx->copybuf, 1);
  1856. kfree(ctx->lrpra);
  1857. ctx->lrpra = NULL;
  1858. ctx->magic = 0;
  1859. ctx->ctxid = 0;
  1860. if (ctx->fl->profile)
  1861. kfree(ctx->perf);
  1862. trace_fastrpc_context_free((uint64_t)ctx,
  1863. ctx->msg.invoke.header.ctx, ctx->handle, ctx->sc);
  1864. kfree(ctx);
  1865. }
  1866. static void fastrpc_queue_completed_async_job(struct smq_invoke_ctx *ctx)
  1867. {
  1868. struct fastrpc_file *fl = ctx->fl;
  1869. unsigned long flags;
  1870. spin_lock_irqsave(&fl->aqlock, flags);
  1871. if (ctx->is_early_wakeup)
  1872. goto bail;
  1873. if (!hlist_unhashed(&ctx->asyncn)) {
  1874. hlist_add_head(&ctx->asyncn, &fl->clst.async_queue);
  1875. atomic_add(1, &fl->async_queue_job_count);
  1876. ctx->is_early_wakeup = true;
  1877. wake_up_interruptible(&fl->async_wait_queue);
  1878. }
  1879. bail:
  1880. spin_unlock_irqrestore(&fl->aqlock, flags);
  1881. }
  1882. static void fastrpc_queue_pd_status(struct fastrpc_file *fl, int domain, int status, int sessionid)
  1883. {
  1884. struct smq_notif_rsp *notif_rsp = NULL;
  1885. unsigned long flags;
  1886. int err = 0;
  1887. VERIFY(err, NULL != (notif_rsp = kzalloc(sizeof(*notif_rsp), GFP_ATOMIC)));
  1888. if (err) {
  1889. ADSPRPC_ERR(
  1890. "allocation failed for size 0x%zx\n",
  1891. sizeof(*notif_rsp));
  1892. return;
  1893. }
  1894. notif_rsp->status = status;
  1895. notif_rsp->domain = domain;
  1896. notif_rsp->session = sessionid;
  1897. spin_lock_irqsave(&fl->proc_state_notif.nqlock, flags);
  1898. list_add_tail(&notif_rsp->notifn, &fl->clst.notif_queue);
  1899. atomic_add(1, &fl->proc_state_notif.notif_queue_count);
  1900. wake_up_interruptible(&fl->proc_state_notif.notif_wait_queue);
  1901. spin_unlock_irqrestore(&fl->proc_state_notif.nqlock, flags);
  1902. }
  1903. static void fastrpc_notif_find_process(int domain, struct smq_notif_rspv3 *notif)
  1904. {
  1905. struct fastrpc_apps *me = &gfa;
  1906. struct fastrpc_file *fl = NULL;
  1907. struct hlist_node *n;
  1908. bool is_process_found = false;
  1909. unsigned long irq_flags = 0;
  1910. int err = 0;
  1911. spin_lock_irqsave(&me->hlock, irq_flags);
  1912. hlist_for_each_entry_safe(fl, n, &me->drivers, hn) {
  1913. if (fl->tgid_frpc == notif->pid) {
  1914. is_process_found = true;
  1915. err = fastrpc_file_get(fl);
  1916. if (err) {
  1917. ADSPRPC_ERR("Failed to get user process reference for fl (%pK)\n", fl);
  1918. is_process_found = false;
  1919. }
  1920. break;
  1921. }
  1922. }
  1923. spin_unlock_irqrestore(&me->hlock, irq_flags);
  1924. if (!is_process_found)
  1925. return;
  1926. fastrpc_queue_pd_status(fl, domain, notif->status, fl->sessionid);
  1927. fastrpc_file_put(fl);
  1928. }
  1929. static void context_notify_user(struct smq_invoke_ctx *ctx,
  1930. int retval, uint32_t rsp_flags, uint32_t early_wake_time)
  1931. {
  1932. fastrpc_pm_awake(ctx->fl, gcinfo[ctx->fl->cid].secure);
  1933. ctx->retval = retval;
  1934. ctx->rsp_flags = (enum fastrpc_response_flags)rsp_flags;
  1935. trace_fastrpc_context_complete(ctx->fl->cid, (uint64_t)ctx, retval,
  1936. ctx->msg.invoke.header.ctx, ctx->handle, ctx->sc);
  1937. switch (rsp_flags) {
  1938. case NORMAL_RESPONSE:
  1939. fallthrough;
  1940. case COMPLETE_SIGNAL:
  1941. /* normal and complete response with return value */
  1942. ctx->is_work_done = true;
  1943. if (ctx->asyncjob.isasyncjob)
  1944. fastrpc_queue_completed_async_job(ctx);
  1945. trace_fastrpc_msg("wakeup_task: begin");
  1946. complete(&ctx->work);
  1947. trace_fastrpc_msg("wakeup_task: end");
  1948. break;
  1949. case USER_EARLY_SIGNAL:
  1950. /* user hint of approximate time of completion */
  1951. ctx->early_wake_time = early_wake_time;
  1952. if (ctx->asyncjob.isasyncjob)
  1953. break;
  1954. fallthrough;
  1955. case EARLY_RESPONSE:
  1956. /* rpc framework early response with return value */
  1957. if (ctx->asyncjob.isasyncjob)
  1958. fastrpc_queue_completed_async_job(ctx);
  1959. else {
  1960. trace_fastrpc_msg("wakeup_task: begin");
  1961. complete(&ctx->work);
  1962. trace_fastrpc_msg("wakeup_task: end");
  1963. }
  1964. break;
  1965. default:
  1966. break;
  1967. }
  1968. }
  1969. static void fastrpc_notify_users(struct fastrpc_file *me)
  1970. {
  1971. struct smq_invoke_ctx *ictx;
  1972. struct hlist_node *n;
  1973. unsigned long irq_flags = 0;
  1974. spin_lock_irqsave(&me->hlock, irq_flags);
  1975. hlist_for_each_entry_safe(ictx, n, &me->clst.pending, hn) {
  1976. ictx->is_work_done = true;
  1977. ictx->retval = -ECONNRESET;
  1978. trace_fastrpc_context_complete(me->cid, (uint64_t)ictx,
  1979. ictx->retval, ictx->msg.invoke.header.ctx,
  1980. ictx->handle, ictx->sc);
  1981. if (ictx->asyncjob.isasyncjob && ictx->is_job_sent_to_remote_ss)
  1982. fastrpc_queue_completed_async_job(ictx);
  1983. else
  1984. complete(&ictx->work);
  1985. }
  1986. hlist_for_each_entry_safe(ictx, n, &me->clst.interrupted, hn) {
  1987. ictx->is_work_done = true;
  1988. ictx->retval = -ECONNRESET;
  1989. trace_fastrpc_context_complete(me->cid, (uint64_t)ictx,
  1990. ictx->retval, ictx->msg.invoke.header.ctx,
  1991. ictx->handle, ictx->sc);
  1992. complete(&ictx->work);
  1993. }
  1994. spin_unlock_irqrestore(&me->hlock, irq_flags);
  1995. }
  1996. static void fastrpc_notify_users_staticpd_pdr(struct fastrpc_file *me)
  1997. {
  1998. struct smq_invoke_ctx *ictx;
  1999. struct hlist_node *n;
  2000. unsigned long irq_flags = 0;
  2001. spin_lock_irqsave(&me->hlock, irq_flags);
  2002. hlist_for_each_entry_safe(ictx, n, &me->clst.pending, hn) {
  2003. if (ictx->msg.pid) {
  2004. ictx->is_work_done = true;
  2005. ictx->retval = -ECONNRESET;
  2006. trace_fastrpc_context_complete(me->cid, (uint64_t)ictx,
  2007. ictx->retval, ictx->msg.invoke.header.ctx,
  2008. ictx->handle, ictx->sc);
  2009. if (ictx->asyncjob.isasyncjob && ictx->is_job_sent_to_remote_ss)
  2010. fastrpc_queue_completed_async_job(ictx);
  2011. else
  2012. complete(&ictx->work);
  2013. }
  2014. }
  2015. hlist_for_each_entry_safe(ictx, n, &me->clst.interrupted, hn) {
  2016. if (ictx->msg.pid) {
  2017. ictx->is_work_done = true;
  2018. ictx->retval = -ECONNRESET;
  2019. trace_fastrpc_context_complete(me->cid, (uint64_t)ictx,
  2020. ictx->retval, ictx->msg.invoke.header.ctx,
  2021. ictx->handle, ictx->sc);
  2022. complete(&ictx->work);
  2023. }
  2024. }
  2025. spin_unlock_irqrestore(&me->hlock, irq_flags);
  2026. }
  2027. static void fastrpc_update_ramdump_status(int cid)
  2028. {
  2029. struct fastrpc_file *fl = NULL;
  2030. struct hlist_node *n = NULL;
  2031. struct fastrpc_apps *me = &gfa;
  2032. struct fastrpc_channel_ctx *chan = &me->channel[cid];
  2033. unsigned long irq_flags = 0;
  2034. int ret = 0;
  2035. spin_lock_irqsave(&me->hlock, irq_flags);
  2036. hlist_for_each_entry_safe(fl, n, &me->drivers, hn) {
  2037. if (fl->cid == cid && fl->init_mem &&
  2038. fl->file_close < FASTRPC_PROCESS_DSP_EXIT_COMPLETE &&
  2039. fl->dsp_proc_init) {
  2040. ret = fastrpc_file_get(fl);
  2041. if (ret) {
  2042. ADSPRPC_ERR("Failed to get user process reference for fl (%pK)\n", fl);
  2043. continue;
  2044. }
  2045. hlist_add_head(&fl->init_mem->hn_init, &chan->initmems);
  2046. }
  2047. }
  2048. if (chan->buf)
  2049. hlist_add_head(&chan->buf->hn_init, &chan->initmems);
  2050. spin_unlock_irqrestore(&me->hlock, irq_flags);
  2051. }
  2052. static void fastrpc_ramdump_collection(int cid)
  2053. {
  2054. struct fastrpc_file *fl = NULL;
  2055. struct hlist_node *n = NULL;
  2056. struct fastrpc_apps *me = &gfa;
  2057. struct fastrpc_channel_ctx *chan = &me->channel[cid];
  2058. struct qcom_dump_segment ramdump_entry;
  2059. struct fastrpc_buf *buf = NULL;
  2060. int ret = 0;
  2061. struct list_head head;
  2062. hlist_for_each_entry_safe(buf, n, &chan->initmems, hn_init) {
  2063. fl = buf->fl;
  2064. memset(&ramdump_entry, 0, sizeof(ramdump_entry));
  2065. ramdump_entry.da = buf->phys;
  2066. ramdump_entry.va = (void *)buf->virt;
  2067. ramdump_entry.size = buf->size;
  2068. INIT_LIST_HEAD(&head);
  2069. list_add(&ramdump_entry.node, &head);
  2070. if (fl && fl->sctx && fl->sctx->smmu.dev) {
  2071. ret = qcom_elf_dump(&head, fl->sctx->smmu.dev, ELF_CLASS);
  2072. } else {
  2073. if (me->dev != NULL)
  2074. ret = qcom_elf_dump(&head, me->dev, ELF_CLASS);
  2075. }
  2076. if (ret < 0)
  2077. ADSPRPC_ERR("adsprpc: %s: unable to dump PD memory (err %d)\n",
  2078. __func__, ret);
  2079. hlist_del_init(&buf->hn_init);
  2080. if (fl)
  2081. fastrpc_file_put(fl);
  2082. }
  2083. }
  2084. static void fastrpc_notify_drivers(struct fastrpc_apps *me, int cid)
  2085. {
  2086. struct fastrpc_file *fl;
  2087. struct hlist_node *n;
  2088. unsigned long irq_flags = 0;
  2089. spin_lock_irqsave(&me->hlock, irq_flags);
  2090. hlist_for_each_entry_safe(fl, n, &me->drivers, hn) {
  2091. if (fl->cid == cid) {
  2092. fastrpc_queue_pd_status(fl, cid, FASTRPC_DSP_SSR, fl->sessionid);
  2093. fastrpc_notify_users(fl);
  2094. }
  2095. }
  2096. spin_unlock_irqrestore(&me->hlock, irq_flags);
  2097. }
  2098. static void fastrpc_notify_pdr_drivers(struct fastrpc_apps *me,
  2099. char *servloc_name)
  2100. {
  2101. struct fastrpc_file *fl;
  2102. struct hlist_node *n;
  2103. unsigned long irq_flags = 0;
  2104. spin_lock_irqsave(&me->hlock, irq_flags);
  2105. hlist_for_each_entry_safe(fl, n, &me->drivers, hn) {
  2106. if (fl->servloc_name && !strcmp(servloc_name, fl->servloc_name))
  2107. fastrpc_notify_users_staticpd_pdr(fl);
  2108. }
  2109. spin_unlock_irqrestore(&me->hlock, irq_flags);
  2110. }
  2111. static void context_list_ctor(struct fastrpc_ctx_lst *me)
  2112. {
  2113. INIT_HLIST_HEAD(&me->interrupted);
  2114. INIT_HLIST_HEAD(&me->pending);
  2115. me->num_active_ctxs = 0;
  2116. INIT_HLIST_HEAD(&me->async_queue);
  2117. INIT_LIST_HEAD(&me->notif_queue);
  2118. }
  2119. static void fastrpc_context_list_dtor(struct fastrpc_file *fl)
  2120. {
  2121. struct fastrpc_ctx_lst *clst = &fl->clst;
  2122. struct smq_invoke_ctx *ictx = NULL, *ctxfree;
  2123. struct hlist_node *n;
  2124. unsigned long irq_flags = 0;
  2125. struct smq_notif_rsp *inotif = NULL, *n1 = NULL;
  2126. do {
  2127. ctxfree = NULL;
  2128. spin_lock(&fl->hlock);
  2129. hlist_for_each_entry_safe(ictx, n, &clst->interrupted, hn) {
  2130. hlist_del_init(&ictx->hn);
  2131. clst->num_active_ctxs--;
  2132. ctxfree = ictx;
  2133. break;
  2134. }
  2135. spin_unlock(&fl->hlock);
  2136. if (ctxfree)
  2137. context_free(ctxfree);
  2138. } while (ctxfree);
  2139. do {
  2140. ctxfree = NULL;
  2141. spin_lock(&fl->hlock);
  2142. hlist_for_each_entry_safe(ictx, n, &clst->pending, hn) {
  2143. hlist_del_init(&ictx->hn);
  2144. clst->num_active_ctxs--;
  2145. ctxfree = ictx;
  2146. break;
  2147. }
  2148. spin_unlock(&fl->hlock);
  2149. if (ctxfree)
  2150. context_free(ctxfree);
  2151. } while (ctxfree);
  2152. spin_lock_irqsave(&fl->proc_state_notif.nqlock, irq_flags);
  2153. list_for_each_entry_safe(inotif, n1, &clst->notif_queue, notifn) {
  2154. list_del_init(&inotif->notifn);
  2155. atomic_sub(1, &fl->proc_state_notif.notif_queue_count);
  2156. kfree(inotif);
  2157. }
  2158. spin_unlock_irqrestore(&fl->proc_state_notif.nqlock, irq_flags);
  2159. }
  2160. static void fastrpc_file_free(struct kref *ref);
  2161. static void fastrpc_file_list_dtor(struct fastrpc_apps *me)
  2162. {
  2163. struct fastrpc_file *fl, *free;
  2164. struct hlist_node *n;
  2165. unsigned long irq_flags = 0;
  2166. do {
  2167. free = NULL;
  2168. spin_lock_irqsave(&me->hlock, irq_flags);
  2169. hlist_for_each_entry_safe(fl, n, &me->drivers, hn) {
  2170. hlist_del_init(&fl->hn);
  2171. free = fl;
  2172. break;
  2173. }
  2174. spin_unlock_irqrestore(&me->hlock, irq_flags);
  2175. if (free)
  2176. fastrpc_file_put(free);
  2177. } while (free);
  2178. }
  2179. static int get_args(uint32_t kernel, struct smq_invoke_ctx *ctx)
  2180. {
  2181. remote_arg64_t *rpra, *lrpra;
  2182. remote_arg_t *lpra = ctx->lpra;
  2183. struct smq_invoke_buf *list;
  2184. struct smq_phy_page *pages, *ipage;
  2185. uint32_t sc = ctx->sc;
  2186. int inbufs = REMOTE_SCALARS_INBUFS(sc);
  2187. int outbufs = REMOTE_SCALARS_OUTBUFS(sc);
  2188. int handles, bufs = inbufs + outbufs;
  2189. uintptr_t args = 0;
  2190. size_t rlen = 0, copylen = 0, metalen = 0, lrpralen = 0, templen = 0;
  2191. size_t totallen = 0; //header and non ion copy buf len
  2192. int i, oix;
  2193. int err = 0, j = 0;
  2194. int mflags = 0;
  2195. uint64_t *fdlist = NULL;
  2196. uint32_t *crclist = NULL;
  2197. uint32_t early_hint;
  2198. uint64_t *perf_counter = NULL;
  2199. struct fastrpc_dsp_capabilities *dsp_cap_ptr = NULL;
  2200. if (ctx->fl->profile)
  2201. perf_counter = (uint64_t *)ctx->perf + PERF_COUNT;
  2202. /* calculate size of the metadata */
  2203. rpra = NULL;
  2204. lrpra = NULL;
  2205. list = smq_invoke_buf_start(rpra, sc);
  2206. pages = smq_phy_page_start(sc, list);
  2207. ipage = pages;
  2208. PERF(ctx->fl->profile, GET_COUNTER(perf_counter, PERF_MAP),
  2209. for (i = 0; i < bufs; ++i) {
  2210. uintptr_t buf = (uintptr_t)lpra[i].buf.pv;
  2211. size_t len = lpra[i].buf.len;
  2212. mutex_lock(&ctx->fl->map_mutex);
  2213. if (ctx->fds && (ctx->fds[i] != -1))
  2214. err = fastrpc_mmap_create(ctx->fl, ctx->fds[i], NULL,
  2215. ctx->attrs[i], buf, len,
  2216. mflags, &ctx->maps[i]);
  2217. /*
  2218. * Increment ctx refs count for in/out buffer if map created,
  2219. * indicate map under use in remote call
  2220. */
  2221. if (ctx->maps[i])
  2222. ctx->maps[i]->ctx_refs++;
  2223. mutex_unlock(&ctx->fl->map_mutex);
  2224. if (err)
  2225. goto bail;
  2226. ipage += 1;
  2227. }
  2228. PERF_END);
  2229. handles = REMOTE_SCALARS_INHANDLES(sc) + REMOTE_SCALARS_OUTHANDLES(sc);
  2230. mutex_lock(&ctx->fl->map_mutex);
  2231. for (i = bufs; i < bufs + handles; i++) {
  2232. int dmaflags = 0;
  2233. if (ctx->attrs && (ctx->attrs[i] & FASTRPC_ATTR_NOMAP))
  2234. dmaflags = FASTRPC_MAP_FD_NOMAP;
  2235. VERIFY(err, VALID_FASTRPC_CID(ctx->fl->cid));
  2236. if (err) {
  2237. err = -ECHRNG;
  2238. mutex_unlock(&ctx->fl->map_mutex);
  2239. goto bail;
  2240. }
  2241. dsp_cap_ptr = &gcinfo[ctx->fl->cid].dsp_cap_kernel;
  2242. // Skip cpu mapping if DMA_HANDLE_REVERSE_RPC_CAP is true.
  2243. if (!dsp_cap_ptr->dsp_attributes[DMA_HANDLE_REVERSE_RPC_CAP] &&
  2244. ctx->fds && (ctx->fds[i] != -1))
  2245. err = fastrpc_mmap_create(ctx->fl, ctx->fds[i], NULL,
  2246. FASTRPC_ATTR_NOVA, 0, 0, dmaflags,
  2247. &ctx->maps[i]);
  2248. if (err) {
  2249. for (j = bufs; j < i; j++) {
  2250. /*
  2251. * Due to error decrement ctx refs count before mmap free
  2252. * for each in/out handle, if map created
  2253. */
  2254. if (ctx->maps[j] && ctx->maps[j]->ctx_refs)
  2255. ctx->maps[j]->ctx_refs--;
  2256. fastrpc_mmap_free(ctx->maps[j], 0);
  2257. }
  2258. mutex_unlock(&ctx->fl->map_mutex);
  2259. goto bail;
  2260. } else if (ctx->maps[i]) {
  2261. /*
  2262. * Increment ctx refs count for in/out handle if map created
  2263. * and no error, indicate map under use in remote call
  2264. */
  2265. ctx->maps[i]->ctx_refs++;
  2266. }
  2267. ipage += 1;
  2268. }
  2269. mutex_unlock(&ctx->fl->map_mutex);
  2270. /* metalen includes meta data, fds, crc, dsp perf and early wakeup hint */
  2271. metalen = totallen = (size_t)&ipage[0] + (sizeof(uint64_t) * M_FDLIST) +
  2272. (sizeof(uint32_t) * M_CRCLIST) + (sizeof(uint64_t) * M_DSP_PERF_LIST) +
  2273. sizeof(early_hint);
  2274. if (metalen) {
  2275. err = fastrpc_buf_alloc(ctx->fl, metalen, 0, 0,
  2276. METADATA_BUF, &ctx->buf);
  2277. if (err)
  2278. goto bail;
  2279. VERIFY(err, !IS_ERR_OR_NULL(ctx->buf->virt));
  2280. if (err)
  2281. goto bail;
  2282. memset(ctx->buf->virt, 0, ctx->buf->size);
  2283. }
  2284. ctx->used = metalen;
  2285. /* allocate new local rpra buffer */
  2286. lrpralen = (size_t)&list[0];
  2287. if (lrpralen) {
  2288. lrpra = kzalloc(lrpralen, GFP_KERNEL);
  2289. VERIFY(err, !IS_ERR_OR_NULL(lrpra));
  2290. if (err) {
  2291. err = -ENOMEM;
  2292. goto bail;
  2293. }
  2294. }
  2295. ctx->lrpra = lrpra;
  2296. /* calculate len required for copying */
  2297. for (oix = 0; oix < inbufs + outbufs; ++oix) {
  2298. int i = ctx->overps[oix]->raix;
  2299. uintptr_t mstart, mend;
  2300. size_t len = lpra[i].buf.len;
  2301. if (!len)
  2302. continue;
  2303. if (ctx->maps[i])
  2304. continue;
  2305. if (ctx->overps[oix]->offset == 0)
  2306. copylen = ALIGN(copylen, BALIGN);
  2307. mstart = ctx->overps[oix]->mstart;
  2308. mend = ctx->overps[oix]->mend;
  2309. templen = mend - mstart;
  2310. VERIFY(err, ((templen <= LONG_MAX) && (copylen <= (LONG_MAX - templen))));
  2311. if (err) {
  2312. err = -EFAULT;
  2313. goto bail;
  2314. }
  2315. if (templen > DEBUG_PRINT_SIZE_LIMIT)
  2316. ADSPRPC_WARN(
  2317. "user passed non ion buffer size %zu, mend 0x%llx mstart 0x%llx, sc 0x%x handle 0x%x\n",
  2318. templen, mend, mstart, sc, ctx->handle);
  2319. copylen += templen;
  2320. }
  2321. totallen = ALIGN(totallen, BALIGN) + copylen;
  2322. /* allocate non -ion copy buffer */
  2323. /* Checking if copylen can be accomodated in metalen*/
  2324. /*if not allocating new buffer */
  2325. if (totallen <= (size_t)buf_page_size(metalen)) {
  2326. args = (uintptr_t)ctx->buf->virt + metalen;
  2327. ctx->copybuf = ctx->buf;
  2328. rlen = totallen - metalen;
  2329. } else if (copylen) {
  2330. err = fastrpc_buf_alloc(ctx->fl, copylen, 0, 0, COPYDATA_BUF,
  2331. &ctx->copybuf);
  2332. if (err)
  2333. goto bail;
  2334. memset(ctx->copybuf->virt, 0, copylen);
  2335. args = (uintptr_t)ctx->copybuf->virt;
  2336. rlen = copylen;
  2337. totallen = copylen;
  2338. }
  2339. /* copy metadata */
  2340. rpra = ctx->buf->virt;
  2341. ctx->rpra = rpra;
  2342. list = smq_invoke_buf_start(rpra, sc);
  2343. pages = smq_phy_page_start(sc, list);
  2344. ipage = pages;
  2345. for (i = 0; i < bufs + handles; ++i) {
  2346. if (lpra[i].buf.len)
  2347. list[i].num = 1;
  2348. else
  2349. list[i].num = 0;
  2350. list[i].pgidx = ipage - pages;
  2351. ipage++;
  2352. }
  2353. /* map ion buffers */
  2354. PERF(ctx->fl->profile, GET_COUNTER(perf_counter, PERF_MAP),
  2355. for (i = 0; rpra && i < inbufs + outbufs; ++i) {
  2356. struct fastrpc_mmap *map = ctx->maps[i];
  2357. uint64_t buf = ptr_to_uint64(lpra[i].buf.pv);
  2358. size_t len = lpra[i].buf.len;
  2359. uint64_t buf_start = 0;
  2360. rpra[i].buf.pv = 0;
  2361. rpra[i].buf.len = len;
  2362. if (!len)
  2363. continue;
  2364. if (map) {
  2365. struct vm_area_struct *vma;
  2366. uintptr_t offset;
  2367. uint64_t num = buf_num_pages(buf, len);
  2368. int idx = list[i].pgidx;
  2369. if (map->attr & FASTRPC_ATTR_NOVA) {
  2370. offset = 0;
  2371. } else {
  2372. down_read(&current->mm->mmap_lock);
  2373. VERIFY(err, NULL != (vma = find_vma(current->mm,
  2374. map->va)));
  2375. if (err) {
  2376. up_read(&current->mm->mmap_lock);
  2377. goto bail;
  2378. }
  2379. buf_start = buf_page_start(buf);
  2380. VERIFY(err, vma->vm_start <= buf_start);
  2381. if (err) {
  2382. up_read(&current->mm->mmap_lock);
  2383. ADSPRPC_ERR(
  2384. "buffer VA invalid for fd %d, IPA 0x%llx, VA 0x%llx, vma start 0x%llx\n",
  2385. map->fd, map->phys, map->va, vma->vm_start);
  2386. err = -EFAULT;
  2387. goto bail;
  2388. }
  2389. offset = buf_start - vma->vm_start;
  2390. up_read(&current->mm->mmap_lock);
  2391. VERIFY(err, offset + len <= (uintptr_t)map->size);
  2392. if (err) {
  2393. ADSPRPC_ERR(
  2394. "buffer address is invalid for the fd passed for %d address 0x%llx and size %zu\n",
  2395. i, (uintptr_t)lpra[i].buf.pv,
  2396. lpra[i].buf.len);
  2397. err = -EFAULT;
  2398. goto bail;
  2399. }
  2400. }
  2401. pages[idx].addr = map->phys + offset;
  2402. pages[idx].size = num << PAGE_SHIFT;
  2403. }
  2404. rpra[i].buf.pv = buf;
  2405. }
  2406. PERF_END);
  2407. for (i = bufs; i < bufs + handles; ++i) {
  2408. struct fastrpc_mmap *map = ctx->maps[i];
  2409. if (map) {
  2410. pages[i].addr = map->phys;
  2411. pages[i].size = map->size;
  2412. }
  2413. }
  2414. fdlist = (uint64_t *)&pages[bufs + handles];
  2415. crclist = (uint32_t *)&fdlist[M_FDLIST];
  2416. /* reset fds, crc and early wakeup hint memory */
  2417. /* remote process updates these values before responding */
  2418. memset(fdlist, 0, sizeof(uint64_t)*M_FDLIST + sizeof(uint32_t)*M_CRCLIST +
  2419. (sizeof(uint64_t) * M_DSP_PERF_LIST) + sizeof(early_hint));
  2420. /* copy non ion buffers */
  2421. PERF(ctx->fl->profile, GET_COUNTER(perf_counter, PERF_COPY),
  2422. for (oix = 0; rpra && oix < inbufs + outbufs; ++oix) {
  2423. int i = ctx->overps[oix]->raix;
  2424. struct fastrpc_mmap *map = ctx->maps[i];
  2425. size_t mlen;
  2426. uint64_t buf;
  2427. size_t len = lpra[i].buf.len;
  2428. if (!len)
  2429. continue;
  2430. if (map)
  2431. continue;
  2432. if (ctx->overps[oix]->offset == 0) {
  2433. rlen -= ALIGN(args, BALIGN) - args;
  2434. args = ALIGN(args, BALIGN);
  2435. }
  2436. mlen = ctx->overps[oix]->mend - ctx->overps[oix]->mstart;
  2437. VERIFY(err, rlen >= mlen);
  2438. if (err) {
  2439. err = -EFAULT;
  2440. goto bail;
  2441. }
  2442. rpra[i].buf.pv =
  2443. (args - ctx->overps[oix]->offset);
  2444. pages[list[i].pgidx].addr = ctx->copybuf->phys -
  2445. ctx->overps[oix]->offset +
  2446. (totallen - rlen);
  2447. pages[list[i].pgidx].addr =
  2448. buf_page_start(pages[list[i].pgidx].addr);
  2449. buf = rpra[i].buf.pv;
  2450. pages[list[i].pgidx].size = buf_num_pages(buf, len) * PAGE_SIZE;
  2451. if (i < inbufs) {
  2452. K_COPY_FROM_USER(err, kernel, uint64_to_ptr(buf),
  2453. lpra[i].buf.pv, len);
  2454. if (err) {
  2455. ADSPRPC_ERR(
  2456. "copy from user failed with %d for dst 0x%llx, src %pK, size 0x%zx, arg %d\n",
  2457. err, buf, lpra[i].buf.pv, len, i+1);
  2458. err = -EFAULT;
  2459. goto bail;
  2460. }
  2461. }
  2462. if (len > DEBUG_PRINT_SIZE_LIMIT)
  2463. ADSPRPC_DEBUG(
  2464. "copied non ion buffer sc 0x%x pv 0x%llx, mend 0x%llx mstart 0x%llx, len %zu\n",
  2465. sc, rpra[i].buf.pv,
  2466. ctx->overps[oix]->mend,
  2467. ctx->overps[oix]->mstart, len);
  2468. args = args + mlen;
  2469. rlen -= mlen;
  2470. }
  2471. PERF_END);
  2472. PERF(ctx->fl->profile, GET_COUNTER(perf_counter, PERF_FLUSH),
  2473. for (oix = 0; oix < inbufs + outbufs; ++oix) {
  2474. int i = ctx->overps[oix]->raix;
  2475. struct fastrpc_mmap *map = ctx->maps[i];
  2476. if (i+1 > inbufs) // Avoiding flush for outbufs
  2477. continue;
  2478. if (ctx->fl->sctx && ctx->fl->sctx->smmu.coherent)
  2479. continue;
  2480. if (map && (map->attr & FASTRPC_ATTR_FORCE_NOFLUSH))
  2481. continue;
  2482. if (rpra && rpra[i].buf.len && (ctx->overps[oix]->mstart ||
  2483. ctx->overps[oix]->do_cmo == 1)) {
  2484. if (map && map->buf) {
  2485. if (((buf_page_size(ctx->overps[oix]->mend -
  2486. ctx->overps[oix]->mstart)) == map->size) ||
  2487. ctx->overps[oix]->do_cmo) {
  2488. dma_buf_begin_cpu_access(map->buf,
  2489. DMA_TO_DEVICE);
  2490. dma_buf_end_cpu_access(map->buf,
  2491. DMA_TO_DEVICE);
  2492. ADSPRPC_DEBUG(
  2493. "sc 0x%x pv 0x%llx, mend 0x%llx mstart 0x%llx, len %zu size %zu\n",
  2494. sc, rpra[i].buf.pv,
  2495. ctx->overps[oix]->mend,
  2496. ctx->overps[oix]->mstart,
  2497. rpra[i].buf.len, map->size);
  2498. } else {
  2499. uintptr_t offset;
  2500. uint64_t flush_len;
  2501. struct vm_area_struct *vma;
  2502. down_read(&current->mm->mmap_lock);
  2503. VERIFY(err, NULL != (vma = find_vma(
  2504. current->mm, rpra[i].buf.pv)));
  2505. if (err) {
  2506. up_read(&current->mm->mmap_lock);
  2507. goto bail;
  2508. }
  2509. if (ctx->overps[oix]->do_cmo) {
  2510. offset = rpra[i].buf.pv -
  2511. vma->vm_start;
  2512. flush_len = rpra[i].buf.len;
  2513. } else {
  2514. offset =
  2515. ctx->overps[oix]->mstart
  2516. - vma->vm_start;
  2517. flush_len =
  2518. ctx->overps[oix]->mend -
  2519. ctx->overps[oix]->mstart;
  2520. }
  2521. up_read(&current->mm->mmap_lock);
  2522. dma_buf_begin_cpu_access_partial(
  2523. map->buf, DMA_TO_DEVICE, offset,
  2524. flush_len);
  2525. dma_buf_end_cpu_access_partial(
  2526. map->buf, DMA_TO_DEVICE, offset,
  2527. flush_len);
  2528. ADSPRPC_DEBUG(
  2529. "sc 0x%x vm_start 0x%llx pv 0x%llx, offset 0x%llx, mend 0x%llx mstart 0x%llx, len %zu size %zu\n",
  2530. sc, vma->vm_start,
  2531. rpra[i].buf.pv, offset,
  2532. ctx->overps[oix]->mend,
  2533. ctx->overps[oix]->mstart,
  2534. rpra[i].buf.len, map->size);
  2535. }
  2536. }
  2537. }
  2538. }
  2539. PERF_END);
  2540. for (i = bufs; ctx->fds && rpra && i < bufs + handles; i++) {
  2541. rpra[i].dma.fd = ctx->fds[i];
  2542. rpra[i].dma.len = (uint32_t)lpra[i].buf.len;
  2543. rpra[i].dma.offset =
  2544. (uint32_t)(uintptr_t)lpra[i].buf.pv;
  2545. }
  2546. /* Copy rpra to local buffer */
  2547. if (ctx->lrpra && rpra && lrpralen > 0)
  2548. memcpy(ctx->lrpra, rpra, lrpralen);
  2549. bail:
  2550. return err;
  2551. }
  2552. static int put_args(uint32_t kernel, struct smq_invoke_ctx *ctx,
  2553. remote_arg_t *upra)
  2554. {
  2555. uint32_t sc = ctx->sc;
  2556. struct smq_invoke_buf *list;
  2557. struct smq_phy_page *pages;
  2558. struct fastrpc_mmap *mmap;
  2559. uint64_t *fdlist;
  2560. uint32_t *crclist = NULL, *poll = NULL;
  2561. uint64_t *perf_dsp_list = NULL;
  2562. remote_arg64_t *rpra = ctx->lrpra;
  2563. int i, inbufs, outbufs, handles;
  2564. int err = 0, perfErr = 0;
  2565. inbufs = REMOTE_SCALARS_INBUFS(sc);
  2566. outbufs = REMOTE_SCALARS_OUTBUFS(sc);
  2567. handles = REMOTE_SCALARS_INHANDLES(sc) + REMOTE_SCALARS_OUTHANDLES(sc);
  2568. list = smq_invoke_buf_start(ctx->rpra, sc);
  2569. pages = smq_phy_page_start(sc, list);
  2570. fdlist = (uint64_t *)(pages + inbufs + outbufs + handles);
  2571. crclist = (uint32_t *)(fdlist + M_FDLIST);
  2572. poll = (uint32_t *)(crclist + M_CRCLIST);
  2573. perf_dsp_list = (uint64_t *)(poll + 1);
  2574. for (i = inbufs; i < inbufs + outbufs; ++i) {
  2575. if (!ctx->maps[i]) {
  2576. K_COPY_TO_USER(err, kernel,
  2577. ctx->lpra[i].buf.pv,
  2578. uint64_to_ptr(rpra[i].buf.pv),
  2579. rpra[i].buf.len);
  2580. if (err) {
  2581. ADSPRPC_ERR(
  2582. "Invalid size 0x%llx for output argument %d ret %ld\n",
  2583. rpra[i].buf.len, i+1, err);
  2584. err = -EFAULT;
  2585. goto bail;
  2586. }
  2587. } else {
  2588. mutex_lock(&ctx->fl->map_mutex);
  2589. /*
  2590. * Decrement ctx refs count before mmap free,
  2591. * indicate remote call no longer using it
  2592. */
  2593. if (ctx->maps[i]->ctx_refs)
  2594. ctx->maps[i]->ctx_refs--;
  2595. fastrpc_mmap_free(ctx->maps[i], 0);
  2596. mutex_unlock(&ctx->fl->map_mutex);
  2597. ctx->maps[i] = NULL;
  2598. }
  2599. }
  2600. mutex_lock(&ctx->fl->map_mutex);
  2601. for (i = 0; i < M_FDLIST; i++) {
  2602. if (!fdlist[i])
  2603. break;
  2604. if (!fastrpc_mmap_find(ctx->fl, (int)fdlist[i], NULL, 0, 0,
  2605. 0, 0, &mmap)) {
  2606. /*
  2607. * Decrement ctx refs count before mmap free,
  2608. * indicate remote call no longer using it
  2609. */
  2610. if (mmap && mmap->ctx_refs)
  2611. mmap->ctx_refs--;
  2612. fastrpc_mmap_free(mmap, 0);
  2613. }
  2614. }
  2615. mutex_unlock(&ctx->fl->map_mutex);
  2616. if (ctx->crc && crclist && rpra)
  2617. K_COPY_TO_USER(err, kernel, ctx->crc,
  2618. crclist, M_CRCLIST*sizeof(uint32_t));
  2619. if (ctx->perf_dsp && perf_dsp_list) {
  2620. K_COPY_TO_USER(perfErr, kernel, ctx->perf_dsp,
  2621. perf_dsp_list, M_DSP_PERF_LIST*sizeof(uint64_t));
  2622. if (perfErr)
  2623. ADSPRPC_WARN("failed to copy perf data err %d\n", perfErr);
  2624. }
  2625. bail:
  2626. return err;
  2627. }
  2628. static void inv_args(struct smq_invoke_ctx *ctx)
  2629. {
  2630. int i, inbufs, outbufs;
  2631. uint32_t sc = ctx->sc;
  2632. remote_arg64_t *rpra = ctx->lrpra;
  2633. int err = 0;
  2634. inbufs = REMOTE_SCALARS_INBUFS(sc);
  2635. outbufs = REMOTE_SCALARS_OUTBUFS(sc);
  2636. for (i = 0; i < inbufs + outbufs; ++i) {
  2637. int over = ctx->overps[i]->raix;
  2638. struct fastrpc_mmap *map = ctx->maps[over];
  2639. if ((over + 1 <= inbufs))
  2640. continue;
  2641. if (!rpra[over].buf.len)
  2642. continue;
  2643. if (ctx->fl && ctx->fl->sctx && ctx->fl->sctx->smmu.coherent)
  2644. continue;
  2645. if (map && (map->attr & FASTRPC_ATTR_FORCE_NOINVALIDATE))
  2646. continue;
  2647. if (buf_page_start(ptr_to_uint64((void *)rpra)) ==
  2648. buf_page_start(rpra[over].buf.pv)) {
  2649. continue;
  2650. }
  2651. if (ctx->overps[i]->mstart || ctx->overps[i]->do_cmo == 1) {
  2652. if (map && map->buf) {
  2653. if (((buf_page_size(ctx->overps[i]->mend -
  2654. ctx->overps[i]->mstart)) == map->size) ||
  2655. ctx->overps[i]->do_cmo) {
  2656. dma_buf_begin_cpu_access(map->buf,
  2657. DMA_FROM_DEVICE);
  2658. dma_buf_end_cpu_access(map->buf,
  2659. DMA_TO_DEVICE);
  2660. ADSPRPC_DEBUG(
  2661. "sc 0x%x pv 0x%llx, mend 0x%llx mstart 0x%llx, len %zu size %zu\n",
  2662. sc, rpra[over].buf.pv,
  2663. ctx->overps[i]->mend,
  2664. ctx->overps[i]->mstart,
  2665. rpra[over].buf.len, map->size);
  2666. } else {
  2667. uintptr_t offset;
  2668. uint64_t inv_len;
  2669. struct vm_area_struct *vma;
  2670. down_read(&current->mm->mmap_lock);
  2671. VERIFY(err, NULL != (vma = find_vma(
  2672. current->mm,
  2673. rpra[over].buf.pv)));
  2674. if (err) {
  2675. up_read(&current->mm->mmap_lock);
  2676. goto bail;
  2677. }
  2678. if (ctx->overps[i]->do_cmo) {
  2679. offset = rpra[over].buf.pv -
  2680. vma->vm_start;
  2681. inv_len = rpra[over].buf.len;
  2682. } else {
  2683. offset =
  2684. ctx->overps[i]->mstart -
  2685. vma->vm_start;
  2686. inv_len =
  2687. ctx->overps[i]->mend -
  2688. ctx->overps[i]->mstart;
  2689. }
  2690. up_read(&current->mm->mmap_lock);
  2691. dma_buf_begin_cpu_access_partial(
  2692. map->buf, DMA_FROM_DEVICE, offset,
  2693. inv_len);
  2694. dma_buf_end_cpu_access_partial(map->buf,
  2695. DMA_TO_DEVICE, offset,
  2696. inv_len);
  2697. ADSPRPC_DEBUG(
  2698. "sc 0x%x vm_start 0x%llx pv 0x%llx, offset 0x%llx, mend 0x%llx mstart 0x%llx, len %zu size %zu\n",
  2699. sc, vma->vm_start,
  2700. rpra[over].buf.pv,
  2701. offset, ctx->overps[i]->mend,
  2702. ctx->overps[i]->mstart,
  2703. rpra[over].buf.len, map->size);
  2704. }
  2705. }
  2706. }
  2707. }
  2708. bail:
  2709. return;
  2710. }
  2711. static int fastrpc_invoke_send(struct smq_invoke_ctx *ctx,
  2712. uint32_t kernel, uint32_t handle)
  2713. {
  2714. struct smq_msg *msg = &ctx->msg;
  2715. struct smq_msg msg_temp;
  2716. struct smq_invoke_ctx ctx_temp;
  2717. struct fastrpc_file *fl = ctx->fl;
  2718. struct fastrpc_channel_ctx *channel_ctx = NULL;
  2719. int err = 0, cid = -1;
  2720. uint32_t sc = ctx->sc;
  2721. int64_t ns = 0;
  2722. uint64_t xo_time_in_us = 0;
  2723. int isasync = (ctx->asyncjob.isasyncjob ? true : false);
  2724. unsigned long irq_flags = 0;
  2725. uint32_t index = 0;
  2726. if (!fl) {
  2727. err = -EBADF;
  2728. goto bail;
  2729. }
  2730. cid = fl->cid;
  2731. VERIFY(err, VALID_FASTRPC_CID(cid));
  2732. if (err) {
  2733. err = -ECHRNG;
  2734. goto bail;
  2735. }
  2736. channel_ctx = &fl->apps->channel[cid];
  2737. mutex_lock(&channel_ctx->smd_mutex);
  2738. /* Send unique fastrpc process ID to dsp */
  2739. msg->pid = fl->tgid_frpc;
  2740. msg->tid = current->pid;
  2741. if (kernel == KERNEL_MSG_WITH_ZERO_PID)
  2742. msg->pid = 0;
  2743. msg->invoke.header.ctx = ctx->ctxid | fl->pd;
  2744. msg->invoke.header.handle = handle;
  2745. msg->invoke.header.sc = sc;
  2746. msg->invoke.page.addr = ctx->buf ? ctx->buf->phys : 0;
  2747. msg->invoke.page.size = buf_page_size(ctx->used);
  2748. if (fl->ssrcount != channel_ctx->ssrcount) {
  2749. err = -ECONNRESET;
  2750. mutex_unlock(&channel_ctx->smd_mutex);
  2751. goto bail;
  2752. }
  2753. mutex_unlock(&channel_ctx->smd_mutex);
  2754. xo_time_in_us = CONVERT_CNT_TO_US(__arch_counter_get_cntvct());
  2755. if (isasync) {
  2756. /*
  2757. * After message is sent to DSP, async response thread could immediately
  2758. * get the response and free context, which will result in a use-after-free
  2759. * in this function. So use a local variable for message and context.
  2760. */
  2761. memcpy(&msg_temp, msg, sizeof(struct smq_msg));
  2762. msg = &msg_temp;
  2763. memcpy(&ctx_temp, ctx, sizeof(struct smq_invoke_ctx));
  2764. index = (uint32_t)GET_TABLE_IDX_FROM_CTXID(ctx->ctxid);
  2765. }
  2766. err = fastrpc_transport_send(cid, (void *)msg, sizeof(*msg), fl->tvm_remote_domain);
  2767. if (isasync) {
  2768. if (!err) {
  2769. /*
  2770. * Validate the ctx as this could have been already
  2771. * freed by async response.
  2772. */
  2773. spin_lock_irqsave(&channel_ctx->ctxlock, irq_flags);
  2774. if (index < FASTRPC_CTX_MAX && channel_ctx->ctxtable[index] == ctx)
  2775. ctx->is_job_sent_to_remote_ss = true;
  2776. spin_unlock_irqrestore(&channel_ctx->ctxlock, irq_flags);
  2777. }
  2778. ctx = &ctx_temp;
  2779. }
  2780. trace_fastrpc_transport_send(cid, (uint64_t)ctx, msg->invoke.header.ctx,
  2781. handle, sc, msg->invoke.page.addr, msg->invoke.page.size);
  2782. ns = get_timestamp_in_ns();
  2783. fastrpc_update_txmsg_buf(msg, err, ns, xo_time_in_us, ctx, DEFAULT_STATE);
  2784. bail:
  2785. return err;
  2786. }
  2787. /* fastrpc_get_nsp_status() - Reads the property string from soc_info
  2788. * denoted for nsp part, and updates the nsp device avialbility status
  2789. * if the nsp is not defective.
  2790. * @me : pointer to fastrpc_apps.
  2791. */
  2792. static void fastrpc_get_nsp_status(struct fastrpc_apps *me)
  2793. {
  2794. if (socinfo_get_part_info(PART_NSP)) {
  2795. me->fastrpc_nsp_status = 0;
  2796. ADSPRPC_ERR(
  2797. "nsp part defective with status:%x\n", me->fastrpc_nsp_status);
  2798. } else {
  2799. me->fastrpc_nsp_status = 1;
  2800. ADSPRPC_INFO("nsp available with status: %x\n", me->fastrpc_nsp_status);
  2801. }
  2802. }
  2803. /*
  2804. * Counts number of cores corresponding
  2805. * to cluster id 0. If a core is defective or unavailable, skip counting
  2806. * that core.
  2807. * @me : pointer to fastrpc_apps.
  2808. */
  2809. static void fastrpc_lowest_capacity_corecount(struct fastrpc_apps *me)
  2810. {
  2811. unsigned int cpu = 0;
  2812. cpu = cpumask_first(cpu_possible_mask);
  2813. for_each_cpu(cpu, cpu_possible_mask) {
  2814. if (topology_cluster_id(cpu) == 0)
  2815. me->lowest_capacity_core_count++;
  2816. }
  2817. ADSPRPC_INFO("lowest capacity core count: %u\n",
  2818. me->lowest_capacity_core_count);
  2819. }
  2820. static void fastrpc_init(struct fastrpc_apps *me)
  2821. {
  2822. int i, jj;
  2823. INIT_HLIST_HEAD(&me->drivers);
  2824. INIT_HLIST_HEAD(&me->maps);
  2825. spin_lock_init(&me->hlock);
  2826. me->channel = &gcinfo[0];
  2827. mutex_init(&me->mut_uid);
  2828. me->max_sess_per_proc = DEFAULT_MAX_SESS_PER_PROC;
  2829. for (i = 0; i < NUM_CHANNELS; i++) {
  2830. init_completion(&me->channel[i].work);
  2831. init_completion(&me->channel[i].workport);
  2832. me->channel[i].sesscount = 0;
  2833. /* All channels are secure by default except CDSP */
  2834. me->channel[i].secure = SECURE_CHANNEL;
  2835. me->channel[i].unsigned_support = false;
  2836. mutex_init(&me->channel[i].smd_mutex);
  2837. fastrpc_transport_session_init(i, me->channel[i].subsys);
  2838. spin_lock_init(&me->channel[i].ctxlock);
  2839. spin_lock_init(&me->channel[i].gmsg_log.lock);
  2840. INIT_HLIST_HEAD(&me->channel[i].initmems);
  2841. for (jj = 0; jj < NUM_SESSIONS; jj++)
  2842. init_waitqueue_head(&me->channel[i].spd[jj].wait_for_pdup);
  2843. }
  2844. /* Set CDSP channel to non secure */
  2845. me->channel[CDSP_DOMAIN_ID].secure = NON_SECURE_CHANNEL;
  2846. me->channel[CDSP_DOMAIN_ID].unsigned_support = true;
  2847. }
  2848. static inline void fastrpc_pm_awake(struct fastrpc_file *fl, int channel_type)
  2849. {
  2850. struct fastrpc_apps *me = &gfa;
  2851. struct wakeup_source *wake_source = NULL;
  2852. if (!fl->wake_enable)
  2853. return;
  2854. /*
  2855. * Vote with PM to abort any suspend in progress and
  2856. * keep system awake for specified timeout
  2857. */
  2858. if (channel_type == SECURE_CHANNEL)
  2859. wake_source = me->wake_source_secure;
  2860. else if (channel_type == NON_SECURE_CHANNEL)
  2861. wake_source = me->wake_source;
  2862. if (wake_source)
  2863. pm_wakeup_ws_event(wake_source, fl->ws_timeout, true);
  2864. }
  2865. static inline void fastrpc_pm_relax(struct fastrpc_file *fl, int channel_type)
  2866. {
  2867. struct fastrpc_apps *me = &gfa;
  2868. struct wakeup_source *wake_source = NULL;
  2869. if (!fl->wake_enable)
  2870. return;
  2871. if (channel_type == SECURE_CHANNEL)
  2872. wake_source = me->wake_source_secure;
  2873. else if (channel_type == NON_SECURE_CHANNEL)
  2874. wake_source = me->wake_source;
  2875. ADSPRPC_INFO("done for tgid %d\n", fl->tgid);
  2876. if (wake_source)
  2877. __pm_relax(wake_source);
  2878. }
  2879. static inline int fastrpc_wait_for_response(struct smq_invoke_ctx *ctx,
  2880. uint32_t kernel)
  2881. {
  2882. int interrupted = 0;
  2883. if (kernel)
  2884. wait_for_completion(&ctx->work);
  2885. else
  2886. interrupted = wait_for_completion_interruptible(&ctx->work);
  2887. return interrupted;
  2888. }
  2889. static void fastrpc_wait_for_completion(struct smq_invoke_ctx *ctx,
  2890. int *ptr_interrupted, uint32_t kernel, uint32_t async,
  2891. bool *ptr_isworkdone)
  2892. {
  2893. int interrupted = 0, err = 0;
  2894. int jj;
  2895. bool wait_resp;
  2896. uint32_t wTimeout = FASTRPC_USER_EARLY_HINT_TIMEOUT;
  2897. uint32_t wakeTime = 0;
  2898. unsigned long flags;
  2899. if (!ctx) {
  2900. /* This failure is not expected */
  2901. err = *ptr_interrupted = EFAULT;
  2902. *ptr_isworkdone = false;
  2903. ADSPRPC_ERR("ctx is NULL, cannot wait for response err %d\n",
  2904. err);
  2905. return;
  2906. }
  2907. wakeTime = ctx->early_wake_time;
  2908. do {
  2909. switch (ctx->rsp_flags) {
  2910. /* try polling on completion with timeout */
  2911. case USER_EARLY_SIGNAL:
  2912. /* try wait if completion time is less than timeout */
  2913. /* disable preempt to avoid context switch latency */
  2914. preempt_disable();
  2915. jj = 0;
  2916. wait_resp = false;
  2917. for (; wakeTime < wTimeout && jj < wTimeout; jj++) {
  2918. wait_resp = try_wait_for_completion(&ctx->work);
  2919. if (wait_resp)
  2920. break;
  2921. udelay(1);
  2922. }
  2923. preempt_enable();
  2924. if (async) {
  2925. spin_lock_irqsave(&ctx->fl->aqlock, flags);
  2926. if (!ctx->is_work_done) {
  2927. ctx->is_early_wakeup = false;
  2928. *ptr_isworkdone = false;
  2929. } else
  2930. *ptr_isworkdone = true;
  2931. spin_unlock_irqrestore(&ctx->fl->aqlock, flags);
  2932. goto bail;
  2933. } else if (!wait_resp) {
  2934. interrupted = fastrpc_wait_for_response(ctx,
  2935. kernel);
  2936. *ptr_interrupted = interrupted;
  2937. if (interrupted || ctx->is_work_done)
  2938. goto bail;
  2939. }
  2940. break;
  2941. /* busy poll on memory for actual job done */
  2942. case EARLY_RESPONSE:
  2943. trace_fastrpc_msg("early_response: poll_begin");
  2944. err = poll_for_remote_response(ctx, FASTRPC_POLL_TIME);
  2945. /* Mark job done if poll on memory successful */
  2946. /* Wait for completion if poll on memory timoeut */
  2947. if (!err) {
  2948. ctx->is_work_done = true;
  2949. *ptr_isworkdone = true;
  2950. goto bail;
  2951. }
  2952. trace_fastrpc_msg("early_response: poll_timeout");
  2953. ADSPRPC_INFO("early rsp poll timeout (%u us) for handle 0x%x, sc 0x%x\n",
  2954. FASTRPC_POLL_TIME, ctx->handle, ctx->sc);
  2955. if (async) {
  2956. spin_lock_irqsave(&ctx->fl->aqlock, flags);
  2957. if (!ctx->is_work_done) {
  2958. ctx->is_early_wakeup = false;
  2959. *ptr_isworkdone = false;
  2960. } else
  2961. *ptr_isworkdone = true;
  2962. spin_unlock_irqrestore(&ctx->fl->aqlock, flags);
  2963. goto bail;
  2964. } else if (!ctx->is_work_done) {
  2965. interrupted = fastrpc_wait_for_response(ctx,
  2966. kernel);
  2967. *ptr_interrupted = interrupted;
  2968. if (interrupted || ctx->is_work_done)
  2969. goto bail;
  2970. }
  2971. break;
  2972. case COMPLETE_SIGNAL:
  2973. case NORMAL_RESPONSE:
  2974. if (!async) {
  2975. interrupted = fastrpc_wait_for_response(ctx,
  2976. kernel);
  2977. *ptr_interrupted = interrupted;
  2978. if (interrupted || ctx->is_work_done)
  2979. goto bail;
  2980. } else {
  2981. spin_lock_irqsave(&ctx->fl->aqlock, flags);
  2982. if (!ctx->is_work_done) {
  2983. ctx->is_early_wakeup = false;
  2984. *ptr_isworkdone = false;
  2985. } else
  2986. *ptr_isworkdone = true;
  2987. spin_unlock_irqrestore(&ctx->fl->aqlock, flags);
  2988. goto bail;
  2989. }
  2990. break;
  2991. case POLL_MODE:
  2992. trace_fastrpc_msg("poll_mode: begin");
  2993. err = poll_for_remote_response(ctx, ctx->fl->poll_timeout);
  2994. /* If polling timed out, move to normal response state */
  2995. if (err) {
  2996. trace_fastrpc_msg("poll_mode: timeout");
  2997. ADSPRPC_INFO("poll mode timeout (%u us) for handle 0x%x, sc 0x%x\n",
  2998. ctx->fl->poll_timeout, ctx->handle, ctx->sc);
  2999. ctx->rsp_flags = NORMAL_RESPONSE;
  3000. } else {
  3001. *ptr_interrupted = 0;
  3002. *ptr_isworkdone = true;
  3003. }
  3004. break;
  3005. default:
  3006. *ptr_interrupted = EBADR;
  3007. *ptr_isworkdone = false;
  3008. ADSPRPC_ERR(
  3009. "unsupported response flags 0x%x for handle 0x%x, sc 0x%x\n",
  3010. ctx->rsp_flags, ctx->handle, ctx->sc);
  3011. goto bail;
  3012. } /* end of switch */
  3013. } while (!ctx->is_work_done);
  3014. bail:
  3015. return;
  3016. }
  3017. static void fastrpc_update_invoke_count(uint32_t handle, uint64_t *perf_counter,
  3018. struct timespec64 *invoket)
  3019. {
  3020. /* update invoke count for dynamic handles */
  3021. if (handle != FASTRPC_STATIC_HANDLE_LISTENER) {
  3022. uint64_t *count = GET_COUNTER(perf_counter, PERF_INVOKE);
  3023. if (count)
  3024. *count += getnstimediff(invoket);
  3025. }
  3026. if (handle > FASTRPC_STATIC_HANDLE_MAX) {
  3027. uint64_t *count = GET_COUNTER(perf_counter, PERF_COUNT);
  3028. if (count)
  3029. *count += 1;
  3030. }
  3031. }
  3032. static int fastrpc_check_pd_status(struct fastrpc_file *fl, char *sloc_name);
  3033. int fastrpc_internal_invoke(struct fastrpc_file *fl, uint32_t mode,
  3034. uint32_t kernel,
  3035. struct fastrpc_ioctl_invoke_async *inv)
  3036. {
  3037. struct smq_invoke_ctx *ctx = NULL;
  3038. struct fastrpc_ioctl_invoke *invoke = &inv->inv;
  3039. int err = 0, interrupted = 0, cid = -1, perfErr = 0;
  3040. struct timespec64 invoket = {0};
  3041. uint64_t *perf_counter = NULL;
  3042. bool isasyncinvoke = false, isworkdone = false;
  3043. cid = fl->cid;
  3044. VERIFY(err, VALID_FASTRPC_CID(cid) &&
  3045. fl->sctx != NULL);
  3046. if (err) {
  3047. ADSPRPC_ERR("kernel session not initialized yet for %s\n",
  3048. current->comm);
  3049. err = -EBADR;
  3050. goto bail;
  3051. }
  3052. if (fl->profile)
  3053. ktime_get_real_ts64(&invoket);
  3054. if (!kernel) {
  3055. VERIFY(err, invoke->handle !=
  3056. FASTRPC_STATIC_HANDLE_PROCESS_GROUP);
  3057. VERIFY(err, invoke->handle !=
  3058. FASTRPC_STATIC_HANDLE_DSP_UTILITIES);
  3059. if (err) {
  3060. err = -EINVAL;
  3061. ADSPRPC_ERR(
  3062. "user application trying to send a kernel RPC message to channel %d, handle 0x%x\n",
  3063. cid, invoke->handle);
  3064. goto bail;
  3065. }
  3066. }
  3067. if (!kernel) {
  3068. VERIFY(err, 0 == (err = context_restore_interrupted(fl,
  3069. inv, &ctx)));
  3070. if (err)
  3071. goto bail;
  3072. if (fl->sctx->smmu.faults)
  3073. err = -FASTRPC_ENOSUCH;
  3074. if (err)
  3075. goto bail;
  3076. if (ctx) {
  3077. trace_fastrpc_context_restore(cid, (uint64_t)ctx,
  3078. ctx->msg.invoke.header.ctx,
  3079. ctx->handle, ctx->sc);
  3080. goto wait;
  3081. }
  3082. }
  3083. trace_fastrpc_msg("context_alloc: begin");
  3084. VERIFY(err, 0 == (err = context_alloc(fl, kernel, inv, &ctx)));
  3085. trace_fastrpc_msg("context_alloc: end");
  3086. if (err)
  3087. goto bail;
  3088. if (fl->servloc_name) {
  3089. err = fastrpc_check_pd_status(fl,
  3090. AUDIO_PDR_SERVICE_LOCATION_CLIENT_NAME);
  3091. err |= fastrpc_check_pd_status(fl,
  3092. SENSORS_PDR_ADSP_SERVICE_LOCATION_CLIENT_NAME);
  3093. err |= fastrpc_check_pd_status(fl,
  3094. SENSORS_PDR_SLPI_SERVICE_LOCATION_CLIENT_NAME);
  3095. if (err)
  3096. goto bail;
  3097. }
  3098. isasyncinvoke = (ctx->asyncjob.isasyncjob ? true : false);
  3099. if (fl->profile)
  3100. perf_counter = (uint64_t *)ctx->perf + PERF_COUNT;
  3101. PERF(fl->profile, GET_COUNTER(perf_counter, PERF_GETARGS),
  3102. VERIFY(err, 0 == (err = get_args(kernel, ctx)));
  3103. PERF_END);
  3104. trace_fastrpc_msg("get_args: end");
  3105. if (err)
  3106. goto bail;
  3107. PERF(fl->profile, GET_COUNTER(perf_counter, PERF_INVARGS),
  3108. inv_args(ctx);
  3109. PERF_END);
  3110. trace_fastrpc_msg("inv_args_1: end");
  3111. PERF(fl->profile, GET_COUNTER(perf_counter, PERF_LINK),
  3112. VERIFY(err, 0 == (err = fastrpc_invoke_send(ctx,
  3113. kernel, invoke->handle)));
  3114. PERF_END);
  3115. trace_fastrpc_msg("invoke_send: end");
  3116. if (err)
  3117. goto bail;
  3118. if (isasyncinvoke)
  3119. goto invoke_end;
  3120. wait:
  3121. /* Poll mode allowed only for non-static handle calls to dynamic CDSP process */
  3122. if (fl->poll_mode && (invoke->handle > FASTRPC_STATIC_HANDLE_MAX)
  3123. && (cid == CDSP_DOMAIN_ID)
  3124. && (fl->proc_flags == FASTRPC_INIT_CREATE))
  3125. ctx->rsp_flags = POLL_MODE;
  3126. fastrpc_wait_for_completion(ctx, &interrupted, kernel, 0, &isworkdone);
  3127. trace_fastrpc_msg("wait_for_completion: end");
  3128. VERIFY(err, 0 == (err = interrupted));
  3129. if (err)
  3130. goto bail;
  3131. if (!ctx->is_work_done) {
  3132. err = -ETIMEDOUT;
  3133. ADSPRPC_ERR(
  3134. "WorkDone state is invalid for handle 0x%x, sc 0x%x\n",
  3135. invoke->handle, ctx->sc);
  3136. goto bail;
  3137. }
  3138. PERF(fl->profile, GET_COUNTER(perf_counter, PERF_INVARGS),
  3139. inv_args(ctx);
  3140. PERF_END);
  3141. trace_fastrpc_msg("inv_args_2: end");
  3142. PERF(fl->profile, GET_COUNTER(perf_counter, PERF_PUTARGS),
  3143. VERIFY(err, 0 == (err = put_args(kernel, ctx, invoke->pra)));
  3144. PERF_END);
  3145. trace_fastrpc_msg("put_args: end");
  3146. if (err)
  3147. goto bail;
  3148. VERIFY(err, 0 == (err = ctx->retval));
  3149. if (err)
  3150. goto bail;
  3151. bail:
  3152. if (ctx && interrupted == -ERESTARTSYS) {
  3153. trace_fastrpc_context_interrupt(cid, (uint64_t)ctx,
  3154. ctx->msg.invoke.header.ctx, ctx->handle, ctx->sc);
  3155. context_save_interrupted(ctx);
  3156. } else if (ctx) {
  3157. if (fl->profile && !interrupted)
  3158. fastrpc_update_invoke_count(invoke->handle,
  3159. perf_counter, &invoket);
  3160. if (fl->profile && ctx->perf && ctx->handle > FASTRPC_STATIC_HANDLE_MAX) {
  3161. trace_fastrpc_perf_counters(ctx->handle, ctx->sc,
  3162. ctx->perf->count, ctx->perf->flush, ctx->perf->map,
  3163. ctx->perf->copy, ctx->perf->link, ctx->perf->getargs,
  3164. ctx->perf->putargs, ctx->perf->invargs,
  3165. ctx->perf->invoke, ctx->perf->tid);
  3166. if (ctx->perf_kernel) {
  3167. K_COPY_TO_USER(perfErr, kernel, ctx->perf_kernel,
  3168. ctx->perf, M_KERNEL_PERF_LIST*sizeof(uint64_t));
  3169. if (perfErr)
  3170. ADSPRPC_WARN("failed to copy perf data err %d\n", perfErr);
  3171. }
  3172. }
  3173. context_free(ctx);
  3174. trace_fastrpc_msg("context_free: end");
  3175. }
  3176. if (!kernel && VALID_FASTRPC_CID(cid)) {
  3177. mutex_lock(&fl->apps->channel[cid].smd_mutex);
  3178. if (fl->ssrcount != fl->apps->channel[cid].ssrcount)
  3179. err = -ECONNRESET;
  3180. mutex_unlock(&fl->apps->channel[cid].smd_mutex);
  3181. }
  3182. invoke_end:
  3183. if (fl->profile && !interrupted && isasyncinvoke)
  3184. fastrpc_update_invoke_count(invoke->handle, perf_counter,
  3185. &invoket);
  3186. return err;
  3187. }
  3188. static int fastrpc_wait_on_async_queue(
  3189. struct fastrpc_ioctl_async_response *async_res,
  3190. struct fastrpc_file *fl)
  3191. {
  3192. int err = 0, ierr = 0, interrupted = 0, perfErr = 0;
  3193. struct smq_invoke_ctx *ctx = NULL, *ictx = NULL;
  3194. unsigned long flags;
  3195. uint64_t *perf_counter = NULL;
  3196. bool isworkdone = false;
  3197. struct hlist_node *n;
  3198. read_async_job:
  3199. if (!fl) {
  3200. err = -EBADF;
  3201. goto bail;
  3202. }
  3203. interrupted = wait_event_interruptible(fl->async_wait_queue,
  3204. atomic_read(&fl->async_queue_job_count));
  3205. if (fl->file_close >= FASTRPC_PROCESS_EXIT_START) {
  3206. err = -EBADF;
  3207. goto bail;
  3208. }
  3209. if (fl->exit_async) {
  3210. err = -EFAULT;
  3211. goto bail;
  3212. }
  3213. VERIFY(err, 0 == (err = interrupted));
  3214. if (err)
  3215. goto bail;
  3216. spin_lock_irqsave(&fl->aqlock, flags);
  3217. hlist_for_each_entry_safe(ictx, n, &fl->clst.async_queue, asyncn) {
  3218. hlist_del_init(&ictx->asyncn);
  3219. atomic_sub(1, &fl->async_queue_job_count);
  3220. ctx = ictx;
  3221. break;
  3222. }
  3223. spin_unlock_irqrestore(&fl->aqlock, flags);
  3224. if (ctx) {
  3225. if (fl->profile)
  3226. perf_counter = (uint64_t *)ctx->perf + PERF_COUNT;
  3227. fastrpc_wait_for_completion(ctx, &interrupted, 0, 1,
  3228. &isworkdone);
  3229. if (!isworkdone) {//In valid workdone state
  3230. ADSPRPC_DEBUG(
  3231. "Async early wake response did not reach on time for thread %d handle 0x%x, sc 0x%x\n",
  3232. ctx->pid, ctx->handle, ctx->sc);
  3233. goto read_async_job;
  3234. }
  3235. async_res->jobid = ctx->asyncjob.jobid;
  3236. async_res->result = ctx->retval;
  3237. async_res->handle = ctx->handle;
  3238. async_res->sc = ctx->sc;
  3239. async_res->perf_dsp = (uint64_t *)ctx->perf_dsp;
  3240. async_res->perf_kernel = (uint64_t *)ctx->perf_kernel;
  3241. PERF(ctx->fl->profile, GET_COUNTER(perf_counter, PERF_INVARGS),
  3242. inv_args(ctx);
  3243. PERF_END);
  3244. if (ctx->retval != 0)
  3245. goto bail;
  3246. PERF(ctx->fl->profile, GET_COUNTER(perf_counter, PERF_PUTARGS),
  3247. VERIFY(ierr, 0 == (ierr = put_args(0, ctx, NULL)));
  3248. PERF_END);
  3249. if (ierr)
  3250. goto bail;
  3251. } else { // Go back to wait if ctx is invalid
  3252. ADSPRPC_ERR("Invalid async job wake up\n");
  3253. goto read_async_job;
  3254. }
  3255. bail:
  3256. if (ierr)
  3257. async_res->result = ierr;
  3258. if (ctx) {
  3259. if (fl->profile && ctx->perf && ctx->handle > FASTRPC_STATIC_HANDLE_MAX) {
  3260. trace_fastrpc_perf_counters(ctx->handle, ctx->sc,
  3261. ctx->perf->count, ctx->perf->flush, ctx->perf->map,
  3262. ctx->perf->copy, ctx->perf->link, ctx->perf->getargs,
  3263. ctx->perf->putargs, ctx->perf->invargs,
  3264. ctx->perf->invoke, ctx->perf->tid);
  3265. if (ctx->perf_kernel) {
  3266. K_COPY_TO_USER(perfErr, 0, ctx->perf_kernel,
  3267. ctx->perf, M_KERNEL_PERF_LIST*sizeof(uint64_t));
  3268. if (perfErr)
  3269. ADSPRPC_WARN("failed to copy perf data err %d\n", perfErr);
  3270. }
  3271. }
  3272. context_free(ctx);
  3273. }
  3274. return err;
  3275. }
  3276. static int fastrpc_wait_on_notif_queue(
  3277. struct fastrpc_ioctl_notif_rsp *notif_rsp,
  3278. struct fastrpc_file *fl)
  3279. {
  3280. int err = 0, interrupted = 0;
  3281. unsigned long flags;
  3282. struct smq_notif_rsp *notif = NULL, *inotif = NULL, *n = NULL;
  3283. read_notif_status:
  3284. if (!fl) {
  3285. err = -EBADF;
  3286. goto bail;
  3287. }
  3288. interrupted = wait_event_interruptible(fl->proc_state_notif.notif_wait_queue,
  3289. atomic_read(&fl->proc_state_notif.notif_queue_count));
  3290. if (fl->exit_notif) {
  3291. err = -EFAULT;
  3292. goto bail;
  3293. }
  3294. if (fl->file_close >= FASTRPC_PROCESS_EXIT_START) {
  3295. err = -EBADF;
  3296. goto bail;
  3297. }
  3298. VERIFY(err, 0 == (err = interrupted));
  3299. if (err)
  3300. goto bail;
  3301. spin_lock_irqsave(&fl->proc_state_notif.nqlock, flags);
  3302. list_for_each_entry_safe(inotif, n, &fl->clst.notif_queue, notifn) {
  3303. list_del_init(&inotif->notifn);
  3304. atomic_sub(1, &fl->proc_state_notif.notif_queue_count);
  3305. notif = inotif;
  3306. break;
  3307. }
  3308. spin_unlock_irqrestore(&fl->proc_state_notif.nqlock, flags);
  3309. if (notif) {
  3310. notif_rsp->status = notif->status;
  3311. notif_rsp->domain = notif->domain;
  3312. notif_rsp->session = notif->session;
  3313. } else {// Go back to wait if ctx is invalid
  3314. ADSPRPC_ERR("Invalid status notification response\n");
  3315. goto read_notif_status;
  3316. }
  3317. bail:
  3318. kfree(notif);
  3319. return err;
  3320. }
  3321. static int fastrpc_get_async_response(
  3322. struct fastrpc_ioctl_async_response *async_res,
  3323. void *param, struct fastrpc_file *fl)
  3324. {
  3325. int err = 0;
  3326. err = fastrpc_wait_on_async_queue(async_res, fl);
  3327. if (err)
  3328. goto bail;
  3329. K_COPY_TO_USER(err, 0, param, async_res,
  3330. sizeof(struct fastrpc_ioctl_async_response));
  3331. bail:
  3332. return err;
  3333. }
  3334. static int fastrpc_get_notif_response(
  3335. struct fastrpc_ioctl_notif_rsp *notif,
  3336. void *param, struct fastrpc_file *fl)
  3337. {
  3338. int err = 0;
  3339. err = fastrpc_wait_on_notif_queue(notif, fl);
  3340. if (err)
  3341. goto bail;
  3342. K_COPY_TO_USER(err, 0, param, notif,
  3343. sizeof(struct fastrpc_ioctl_notif_rsp));
  3344. bail:
  3345. return err;
  3346. }
  3347. static int fastrpc_set_session_info(
  3348. struct fastrpc_proc_sess_info *sess_info,
  3349. void *param, struct fastrpc_file *fl)
  3350. {
  3351. int err = 0;
  3352. struct fastrpc_apps *me = &gfa;
  3353. if (fl->set_session_info) {
  3354. ADSPRPC_ERR("Set session info invoked multiple times\n");
  3355. err = -EBADR;
  3356. goto bail;
  3357. }
  3358. /*
  3359. * Third-party apps don't have permission to open the fastrpc device, so
  3360. * it is opened on their behalf by DSP HAL. This is detected by
  3361. * comparing current PID with the one stored during device open.
  3362. */
  3363. if (current->tgid != fl->tgid_open)
  3364. fl->untrusted_process = true;
  3365. VERIFY(err, sess_info->pd_type > DEFAULT_UNUSED &&
  3366. sess_info->pd_type < MAX_PD_TYPE);
  3367. if (err) {
  3368. ADSPRPC_ERR(
  3369. "Session PD type %u is invalid for the process\n",
  3370. sess_info->pd_type);
  3371. err = -EBADR;
  3372. goto bail;
  3373. }
  3374. if (fl->untrusted_process && sess_info->pd_type != USERPD) {
  3375. ADSPRPC_ERR(
  3376. "Session PD type %u not allowed for untrusted process\n",
  3377. sess_info->pd_type);
  3378. err = -EBADR;
  3379. goto bail;
  3380. }
  3381. /*
  3382. * If PD type is not configured for context banks,
  3383. * ignore PD type passed by the user, leave pd_type set to DEFAULT_UNUSED(0)
  3384. */
  3385. if (me->cb_pd_type)
  3386. fl->pd_type = sess_info->pd_type;
  3387. // Processes attaching to Sensor Static PD, share context bank.
  3388. if (sess_info->pd_type == SENSORS_STATICPD)
  3389. fl->sharedcb = 1;
  3390. if (sess_info->session_id >= me->max_sess_per_proc) {
  3391. ADSPRPC_ERR(
  3392. "Session ID %u cannot be beyond %u\n",
  3393. sess_info->session_id, me->max_sess_per_proc);
  3394. err = -EBADR;
  3395. goto bail;
  3396. }
  3397. fl->sessionid = sess_info->session_id;
  3398. // Set multi_session_support, to disable old way of setting session_id
  3399. fl->multi_session_support = true;
  3400. VERIFY(err, 0 == (err = fastrpc_get_info(fl, &(sess_info->domain_id))));
  3401. if (err)
  3402. goto bail;
  3403. K_COPY_TO_USER(err, 0, param, sess_info,
  3404. sizeof(struct fastrpc_proc_sess_info));
  3405. bail:
  3406. return err;
  3407. }
  3408. static int fastrpc_create_persistent_headers(struct fastrpc_file *fl,
  3409. uint32_t user_concurrency)
  3410. {
  3411. int err = 0, i = 0;
  3412. uint64_t virtb = 0;
  3413. struct fastrpc_buf *pers_hdr_buf = NULL, *hdr_bufs = NULL, *buf = NULL;
  3414. unsigned int num_pers_hdrs = 0;
  3415. size_t hdr_buf_alloc_len = 0;
  3416. if (fl->pers_hdr_buf || !user_concurrency)
  3417. goto bail;
  3418. /*
  3419. * Pre-allocate memory for persistent header buffers based
  3420. * on concurrency info passed by user. Upper limit enforced.
  3421. */
  3422. num_pers_hdrs = (user_concurrency > MAX_PERSISTENT_HEADERS) ?
  3423. MAX_PERSISTENT_HEADERS : user_concurrency;
  3424. hdr_buf_alloc_len = num_pers_hdrs*PAGE_SIZE;
  3425. err = fastrpc_buf_alloc(fl, hdr_buf_alloc_len, 0, 0,
  3426. METADATA_BUF, &pers_hdr_buf);
  3427. if (err)
  3428. goto bail;
  3429. virtb = ptr_to_uint64(pers_hdr_buf->virt);
  3430. /* Map entire buffer on remote subsystem in single RPC call */
  3431. err = fastrpc_mem_map_to_dsp(fl, -1, 0, ADSP_MMAP_PERSIST_HDR, 0,
  3432. pers_hdr_buf->phys, pers_hdr_buf->size,
  3433. &pers_hdr_buf->raddr);
  3434. if (err)
  3435. goto bail;
  3436. /* Divide and store as N chunks, each of 1 page size */
  3437. hdr_bufs = kcalloc(num_pers_hdrs, sizeof(struct fastrpc_buf),
  3438. GFP_KERNEL);
  3439. if (!hdr_bufs) {
  3440. err = -ENOMEM;
  3441. goto bail;
  3442. }
  3443. spin_lock(&fl->hlock);
  3444. fl->pers_hdr_buf = pers_hdr_buf;
  3445. fl->num_pers_hdrs = num_pers_hdrs;
  3446. fl->hdr_bufs = hdr_bufs;
  3447. for (i = 0; i < num_pers_hdrs; i++) {
  3448. buf = &fl->hdr_bufs[i];
  3449. buf->fl = fl;
  3450. buf->virt = uint64_to_ptr(virtb + (i*PAGE_SIZE));
  3451. buf->phys = pers_hdr_buf->phys + (i*PAGE_SIZE);
  3452. buf->size = PAGE_SIZE;
  3453. buf->dma_attr = pers_hdr_buf->dma_attr;
  3454. buf->flags = pers_hdr_buf->flags;
  3455. buf->type = pers_hdr_buf->type;
  3456. buf->in_use = false;
  3457. }
  3458. spin_unlock(&fl->hlock);
  3459. bail:
  3460. if (err) {
  3461. ADSPRPC_ERR(
  3462. "failed to map len %zu, flags %d, user concurrency %u, num headers %u with err %d\n",
  3463. hdr_buf_alloc_len, ADSP_MMAP_PERSIST_HDR,
  3464. user_concurrency, num_pers_hdrs, err);
  3465. fl->pers_hdr_buf = NULL;
  3466. fl->hdr_bufs = NULL;
  3467. fl->num_pers_hdrs = 0;
  3468. if (!IS_ERR_OR_NULL(pers_hdr_buf))
  3469. fastrpc_buf_free(pers_hdr_buf, 0);
  3470. if (!IS_ERR_OR_NULL(hdr_bufs))
  3471. kfree(hdr_bufs);
  3472. }
  3473. return err;
  3474. }
  3475. int fastrpc_internal_invoke2(struct fastrpc_file *fl,
  3476. struct fastrpc_ioctl_invoke2 *inv2)
  3477. {
  3478. union {
  3479. struct fastrpc_ioctl_invoke_async inv;
  3480. struct fastrpc_ioctl_invoke_async_no_perf inv3;
  3481. struct fastrpc_ioctl_async_response async_res;
  3482. uint32_t user_concurrency;
  3483. struct fastrpc_ioctl_notif_rsp notif;
  3484. struct fastrpc_proc_sharedbuf_info buff_info;
  3485. struct fastrpc_proc_sess_info sess_info;
  3486. } p;
  3487. struct fastrpc_dsp_capabilities *dsp_cap_ptr = NULL;
  3488. uint32_t size = 0;
  3489. int err = 0, domain = fl->cid;
  3490. if (inv2->req == FASTRPC_INVOKE2_ASYNC ||
  3491. inv2->req == FASTRPC_INVOKE2_ASYNC_RESPONSE) {
  3492. VERIFY(err, domain == CDSP_DOMAIN_ID && fl->sctx != NULL);
  3493. if (err) {
  3494. err = -EBADR;
  3495. goto bail;
  3496. }
  3497. dsp_cap_ptr = &gcinfo[domain].dsp_cap_kernel;
  3498. VERIFY(err,
  3499. dsp_cap_ptr->dsp_attributes[ASYNC_FASTRPC_CAP] == 1);
  3500. if (err) {
  3501. err = -EPROTONOSUPPORT;
  3502. goto bail;
  3503. }
  3504. }
  3505. switch (inv2->req) {
  3506. case FASTRPC_INVOKE2_ASYNC:
  3507. size = sizeof(struct fastrpc_ioctl_invoke_async);
  3508. VERIFY(err, size >= inv2->size);
  3509. if (err) {
  3510. err = -EBADE;
  3511. goto bail;
  3512. }
  3513. if (size > inv2->size) {
  3514. K_COPY_FROM_USER(err, fl->is_compat, &p.inv3, (void *)inv2->invparam,
  3515. sizeof(struct fastrpc_ioctl_invoke_async_no_perf));
  3516. if (err)
  3517. goto bail;
  3518. memcpy(&p.inv, &p.inv3, sizeof(struct fastrpc_ioctl_invoke_crc));
  3519. memcpy(&p.inv.job, &p.inv3.job, sizeof(p.inv.job));
  3520. } else {
  3521. K_COPY_FROM_USER(err, fl->is_compat, &p.inv, (void *)inv2->invparam, size);
  3522. if (err)
  3523. goto bail;
  3524. }
  3525. VERIFY(err, 0 == (err = fastrpc_internal_invoke(fl, fl->mode,
  3526. USER_MSG, &p.inv)));
  3527. if (err)
  3528. goto bail;
  3529. break;
  3530. case FASTRPC_INVOKE2_ASYNC_RESPONSE:
  3531. VERIFY(err,
  3532. sizeof(struct fastrpc_ioctl_async_response) >= inv2->size);
  3533. if (err) {
  3534. err = -EBADE;
  3535. goto bail;
  3536. }
  3537. err = fastrpc_get_async_response(&p.async_res,
  3538. (void *)inv2->invparam, fl);
  3539. break;
  3540. case FASTRPC_INVOKE2_KERNEL_OPTIMIZATIONS:
  3541. size = sizeof(uint32_t);
  3542. if (inv2->size != size) {
  3543. err = -EBADE;
  3544. goto bail;
  3545. }
  3546. K_COPY_FROM_USER(err, 0, &p.user_concurrency,
  3547. (void *)inv2->invparam, size);
  3548. if (err)
  3549. goto bail;
  3550. err = fastrpc_create_persistent_headers(fl,
  3551. p.user_concurrency);
  3552. break;
  3553. case FASTRPC_INVOKE2_STATUS_NOTIF:
  3554. VERIFY(err,
  3555. sizeof(struct fastrpc_ioctl_notif_rsp) >= inv2->size);
  3556. if (err) {
  3557. err = -EBADE;
  3558. goto bail;
  3559. }
  3560. err = fastrpc_get_notif_response(&p.notif,
  3561. (void *)inv2->invparam, fl);
  3562. break;
  3563. case FASTRPC_INVOKE2_PROC_SHAREDBUF_INFO:
  3564. VERIFY(err,
  3565. sizeof(struct fastrpc_proc_sharedbuf_info) >= inv2->size);
  3566. if (err) {
  3567. err = -EBADE;
  3568. goto bail;
  3569. }
  3570. K_COPY_FROM_USER(err, fl->is_compat, &p.buff_info,
  3571. (void *)inv2->invparam, inv2->size);
  3572. if (err)
  3573. goto bail;
  3574. fl->sharedbuf_info.buf_fd = p.buff_info.buf_fd;
  3575. fl->sharedbuf_info.buf_size = p.buff_info.buf_size;
  3576. break;
  3577. case FASTRPC_INVOKE2_SESS_INFO:
  3578. VERIFY(err,
  3579. sizeof(struct fastrpc_proc_sess_info) >= inv2->size);
  3580. if (err) {
  3581. err = -EBADE;
  3582. goto bail;
  3583. }
  3584. K_COPY_FROM_USER(err, fl->is_compat, &p.sess_info,
  3585. (void *)inv2->invparam, inv2->size);
  3586. if (err)
  3587. goto bail;
  3588. err = fastrpc_set_session_info(&p.sess_info,
  3589. (void *)inv2->invparam, fl);
  3590. break;
  3591. default:
  3592. err = -ENOTTY;
  3593. break;
  3594. }
  3595. bail:
  3596. return err;
  3597. }
  3598. static int fastrpc_get_spd_session(char *name, int *session, int *cid)
  3599. {
  3600. struct fastrpc_apps *me = &gfa;
  3601. int err = 0, i, j, match = 0;
  3602. for (i = 0; i < NUM_CHANNELS; i++) {
  3603. for (j = 0; j < NUM_SESSIONS; j++) {
  3604. if (!me->channel[i].spd[j].servloc_name)
  3605. continue;
  3606. if (!strcmp(name, me->channel[i].spd[j].servloc_name)) {
  3607. match = 1;
  3608. break;
  3609. }
  3610. }
  3611. if (match)
  3612. break;
  3613. }
  3614. VERIFY(err, i < NUM_CHANNELS && j < NUM_SESSIONS);
  3615. if (err) {
  3616. err = -EUSERS;
  3617. goto bail;
  3618. }
  3619. *cid = i;
  3620. *session = j;
  3621. bail:
  3622. return err;
  3623. }
  3624. static int fastrpc_mmap_remove_pdr(struct fastrpc_file *fl);
  3625. static int fastrpc_channel_open(struct fastrpc_file *fl, uint32_t flags);
  3626. static int fastrpc_dsp_restart_handler(struct fastrpc_file *fl, int locked, bool dump_req);
  3627. /*
  3628. * This function makes a call to create a thread group in the root
  3629. * process or static process on the remote subsystem.
  3630. * Examples:
  3631. * - guestOS daemons on all DSPs
  3632. * - sensors daemon on sensorsPD on SLPI/ADSP
  3633. */
  3634. static int fastrpc_init_attach_process(struct fastrpc_file *fl,
  3635. struct fastrpc_ioctl_init *init)
  3636. {
  3637. int err = 0, tgid = fl->tgid_frpc;
  3638. remote_arg_t ra[1];
  3639. struct fastrpc_ioctl_invoke_async ioctl;
  3640. if (fl->dev_minor == MINOR_NUM_DEV) {
  3641. err = -ECONNREFUSED;
  3642. ADSPRPC_ERR(
  3643. "untrusted app trying to attach to privileged DSP PD\n");
  3644. return err;
  3645. }
  3646. /*
  3647. * Prepare remote arguments for creating thread group
  3648. * in guestOS/staticPD on the remote subsystem.
  3649. * Send unique fastrpc id to dsp
  3650. */
  3651. ra[0].buf.pv = (void *)&tgid;
  3652. ra[0].buf.len = sizeof(tgid);
  3653. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  3654. ioctl.inv.sc = REMOTE_SCALARS_MAKE(0, 1, 0);
  3655. ioctl.inv.pra = ra;
  3656. ioctl.fds = NULL;
  3657. ioctl.attrs = NULL;
  3658. ioctl.crc = NULL;
  3659. ioctl.perf_kernel = NULL;
  3660. ioctl.perf_dsp = NULL;
  3661. ioctl.job = NULL;
  3662. if (init->flags == FASTRPC_INIT_ATTACH)
  3663. fl->pd = FASTRPC_ROOT_PD;
  3664. else if (init->flags == FASTRPC_INIT_ATTACH_SENSORS)
  3665. /* Setting to 2 will route the message to sensorsPD */
  3666. fl->pd = FASTRPC_SENSORS_PD;
  3667. err = fastrpc_internal_invoke(fl, FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl);
  3668. if (err)
  3669. goto bail;
  3670. bail:
  3671. return err;
  3672. }
  3673. /*
  3674. * This function makes a call to spawn a dynamic process
  3675. * on the remote subsystem.
  3676. * Example: all compute offloads to CDSP
  3677. */
  3678. static int fastrpc_init_create_dynamic_process(struct fastrpc_file *fl,
  3679. struct fastrpc_ioctl_init_attrs *uproc)
  3680. {
  3681. int err = 0, memlen = 0, mflags = 0, locked = 0, glocked = 0;
  3682. struct fastrpc_ioctl_invoke_async ioctl;
  3683. struct fastrpc_ioctl_init *init = &uproc->init;
  3684. /* First page for init-mem and second page for proc-attrs */
  3685. struct smq_phy_page pages[PAGESLEN_WITH_SHAREDBUF];
  3686. struct fastrpc_mmap *file = NULL;
  3687. struct fastrpc_buf *imem = NULL;
  3688. unsigned long imem_dma_attr = 0;
  3689. remote_arg_t ra[6];
  3690. int fds[6];
  3691. unsigned int gid = 0, one_mb = 1024*1024;
  3692. unsigned int dsp_userpd_memlen = 0;
  3693. struct fastrpc_buf *init_mem;
  3694. struct fastrpc_mmap *sharedbuf_map = NULL;
  3695. struct fastrpc_apps *me = &gfa;
  3696. unsigned long irq_flags = 0;
  3697. struct {
  3698. int pgid;
  3699. unsigned int namelen;
  3700. unsigned int filelen;
  3701. unsigned int pageslen;
  3702. int attrs;
  3703. int siglen;
  3704. } inbuf;
  3705. spin_lock(&fl->hlock);
  3706. if (fl->dsp_process_state) {
  3707. err = -EALREADY;
  3708. ADSPRPC_ERR("Already in create dynamic process\n");
  3709. spin_unlock(&fl->hlock);
  3710. return err;
  3711. }
  3712. fl->dsp_process_state = PROCESS_CREATE_IS_INPROGRESS;
  3713. if (init->memlen) {
  3714. if(init->memlen > INIT_MEMLEN_MAX_DYNAMIC || init->memlen < INIT_MEMLEN_MIN_DYNAMIC) {
  3715. ADSPRPC_ERR(
  3716. "init memory for process %d should be between %d and %d\n",
  3717. init->memlen, INIT_MEMLEN_MIN_DYNAMIC, INIT_MEMLEN_MAX_DYNAMIC);
  3718. err = -EINVAL;
  3719. spin_unlock(&fl->hlock);
  3720. goto bail;
  3721. }
  3722. dsp_userpd_memlen = init->memlen;
  3723. } else {
  3724. dsp_userpd_memlen = 3*one_mb;
  3725. }
  3726. spin_unlock(&fl->hlock);
  3727. inbuf.pgid = fl->tgid_frpc;
  3728. inbuf.namelen = strlen(current->comm) + 1;
  3729. inbuf.filelen = init->filelen;
  3730. fl->pd = FASTRPC_USER_PD;
  3731. if (uproc->attrs & FASTRPC_MODE_UNSIGNED_MODULE)
  3732. fl->is_unsigned_pd = true;
  3733. /* Check if file memory passed by userspace is valid */
  3734. VERIFY(err, access_ok((void __user *)init->file, init->filelen));
  3735. if (err)
  3736. goto bail;
  3737. if (init->filelen) {
  3738. /* Map the shell file buffer to remote subsystem */
  3739. mutex_lock(&fl->map_mutex);
  3740. err = fastrpc_mmap_create(fl, init->filefd, NULL, 0,
  3741. init->file, init->filelen, mflags, &file);
  3742. if (file)
  3743. file->is_filemap = true;
  3744. mutex_unlock(&fl->map_mutex);
  3745. if (err)
  3746. goto bail;
  3747. }
  3748. inbuf.pageslen = 1;
  3749. /* Disregard any system unsigned PD attribute from userspace */
  3750. uproc->attrs &= (~FASTRPC_MODE_SYSTEM_UNSIGNED_PD);
  3751. /* Untrusted apps are not allowed to offload to signedPD on DSP. */
  3752. if (fl->untrusted_process) {
  3753. VERIFY(err, fl->is_unsigned_pd);
  3754. if (err) {
  3755. err = -ECONNREFUSED;
  3756. ADSPRPC_ERR(
  3757. "untrusted app trying to offload to signed remote process\n");
  3758. goto bail;
  3759. }
  3760. } else {
  3761. /* Trusted apps will be launched as system unsigned PDs */
  3762. if (fl->is_unsigned_pd)
  3763. uproc->attrs |= FASTRPC_MODE_SYSTEM_UNSIGNED_PD;
  3764. }
  3765. /* Disregard any privilege bits from userspace */
  3766. uproc->attrs &= (~FASTRPC_MODE_PRIVILEGED);
  3767. /*
  3768. * Check if the primary or supplementary group(s) of the process is
  3769. * one of the 'privileged' fastrpc GIDs stored in the device-tree.
  3770. */
  3771. gid = sorted_lists_intersection(fl->gidlist.gids,
  3772. fl->gidlist.gidcount, gfa.gidlist.gids, gfa.gidlist.gidcount);
  3773. if (gid) {
  3774. ADSPRPC_INFO("PID %d, GID %u is a privileged process\n",
  3775. fl->tgid, gid);
  3776. uproc->attrs |= FASTRPC_MODE_PRIVILEGED;
  3777. }
  3778. /*
  3779. * Userspace client should try to allocate the initial memory donated
  3780. * to remote subsystem as only the kernel and DSP should have access
  3781. * to that memory.
  3782. */
  3783. VERIFY(err, !init->mem);
  3784. if (err) {
  3785. err = -EINVAL;
  3786. ADSPRPC_ERR("donated memory allocated in userspace\n");
  3787. goto bail;
  3788. }
  3789. /* Allocate DMA buffer in kernel for donating to remote process
  3790. * Unsigned PD requires additional memory because of the
  3791. * additional static heap initialized within the process.
  3792. */
  3793. if (fl->is_unsigned_pd)
  3794. dsp_userpd_memlen = 5*one_mb;
  3795. memlen = ALIGN(max(dsp_userpd_memlen, init->filelen * 4), one_mb);
  3796. imem_dma_attr = DMA_ATTR_DELAYED_UNMAP | DMA_ATTR_NO_KERNEL_MAPPING;
  3797. err = fastrpc_buf_alloc(fl, memlen, imem_dma_attr, 0,
  3798. INITMEM_BUF, &imem);
  3799. if (err)
  3800. goto bail;
  3801. fl->init_mem = imem;
  3802. inbuf.pageslen = 1;
  3803. if ((fl->sharedbuf_info.buf_fd != -1) && fl->sharedbuf_info.buf_size) {
  3804. mutex_lock(&fl->map_mutex);
  3805. err = fastrpc_mmap_create(fl, fl->sharedbuf_info.buf_fd, NULL, 0,
  3806. 0, fl->sharedbuf_info.buf_size, mflags, &sharedbuf_map);
  3807. mutex_unlock(&fl->map_mutex);
  3808. if (err)
  3809. goto bail;
  3810. /* if shared buff is available send this as the second page and set pageslen as 2 */
  3811. inbuf.pageslen = PAGESLEN_WITH_SHAREDBUF;
  3812. }
  3813. /*
  3814. * Prepare remote arguments for dynamic process create
  3815. * call to remote subsystem.
  3816. */
  3817. ra[0].buf.pv = (void *)&inbuf;
  3818. ra[0].buf.len = sizeof(inbuf);
  3819. fds[0] = -1;
  3820. ra[1].buf.pv = (void *)current->comm;
  3821. ra[1].buf.len = inbuf.namelen;
  3822. fds[1] = -1;
  3823. ra[2].buf.pv = (void *)init->file;
  3824. ra[2].buf.len = inbuf.filelen;
  3825. fds[2] = init->filefd;
  3826. pages[0].addr = imem->phys;
  3827. pages[0].size = imem->size;
  3828. /* Update IOVA of second page shared with DSP */
  3829. if (inbuf.pageslen > 1) {
  3830. pages[1].addr = sharedbuf_map->phys;
  3831. pages[1].size = sharedbuf_map->size;
  3832. }
  3833. ra[3].buf.pv = (void *)pages;
  3834. ra[3].buf.len = (inbuf.pageslen) * sizeof(*pages);
  3835. fds[3] = -1;
  3836. inbuf.attrs = uproc->attrs;
  3837. ra[4].buf.pv = (void *)&(inbuf.attrs);
  3838. ra[4].buf.len = sizeof(inbuf.attrs);
  3839. fds[4] = -1;
  3840. inbuf.siglen = uproc->siglen;
  3841. ra[5].buf.pv = (void *)&(inbuf.siglen);
  3842. ra[5].buf.len = sizeof(inbuf.siglen);
  3843. fds[5] = -1;
  3844. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  3845. /*
  3846. * Choose appropriate remote method ID depending on whether the
  3847. * HLOS process has any attributes enabled (like unsignedPD,
  3848. * critical process, adaptive QoS, CRC checks etc).
  3849. */
  3850. ioctl.inv.sc = REMOTE_SCALARS_MAKE(6, 4, 0);
  3851. if (uproc->attrs)
  3852. ioctl.inv.sc = REMOTE_SCALARS_MAKE(7, 4, 0);
  3853. ioctl.inv.pra = ra;
  3854. ioctl.fds = fds;
  3855. ioctl.attrs = NULL;
  3856. ioctl.crc = NULL;
  3857. ioctl.perf_kernel = NULL;
  3858. ioctl.perf_dsp = NULL;
  3859. ioctl.job = NULL;
  3860. err = fastrpc_internal_invoke(fl, FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl);
  3861. if (err)
  3862. goto bail;
  3863. bail:
  3864. /*
  3865. * Shell is loaded into the donated memory on remote subsystem. So, the
  3866. * original file buffer can be DMA unmapped. In case of a failure also,
  3867. * the mapping needs to be removed.
  3868. */
  3869. if (file) {
  3870. mutex_lock(&fl->map_mutex);
  3871. fastrpc_mmap_free(file, 0);
  3872. mutex_unlock(&fl->map_mutex);
  3873. }
  3874. spin_lock(&fl->hlock);
  3875. locked = 1;
  3876. if (err) {
  3877. ADSPRPC_ERR("failed with err %d\n", err);
  3878. fl->dsp_process_state = PROCESS_CREATE_DEFAULT;
  3879. spin_unlock(&fl->hlock);
  3880. locked = 0;
  3881. spin_lock_irqsave(&me->hlock, irq_flags);
  3882. glocked = 1;
  3883. if (!IS_ERR_OR_NULL(fl->init_mem)) {
  3884. init_mem = fl->init_mem;
  3885. fl->init_mem = NULL;
  3886. spin_unlock_irqrestore(&me->hlock, irq_flags);
  3887. glocked = 0;
  3888. fastrpc_buf_free(init_mem, 0);
  3889. }
  3890. if (glocked) {
  3891. spin_unlock_irqrestore(&me->hlock, irq_flags);
  3892. glocked = 0;
  3893. }
  3894. } else {
  3895. fl->dsp_process_state = PROCESS_CREATE_SUCCESS;
  3896. }
  3897. if (locked) {
  3898. spin_unlock(&fl->hlock);
  3899. locked = 0;
  3900. }
  3901. return err;
  3902. }
  3903. /*
  3904. * This function makes a call to create a thread group in the static
  3905. * process on the remote subsystem.
  3906. * Example: audio daemon 'adsprpcd' on audioPD on ADSP
  3907. */
  3908. static int fastrpc_init_create_static_process(struct fastrpc_file *fl,
  3909. struct fastrpc_ioctl_init *init)
  3910. {
  3911. int err = 0, rh_hyp_done = 0;
  3912. struct fastrpc_apps *me = &gfa;
  3913. struct fastrpc_ioctl_invoke_async ioctl;
  3914. struct smq_phy_page pages[1];
  3915. struct fastrpc_mmap *mem = NULL;
  3916. char *proc_name = NULL;
  3917. remote_arg_t ra[3];
  3918. uint64_t phys = 0;
  3919. size_t size = 0;
  3920. int fds[3];
  3921. struct secure_vm *rhvm = &me->channel[fl->cid].rhvm;
  3922. struct {
  3923. int pgid;
  3924. unsigned int namelen;
  3925. unsigned int pageslen;
  3926. } inbuf;
  3927. unsigned long irq_flags = 0;
  3928. if (fl->dev_minor == MINOR_NUM_DEV) {
  3929. err = -ECONNREFUSED;
  3930. ADSPRPC_ERR(
  3931. "untrusted app trying to attach to audio PD\n");
  3932. return err;
  3933. }
  3934. VERIFY(err, init->memlen <= INIT_MEMLEN_MAX_STATIC);
  3935. if (err) {
  3936. ADSPRPC_ERR(
  3937. "init memory for static process %d is more than max allowed init len %d\n",
  3938. init->memlen, INIT_MEMLEN_MAX_STATIC);
  3939. err = -EFBIG;
  3940. goto bail;
  3941. }
  3942. if (!init->filelen)
  3943. goto bail;
  3944. proc_name = kzalloc(init->filelen + 1, GFP_KERNEL);
  3945. VERIFY(err, !IS_ERR_OR_NULL(proc_name));
  3946. if (err) {
  3947. err = -ENOMEM;
  3948. goto bail;
  3949. }
  3950. err = copy_from_user((void *)proc_name,
  3951. (void __user *)init->file, init->filelen);
  3952. if (err) {
  3953. err = -EFAULT;
  3954. goto bail;
  3955. }
  3956. fl->pd = FASTRPC_USER_PD;
  3957. inbuf.pgid = fl->tgid_frpc;
  3958. inbuf.namelen = init->filelen;
  3959. inbuf.pageslen = 0;
  3960. if (!strcmp(proc_name, "audiopd")) {
  3961. /*
  3962. * Remove any previous mappings in case process is trying
  3963. * to reconnect after a PD restart on remote subsystem.
  3964. */
  3965. err = fastrpc_mmap_remove_pdr(fl);
  3966. if (err)
  3967. goto bail;
  3968. } else {
  3969. ADSPRPC_ERR(
  3970. "Create static process is failed for proc_name %s",
  3971. proc_name);
  3972. goto bail;
  3973. }
  3974. if ((!me->staticpd_flags && !me->legacy_remote_heap)) {
  3975. inbuf.pageslen = 1;
  3976. if (!fastrpc_get_persistent_map(init->memlen, &mem)) {
  3977. mutex_lock(&fl->map_mutex);
  3978. err = fastrpc_mmap_create(fl, -1, NULL, 0, init->mem,
  3979. init->memlen, ADSP_MMAP_REMOTE_HEAP_ADDR, &mem);
  3980. if (mem)
  3981. mem->is_filemap = true;
  3982. mutex_unlock(&fl->map_mutex);
  3983. if (err || (!mem))
  3984. goto bail;
  3985. spin_lock_irqsave(&me->hlock, irq_flags);
  3986. mem->in_use = true;
  3987. spin_unlock_irqrestore(&me->hlock, irq_flags);
  3988. fastrpc_mmap_add_global(mem);
  3989. }
  3990. VERIFY(err, mem);
  3991. if (err)
  3992. goto bail;
  3993. phys = mem->phys;
  3994. size = mem->size;
  3995. /*
  3996. * If remote-heap VMIDs are defined in DTSI, then do
  3997. * hyp_assign from HLOS to those VMs (LPASS, ADSP).
  3998. */
  3999. if (rhvm->vmid && mem->refs == 1 && size) {
  4000. u64 src_perms = BIT(QCOM_SCM_VMID_HLOS);
  4001. struct qcom_scm_vmperm *dst_perms;
  4002. uint32_t i = 0;
  4003. VERIFY(err, NULL != (dst_perms = kcalloc(rhvm->vmcount,
  4004. sizeof(struct qcom_scm_vmperm), GFP_KERNEL)));
  4005. if (err)
  4006. goto bail;
  4007. for (i = 0; i < rhvm->vmcount; i++) {
  4008. dst_perms[i].vmid = rhvm->vmid[i];
  4009. dst_perms[i].perm = rhvm->vmperm[i];
  4010. }
  4011. err = qcom_scm_assign_mem(phys, (uint64_t)size,
  4012. &src_perms, dst_perms, rhvm->vmcount);
  4013. kfree(dst_perms);
  4014. if (err) {
  4015. ADSPRPC_ERR(
  4016. "rh hyp assign failed with %d for phys 0x%llx, size %zu\n",
  4017. err, phys, size);
  4018. err = -EADDRNOTAVAIL;
  4019. goto bail;
  4020. }
  4021. rh_hyp_done = 1;
  4022. }
  4023. me->staticpd_flags = 1;
  4024. mem->is_persistent = true;
  4025. }
  4026. /*
  4027. * Prepare remote arguments for static process create
  4028. * call to remote subsystem.
  4029. */
  4030. ra[0].buf.pv = (void *)&inbuf;
  4031. ra[0].buf.len = sizeof(inbuf);
  4032. fds[0] = -1;
  4033. ra[1].buf.pv = (void *)proc_name;
  4034. ra[1].buf.len = inbuf.namelen;
  4035. fds[1] = -1;
  4036. pages[0].addr = phys;
  4037. pages[0].size = size;
  4038. ra[2].buf.pv = (void *)pages;
  4039. ra[2].buf.len = sizeof(*pages);
  4040. fds[2] = -1;
  4041. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  4042. ioctl.inv.sc = REMOTE_SCALARS_MAKE(8, 3, 0);
  4043. ioctl.inv.pra = ra;
  4044. ioctl.fds = NULL;
  4045. ioctl.attrs = NULL;
  4046. ioctl.crc = NULL;
  4047. ioctl.perf_kernel = NULL;
  4048. ioctl.perf_dsp = NULL;
  4049. ioctl.job = NULL;
  4050. err = fastrpc_internal_invoke(fl, FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl);
  4051. if (err)
  4052. goto bail;
  4053. bail:
  4054. kfree(proc_name);
  4055. if (err) {
  4056. me->staticpd_flags = 0;
  4057. if (rh_hyp_done) {
  4058. int hyp_err = 0;
  4059. u64 src_perms = 0;
  4060. struct qcom_scm_vmperm dst_perms;
  4061. uint32_t i = 0;
  4062. for (i = 0; i < rhvm->vmcount; i++) {
  4063. src_perms |= BIT(rhvm->vmid[i]);
  4064. }
  4065. dst_perms.vmid = QCOM_SCM_VMID_HLOS;
  4066. dst_perms.perm = QCOM_SCM_PERM_RWX;
  4067. /* Assign memory back to HLOS in case of errors */
  4068. hyp_err = qcom_scm_assign_mem(phys, (uint64_t)size,
  4069. &src_perms, &dst_perms, 1);
  4070. if (hyp_err)
  4071. ADSPRPC_WARN(
  4072. "rh hyp unassign failed with %d for phys 0x%llx of size %zu\n",
  4073. hyp_err, phys, size);
  4074. }
  4075. mutex_lock(&fl->map_mutex);
  4076. fastrpc_mmap_free(mem, 0);
  4077. mutex_unlock(&fl->map_mutex);
  4078. }
  4079. return err;
  4080. }
  4081. /*
  4082. * This function sets fastrpc service location name
  4083. * based on ioctl init flags.
  4084. */
  4085. static void fastrpc_set_servloc(struct fastrpc_file *fl,
  4086. struct fastrpc_ioctl_init *init)
  4087. {
  4088. char *proc_name = NULL;
  4089. int err = 0;
  4090. if (init->flags == FASTRPC_INIT_ATTACH_SENSORS) {
  4091. if (fl->cid == ADSP_DOMAIN_ID)
  4092. fl->servloc_name =
  4093. SENSORS_PDR_ADSP_SERVICE_LOCATION_CLIENT_NAME;
  4094. else if (fl->cid == SDSP_DOMAIN_ID)
  4095. fl->servloc_name =
  4096. SENSORS_PDR_SLPI_SERVICE_LOCATION_CLIENT_NAME;
  4097. } else if (init->flags == FASTRPC_INIT_CREATE_STATIC) {
  4098. if (!init->filelen)
  4099. goto bail;
  4100. proc_name = kzalloc(init->filelen + 1, GFP_KERNEL);
  4101. VERIFY(err, !IS_ERR_OR_NULL(proc_name));
  4102. if (err) {
  4103. err = -ENOMEM;
  4104. goto bail;
  4105. }
  4106. err = copy_from_user((void *)proc_name,
  4107. (void __user *)init->file, init->filelen);
  4108. if (err) {
  4109. err = -EFAULT;
  4110. goto bail;
  4111. }
  4112. if (!strcmp(proc_name, "audiopd"))
  4113. fl->servloc_name = AUDIO_PDR_SERVICE_LOCATION_CLIENT_NAME;
  4114. }
  4115. bail:
  4116. kfree(proc_name);
  4117. }
  4118. int fastrpc_init_process(struct fastrpc_file *fl,
  4119. struct fastrpc_ioctl_init_attrs *uproc)
  4120. {
  4121. int err = 0;
  4122. struct fastrpc_ioctl_init *init = &uproc->init;
  4123. int cid = fl->cid;
  4124. struct fastrpc_apps *me = &gfa;
  4125. struct fastrpc_channel_ctx *chan = NULL;
  4126. VERIFY(err, init->filelen < INIT_FILELEN_MAX
  4127. && init->memlen <= INIT_MEMLEN_MAX_DYNAMIC);
  4128. if (err) {
  4129. ADSPRPC_ERR(
  4130. "file size 0x%x or init memory 0x%x is more than max allowed file size 0x%x or init len 0x%x\n",
  4131. init->filelen, init->memlen,
  4132. INIT_FILELEN_MAX, INIT_MEMLEN_MAX_DYNAMIC);
  4133. err = -EFBIG;
  4134. goto bail;
  4135. }
  4136. VERIFY(err, VALID_FASTRPC_CID(cid));
  4137. if (err) {
  4138. err = -ECHRNG;
  4139. goto bail;
  4140. }
  4141. chan = &me->channel[cid];
  4142. if (chan->unsigned_support && fl->dev_minor == MINOR_NUM_DEV) {
  4143. /* Make sure third party applications */
  4144. /* can spawn only unsigned PD when */
  4145. /* channel configured as secure. */
  4146. if (chan->secure && !(fl->is_unsigned_pd)) {
  4147. err = -ECONNREFUSED;
  4148. goto bail;
  4149. }
  4150. }
  4151. if (fl->sharedcb == 1) {
  4152. // Only attach sensors pd use cases can share CB
  4153. VERIFY(err, init->flags == FASTRPC_INIT_ATTACH_SENSORS);
  4154. if (err) {
  4155. err = -EACCES;
  4156. goto bail;
  4157. }
  4158. }
  4159. fastrpc_set_servloc(fl, init);
  4160. err = fastrpc_set_tvm_remote_domain(fl, init);
  4161. if (err)
  4162. goto bail;
  4163. err = fastrpc_channel_open(fl, init->flags);
  4164. if (err)
  4165. goto bail;
  4166. fl->proc_flags = init->flags;
  4167. switch (init->flags) {
  4168. case FASTRPC_INIT_ATTACH:
  4169. case FASTRPC_INIT_ATTACH_SENSORS:
  4170. err = fastrpc_init_attach_process(fl, init);
  4171. break;
  4172. case FASTRPC_INIT_CREATE:
  4173. err = fastrpc_init_create_dynamic_process(fl, uproc);
  4174. break;
  4175. case FASTRPC_INIT_CREATE_STATIC:
  4176. err = fastrpc_init_create_static_process(fl, init);
  4177. break;
  4178. default:
  4179. err = -ENOTTY;
  4180. break;
  4181. }
  4182. if (err)
  4183. goto bail;
  4184. fl->dsp_proc_init = 1;
  4185. VERIFY(err, 0 == (err = fastrpc_device_create(fl)));
  4186. if (err)
  4187. goto bail;
  4188. bail:
  4189. return err;
  4190. }
  4191. static int fastrpc_send_cpuinfo_to_dsp(struct fastrpc_file *fl)
  4192. {
  4193. int err = 0;
  4194. uint64_t cpuinfo = 0;
  4195. struct fastrpc_apps *me = &gfa;
  4196. struct fastrpc_ioctl_invoke_async ioctl;
  4197. remote_arg_t ra[1];
  4198. int cid = -1;
  4199. if (!fl) {
  4200. err = -EBADF;
  4201. goto bail;
  4202. }
  4203. cid = fl->cid;
  4204. VERIFY(err, VALID_FASTRPC_CID(cid));
  4205. if (err) {
  4206. err = -ECHRNG;
  4207. ADSPRPC_ERR(
  4208. "invalid channel 0x%zx set for session\n",
  4209. cid);
  4210. goto bail;
  4211. }
  4212. cpuinfo = me->channel[cid].cpuinfo_todsp;
  4213. /* return success if already updated to remote processor */
  4214. if (me->channel[cid].cpuinfo_status)
  4215. return 0;
  4216. ra[0].buf.pv = (void *)&cpuinfo;
  4217. ra[0].buf.len = sizeof(cpuinfo);
  4218. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_DSP_UTILITIES;
  4219. ioctl.inv.sc = REMOTE_SCALARS_MAKE(1, 1, 0);
  4220. ioctl.inv.pra = ra;
  4221. ioctl.fds = NULL;
  4222. ioctl.attrs = NULL;
  4223. ioctl.crc = NULL;
  4224. ioctl.perf_kernel = NULL;
  4225. ioctl.perf_dsp = NULL;
  4226. ioctl.job = NULL;
  4227. err = fastrpc_internal_invoke(fl, FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl);
  4228. if (!err)
  4229. me->channel[cid].cpuinfo_status = true;
  4230. bail:
  4231. return err;
  4232. }
  4233. int fastrpc_get_info_from_dsp(struct fastrpc_file *fl,
  4234. uint32_t *dsp_attr_buf,
  4235. uint32_t dsp_attr_buf_len,
  4236. uint32_t domain)
  4237. {
  4238. int err = 0;
  4239. struct fastrpc_ioctl_invoke_async ioctl;
  4240. remote_arg_t ra[2];
  4241. dsp_attr_buf[0] = 0; // Capability filled in userspace
  4242. // Fastrpc to modem not supported
  4243. if (domain == MDSP_DOMAIN_ID)
  4244. goto bail;
  4245. err = fastrpc_channel_open(fl, FASTRPC_INIT_NO_CREATE);
  4246. if (err)
  4247. goto bail;
  4248. ra[0].buf.pv = (void *)&dsp_attr_buf_len;
  4249. ra[0].buf.len = sizeof(dsp_attr_buf_len);
  4250. ra[1].buf.pv = (void *)(&dsp_attr_buf[1]);
  4251. ra[1].buf.len = dsp_attr_buf_len * sizeof(uint32_t);
  4252. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_DSP_UTILITIES;
  4253. ioctl.inv.sc = REMOTE_SCALARS_MAKE(0, 1, 1);
  4254. ioctl.inv.pra = ra;
  4255. ioctl.fds = NULL;
  4256. ioctl.attrs = NULL;
  4257. ioctl.crc = NULL;
  4258. ioctl.perf_kernel = NULL;
  4259. ioctl.perf_dsp = NULL;
  4260. ioctl.job = NULL;
  4261. err = fastrpc_internal_invoke(fl, FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl);
  4262. bail:
  4263. if (err)
  4264. ADSPRPC_ERR("could not obtain dsp information, err val %d\n",
  4265. err);
  4266. return err;
  4267. }
  4268. int fastrpc_get_info_from_kernel(
  4269. struct fastrpc_ioctl_capability *cap,
  4270. struct fastrpc_file *fl)
  4271. {
  4272. int err = 0;
  4273. uint32_t domain = cap->domain, attribute_ID = cap->attribute_ID;
  4274. uint32_t async_capability = 0;
  4275. struct fastrpc_dsp_capabilities *dsp_cap_ptr = NULL;
  4276. VERIFY(err, domain < NUM_CHANNELS);
  4277. if (err) {
  4278. err = -ECHRNG;
  4279. goto bail;
  4280. }
  4281. /*
  4282. * Check if number of attribute IDs obtained from userspace
  4283. * is less than the number of attribute IDs supported by
  4284. * kernel
  4285. */
  4286. if (attribute_ID >= FASTRPC_MAX_ATTRIBUTES) {
  4287. err = -EOVERFLOW;
  4288. goto bail;
  4289. }
  4290. dsp_cap_ptr = &gcinfo[domain].dsp_cap_kernel;
  4291. if (attribute_ID >= FASTRPC_MAX_DSP_ATTRIBUTES) {
  4292. // Driver capability, pass it to user
  4293. memcpy(&cap->capability,
  4294. &kernel_capabilities[attribute_ID -
  4295. FASTRPC_MAX_DSP_ATTRIBUTES],
  4296. sizeof(cap->capability));
  4297. } else if (!dsp_cap_ptr->is_cached) {
  4298. /*
  4299. * Information not on kernel, query device for information
  4300. * and cache on kernel
  4301. */
  4302. err = fastrpc_get_info_from_dsp(fl,
  4303. dsp_cap_ptr->dsp_attributes,
  4304. FASTRPC_MAX_DSP_ATTRIBUTES - 1,
  4305. domain);
  4306. if (err)
  4307. goto bail;
  4308. /* Async capability support depends on both kernel and DSP */
  4309. async_capability = IS_ASYNC_FASTRPC_AVAILABLE &&
  4310. dsp_cap_ptr->dsp_attributes[ASYNC_FASTRPC_CAP];
  4311. dsp_cap_ptr->dsp_attributes[ASYNC_FASTRPC_CAP]
  4312. = async_capability;
  4313. memcpy(&cap->capability,
  4314. &dsp_cap_ptr->dsp_attributes[attribute_ID],
  4315. sizeof(cap->capability));
  4316. dsp_cap_ptr->is_cached = 1;
  4317. } else {
  4318. // Information on Kernel, pass it to user
  4319. memcpy(&cap->capability,
  4320. &dsp_cap_ptr->dsp_attributes[attribute_ID],
  4321. sizeof(cap->capability));
  4322. }
  4323. bail:
  4324. return err;
  4325. }
  4326. static int fastrpc_release_current_dsp_process(struct fastrpc_file *fl)
  4327. {
  4328. int err = 0;
  4329. struct fastrpc_ioctl_invoke_async ioctl;
  4330. remote_arg_t ra[1];
  4331. int tgid = 0;
  4332. int cid = -1;
  4333. unsigned long irq_flags = 0;
  4334. if (!fl) {
  4335. err = -EBADF;
  4336. goto bail;
  4337. }
  4338. cid = fl->cid;
  4339. VERIFY(err, VALID_FASTRPC_CID(cid));
  4340. if (err) {
  4341. err = -ECHRNG;
  4342. goto bail;
  4343. }
  4344. VERIFY(err, fl->sctx != NULL);
  4345. if (err) {
  4346. err = -EBADR;
  4347. goto bail;
  4348. }
  4349. err = verify_transport_device(cid, fl->tvm_remote_domain);
  4350. if (err)
  4351. goto bail;
  4352. VERIFY(err, fl->apps->channel[cid].subsystemstate != SUBSYSTEM_RESTARTING);
  4353. if (err) {
  4354. wait_for_completion(&fl->shutdown);
  4355. err = -ECONNRESET;
  4356. goto bail;
  4357. }
  4358. /* Send unique fastrpc process ID to dsp */
  4359. tgid = fl->tgid_frpc;
  4360. ra[0].buf.pv = (void *)&tgid;
  4361. ra[0].buf.len = sizeof(tgid);
  4362. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  4363. ioctl.inv.sc = REMOTE_SCALARS_MAKE(1, 1, 0);
  4364. ioctl.inv.pra = ra;
  4365. ioctl.fds = NULL;
  4366. ioctl.attrs = NULL;
  4367. ioctl.crc = NULL;
  4368. ioctl.perf_kernel = NULL;
  4369. ioctl.perf_dsp = NULL;
  4370. ioctl.job = NULL;
  4371. spin_lock_irqsave(&fl->apps->hlock, irq_flags);
  4372. fl->file_close = FASTRPC_PROCESS_DSP_EXIT_INIT;
  4373. spin_unlock_irqrestore(&fl->apps->hlock, irq_flags);
  4374. /*
  4375. * Pass 2 for "kernel" arg to send kernel msg to DSP
  4376. * with non-zero msg PID for the DSP to directly use
  4377. * that info to kill the remote process.
  4378. */
  4379. VERIFY(err, 0 == (err = fastrpc_internal_invoke(fl,
  4380. FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_NONZERO_PID, &ioctl)));
  4381. spin_lock_irqsave(&fl->apps->hlock, irq_flags);
  4382. fl->file_close = FASTRPC_PROCESS_DSP_EXIT_COMPLETE;
  4383. spin_unlock_irqrestore(&fl->apps->hlock, irq_flags);
  4384. if (err && fl->dsp_proc_init)
  4385. ADSPRPC_ERR(
  4386. "releasing DSP process failed with %d (0x%x) for %s\n",
  4387. err, err, current->comm);
  4388. bail:
  4389. if (err && fl && fl->apps) {
  4390. spin_lock_irqsave(&fl->apps->hlock, irq_flags);
  4391. fl->file_close = FASTRPC_PROCESS_DSP_EXIT_ERROR;
  4392. spin_unlock_irqrestore(&fl->apps->hlock, irq_flags);
  4393. }
  4394. return err;
  4395. }
  4396. static int fastrpc_mem_map_to_dsp(struct fastrpc_file *fl, int fd, int offset,
  4397. uint32_t flags, uintptr_t va, uint64_t phys,
  4398. size_t size, uintptr_t *raddr)
  4399. {
  4400. struct fastrpc_ioctl_invoke_async ioctl;
  4401. struct smq_phy_page page;
  4402. remote_arg_t ra[4];
  4403. int err = 0;
  4404. struct {
  4405. int pid;
  4406. int fd;
  4407. int offset;
  4408. uint32_t flags;
  4409. uint64_t vaddrin;
  4410. int num;
  4411. int data_len;
  4412. } inargs;
  4413. struct {
  4414. uint64_t vaddrout;
  4415. } routargs;
  4416. /* Send unique fastrpc process ID to dsp */
  4417. inargs.pid = fl->tgid_frpc;
  4418. inargs.fd = fd;
  4419. inargs.offset = offset;
  4420. inargs.vaddrin = (uintptr_t)va;
  4421. inargs.flags = flags;
  4422. inargs.num = sizeof(page);
  4423. inargs.data_len = 0;
  4424. ra[0].buf.pv = (void *)&inargs;
  4425. ra[0].buf.len = sizeof(inargs);
  4426. page.addr = phys;
  4427. page.size = size;
  4428. ra[1].buf.pv = (void *)&page;
  4429. ra[1].buf.len = sizeof(page);
  4430. ra[2].buf.pv = (void *)&page;
  4431. ra[2].buf.len = 0;
  4432. ra[3].buf.pv = (void *)&routargs;
  4433. ra[3].buf.len = sizeof(routargs);
  4434. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  4435. ioctl.inv.sc = REMOTE_SCALARS_MAKE(10, 3, 1);
  4436. ioctl.inv.pra = ra;
  4437. ioctl.fds = NULL;
  4438. ioctl.attrs = NULL;
  4439. ioctl.crc = NULL;
  4440. ioctl.perf_kernel = NULL;
  4441. ioctl.perf_dsp = NULL;
  4442. ioctl.job = NULL;
  4443. VERIFY(err, 0 == (err = fastrpc_internal_invoke(fl,
  4444. FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl)));
  4445. if (err)
  4446. goto bail;
  4447. if (raddr)
  4448. *raddr = (uintptr_t)routargs.vaddrout;
  4449. bail:
  4450. return err;
  4451. }
  4452. static int fastrpc_mem_unmap_to_dsp(struct fastrpc_file *fl, int fd,
  4453. uint32_t flags, uintptr_t va,
  4454. uint64_t phys, size_t size)
  4455. {
  4456. struct fastrpc_ioctl_invoke_async ioctl;
  4457. remote_arg_t ra[1];
  4458. int err = 0;
  4459. struct {
  4460. int pid;
  4461. int fd;
  4462. uint64_t vaddrin;
  4463. uint64_t len;
  4464. } inargs;
  4465. /* Send unique fastrpc process ID to dsp */
  4466. inargs.pid = fl->tgid_frpc;
  4467. inargs.fd = fd;
  4468. inargs.vaddrin = (uint64_t)va;
  4469. inargs.len = (uint64_t)size;
  4470. ra[0].buf.pv = (void *)&inargs;
  4471. ra[0].buf.len = sizeof(inargs);
  4472. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  4473. ioctl.inv.sc = REMOTE_SCALARS_MAKE(11, 1, 0);
  4474. ioctl.inv.pra = ra;
  4475. ioctl.fds = NULL;
  4476. ioctl.attrs = NULL;
  4477. ioctl.crc = NULL;
  4478. ioctl.perf_kernel = NULL;
  4479. ioctl.perf_dsp = NULL;
  4480. ioctl.job = NULL;
  4481. VERIFY(err, 0 == (err = fastrpc_internal_invoke(fl,
  4482. FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl)));
  4483. if (err)
  4484. goto bail;
  4485. bail:
  4486. return err;
  4487. }
  4488. static int fastrpc_unmap_on_dsp(struct fastrpc_file *fl,
  4489. uintptr_t raddr, uint64_t phys, size_t size, uint32_t flags)
  4490. {
  4491. struct fastrpc_ioctl_invoke_async ioctl;
  4492. remote_arg_t ra[1] = {};
  4493. int err = 0;
  4494. struct {
  4495. int pid;
  4496. uintptr_t vaddrout;
  4497. size_t size;
  4498. } inargs;
  4499. /* Send unique fastrpc process ID to dsp */
  4500. inargs.pid = fl->tgid_frpc;
  4501. inargs.size = size;
  4502. inargs.vaddrout = raddr;
  4503. ra[0].buf.pv = (void *)&inargs;
  4504. ra[0].buf.len = sizeof(inargs);
  4505. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  4506. if (fl->apps->compat)
  4507. ioctl.inv.sc = REMOTE_SCALARS_MAKE(5, 1, 0);
  4508. else
  4509. ioctl.inv.sc = REMOTE_SCALARS_MAKE(3, 1, 0);
  4510. ioctl.inv.pra = ra;
  4511. ioctl.fds = NULL;
  4512. ioctl.attrs = NULL;
  4513. ioctl.crc = NULL;
  4514. ioctl.perf_kernel = NULL;
  4515. ioctl.perf_dsp = NULL;
  4516. ioctl.job = NULL;
  4517. VERIFY(err, 0 == (err = fastrpc_internal_invoke(fl,
  4518. FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl)));
  4519. if (err)
  4520. goto bail;
  4521. bail:
  4522. return err;
  4523. }
  4524. static int fastrpc_mmap_on_dsp(struct fastrpc_file *fl, uint32_t flags,
  4525. uintptr_t va, uint64_t phys,
  4526. size_t size, int refs, uintptr_t *raddr)
  4527. {
  4528. struct fastrpc_ioctl_invoke_async ioctl;
  4529. struct fastrpc_apps *me = &gfa;
  4530. struct smq_phy_page page;
  4531. int num = 1;
  4532. remote_arg_t ra[3];
  4533. int err = 0;
  4534. struct {
  4535. int pid;
  4536. uint32_t flags;
  4537. uintptr_t vaddrin;
  4538. int num;
  4539. } inargs;
  4540. struct {
  4541. uintptr_t vaddrout;
  4542. } routargs;
  4543. int cid = -1;
  4544. if (!fl) {
  4545. err = -EBADF;
  4546. goto bail;
  4547. }
  4548. cid = fl->cid;
  4549. /* Send unique fastrpc process ID to dsp */
  4550. inargs.pid = fl->tgid_frpc;
  4551. inargs.vaddrin = (uintptr_t)va;
  4552. inargs.flags = flags;
  4553. inargs.num = fl->apps->compat ? num * sizeof(page) : num;
  4554. ra[0].buf.pv = (void *)&inargs;
  4555. ra[0].buf.len = sizeof(inargs);
  4556. page.addr = phys;
  4557. page.size = size;
  4558. ra[1].buf.pv = (void *)&page;
  4559. ra[1].buf.len = num * sizeof(page);
  4560. ra[2].buf.pv = (void *)&routargs;
  4561. ra[2].buf.len = sizeof(routargs);
  4562. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  4563. if (fl->apps->compat)
  4564. ioctl.inv.sc = REMOTE_SCALARS_MAKE(4, 2, 1);
  4565. else
  4566. ioctl.inv.sc = REMOTE_SCALARS_MAKE(2, 2, 1);
  4567. ioctl.inv.pra = ra;
  4568. ioctl.fds = NULL;
  4569. ioctl.attrs = NULL;
  4570. ioctl.crc = NULL;
  4571. ioctl.perf_kernel = NULL;
  4572. ioctl.perf_dsp = NULL;
  4573. ioctl.job = NULL;
  4574. VERIFY(err, 0 == (err = fastrpc_internal_invoke(fl,
  4575. FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl)));
  4576. *raddr = (uintptr_t)routargs.vaddrout;
  4577. if (err)
  4578. goto bail;
  4579. if (flags == ADSP_MMAP_REMOTE_HEAP_ADDR) {
  4580. VERIFY(err, VALID_FASTRPC_CID(cid));
  4581. if (err) {
  4582. err = -ECHRNG;
  4583. ADSPRPC_ERR(
  4584. "invalid channel 0x%zx set for session\n",
  4585. cid);
  4586. goto bail;
  4587. }
  4588. }
  4589. if (flags == ADSP_MMAP_REMOTE_HEAP_ADDR
  4590. && me->channel[cid].rhvm.vmid && refs == 1) {
  4591. struct secure_vm *rhvm = &me->channel[cid].rhvm;
  4592. u64 src_perms = BIT(QCOM_SCM_VMID_HLOS);
  4593. struct qcom_scm_vmperm *dst_perms;
  4594. uint32_t i = 0;
  4595. VERIFY(err, NULL != (dst_perms = kcalloc(rhvm->vmcount,
  4596. sizeof(struct qcom_scm_vmperm), GFP_KERNEL)));
  4597. if (err)
  4598. goto bail;
  4599. for (i = 0; i < rhvm->vmcount; i++) {
  4600. dst_perms[i].vmid = rhvm->vmid[i];
  4601. dst_perms[i].perm = rhvm->vmperm[i];
  4602. }
  4603. err = qcom_scm_assign_mem(phys, (uint64_t)size,
  4604. &src_perms, dst_perms, rhvm->vmcount);
  4605. kfree(dst_perms);
  4606. if (err) {
  4607. int unmap_err = 0;
  4608. ADSPRPC_ERR(
  4609. "rh hyp assign failed with %d for phys 0x%llx, size %zu\n",
  4610. err, phys, size);
  4611. err = -EADDRNOTAVAIL;
  4612. unmap_err = fastrpc_unmap_on_dsp(fl,
  4613. *raddr, phys, size, flags);
  4614. if (unmap_err) {
  4615. ADSPRPC_ERR(
  4616. "failed to unmap %d for phys 0x%llx, size %zd\n",
  4617. unmap_err, phys, size);
  4618. }
  4619. goto bail;
  4620. }
  4621. }
  4622. bail:
  4623. return err;
  4624. }
  4625. static int fastrpc_munmap_on_dsp_rh(struct fastrpc_file *fl, uint64_t phys,
  4626. size_t size, uint32_t flags, int locked)
  4627. {
  4628. int err = 0;
  4629. int tgid = 0;
  4630. struct fastrpc_apps *me = &gfa;
  4631. int cid = -1;
  4632. struct fastrpc_ioctl_invoke_async ioctl;
  4633. remote_arg_t ra[2];
  4634. struct {
  4635. uint8_t skey;
  4636. } routargs;
  4637. if (!fl) {
  4638. err = -EBADF;
  4639. goto bail;
  4640. }
  4641. cid = fl->cid;
  4642. VERIFY(err, VALID_FASTRPC_CID(cid));
  4643. if (err) {
  4644. err = -ECHRNG;
  4645. ADSPRPC_ERR(
  4646. "invalid channel 0x%zx set for session\n",
  4647. cid);
  4648. goto bail;
  4649. }
  4650. /* Send unique fastrpc process ID to dsp */
  4651. tgid = fl->tgid_frpc;
  4652. ra[0].buf.pv = (void *)&tgid;
  4653. ra[0].buf.len = sizeof(tgid);
  4654. ra[1].buf.pv = (void *)&routargs;
  4655. ra[1].buf.len = sizeof(routargs);
  4656. ioctl.inv.handle = FASTRPC_STATIC_HANDLE_PROCESS_GROUP;
  4657. ioctl.inv.sc = REMOTE_SCALARS_MAKE(9, 1, 1);
  4658. ioctl.inv.pra = ra;
  4659. ioctl.fds = NULL;
  4660. ioctl.attrs = NULL;
  4661. ioctl.crc = NULL;
  4662. ioctl.perf_kernel = NULL;
  4663. ioctl.perf_dsp = NULL;
  4664. ioctl.job = NULL;
  4665. if (locked) {
  4666. mutex_unlock(&fl->map_mutex);
  4667. mutex_unlock(&me->channel[cid].smd_mutex);
  4668. }
  4669. VERIFY(err, 0 == (err = fastrpc_internal_invoke(fl,
  4670. FASTRPC_MODE_PARALLEL, KERNEL_MSG_WITH_ZERO_PID, &ioctl)));
  4671. if (locked) {
  4672. mutex_lock(&me->channel[cid].smd_mutex);
  4673. mutex_lock(&fl->map_mutex);
  4674. }
  4675. if (err)
  4676. goto bail;
  4677. bail:
  4678. return err;
  4679. }
  4680. static int fastrpc_munmap_rh(uint64_t phys, size_t size,
  4681. uint32_t flags)
  4682. {
  4683. int err = 0;
  4684. struct fastrpc_apps *me = &gfa;
  4685. struct secure_vm *rhvm = &me->channel[RH_CID].rhvm;
  4686. if ((rhvm->vmid)
  4687. && (me->channel[RH_CID].in_hib == 0)) {
  4688. u64 src_perms = 0;
  4689. struct qcom_scm_vmperm dst_perms = {0};
  4690. uint32_t i = 0;
  4691. for (i = 0; i < rhvm->vmcount; i++) {
  4692. src_perms |= BIT(rhvm->vmid[i]);
  4693. }
  4694. dst_perms.vmid = QCOM_SCM_VMID_HLOS;
  4695. dst_perms.perm = QCOM_SCM_PERM_RWX;
  4696. err = qcom_scm_assign_mem(phys,
  4697. (uint64_t)size, &src_perms, &dst_perms, 1);
  4698. if (err) {
  4699. ADSPRPC_ERR(
  4700. "rh hyp unassign failed with %d for phys 0x%llx, size %zu\n",
  4701. err, phys, size);
  4702. err = -EADDRNOTAVAIL;
  4703. return err;
  4704. }
  4705. }
  4706. return err;
  4707. }
  4708. static int fastrpc_munmap_on_dsp(struct fastrpc_file *fl, uintptr_t raddr,
  4709. uint64_t phys, size_t size, uint32_t flags)
  4710. {
  4711. int err = 0;
  4712. VERIFY(err, 0 == (err = fastrpc_unmap_on_dsp(fl, raddr, phys,
  4713. size, flags)));
  4714. if (err)
  4715. goto bail;
  4716. if (flags == ADSP_MMAP_HEAP_ADDR) {
  4717. VERIFY(err, !(err = fastrpc_munmap_on_dsp_rh(fl, phys,
  4718. size, flags, 0)));
  4719. if (err)
  4720. goto bail;
  4721. } else if (flags == ADSP_MMAP_REMOTE_HEAP_ADDR) {
  4722. VERIFY(err, !(err = fastrpc_munmap_rh(phys,
  4723. size, flags)));
  4724. if (err)
  4725. goto bail;
  4726. }
  4727. bail:
  4728. return err;
  4729. }
  4730. static int fastrpc_mmap_dump(struct fastrpc_mmap *map, struct fastrpc_file *fl, int locked, bool dump_req)
  4731. {
  4732. struct fastrpc_mmap *match = map;
  4733. int err = 0, ret = 0;
  4734. struct fastrpc_apps *me = &gfa;
  4735. struct qcom_dump_segment ramdump_segments_rh;
  4736. struct list_head head;
  4737. unsigned long irq_flags = 0;
  4738. if (map->is_persistent && map->in_use) {
  4739. struct secure_vm *rhvm = &me->channel[RH_CID].rhvm;
  4740. uint64_t phys = map->phys;
  4741. size_t size = map->size;
  4742. //scm assign it back to HLOS
  4743. if (rhvm->vmid) {
  4744. u64 src_perms = 0;
  4745. struct qcom_scm_vmperm dst_perms = {0};
  4746. uint32_t i = 0;
  4747. for (i = 0; i < rhvm->vmcount; i++) {
  4748. src_perms |= BIT(rhvm->vmid[i]);
  4749. }
  4750. dst_perms.vmid = QCOM_SCM_VMID_HLOS;
  4751. dst_perms.perm = QCOM_SCM_PERM_RWX;
  4752. err = qcom_scm_assign_mem(phys, (uint64_t)size,
  4753. &src_perms, &dst_perms, 1);
  4754. }
  4755. if (err) {
  4756. ADSPRPC_ERR(
  4757. "rh hyp unassign failed with %d for phys 0x%llx, size %zu\n",
  4758. err, phys, size);
  4759. err = -EADDRNOTAVAIL;
  4760. return err;
  4761. }
  4762. spin_lock_irqsave(&me->hlock, irq_flags);
  4763. map->in_use = false;
  4764. /*
  4765. * decrementing refcount for persistent mappings
  4766. * as incrementing it in fastrpc_get_persistent_map
  4767. */
  4768. map->refs--;
  4769. spin_unlock_irqrestore(&me->hlock, irq_flags);
  4770. }
  4771. if (!match->is_persistent) {
  4772. if (match->flags == ADSP_MMAP_REMOTE_HEAP_ADDR) {
  4773. err = fastrpc_munmap_rh(match->phys,
  4774. match->size, match->flags);
  4775. } else if (match->flags == ADSP_MMAP_HEAP_ADDR) {
  4776. if (fl)
  4777. err = fastrpc_munmap_on_dsp_rh(fl, match->phys,
  4778. match->size, match->flags, 0);
  4779. else {
  4780. pr_err("Cannot communicate with DSP, ADSP is down\n");
  4781. fastrpc_mmap_add_global(match);
  4782. }
  4783. }
  4784. if (err)
  4785. return err;
  4786. }
  4787. if (dump_req) {
  4788. memset(&ramdump_segments_rh, 0, sizeof(ramdump_segments_rh));
  4789. ramdump_segments_rh.da = match->phys;
  4790. ramdump_segments_rh.va = (void *)page_address((struct page *)match->va);
  4791. ramdump_segments_rh.size = match->size;
  4792. INIT_LIST_HEAD(&head);
  4793. list_add(&ramdump_segments_rh.node, &head);
  4794. if (me->dev && dump_enabled()) {
  4795. ret = qcom_elf_dump(&head, me->dev, ELF_CLASS);
  4796. if (ret < 0)
  4797. pr_err("adsprpc: %s: unable to dump heap (err %d)\n",
  4798. __func__, ret);
  4799. }
  4800. }
  4801. if (!match->is_persistent) {
  4802. if (!locked && fl)
  4803. mutex_lock(&fl->map_mutex);
  4804. fastrpc_mmap_free(match, 0);
  4805. if (!locked && fl)
  4806. mutex_unlock(&fl->map_mutex);
  4807. }
  4808. return 0;
  4809. }
  4810. static int fastrpc_dsp_restart_handler(struct fastrpc_file *fl, int locked, bool dump_req)
  4811. {
  4812. struct fastrpc_mmap *match = NULL, *map = NULL;
  4813. struct hlist_node *n = NULL;
  4814. int err = 0;
  4815. struct fastrpc_apps *me = &gfa;
  4816. struct list_head head;
  4817. unsigned long irq_flags = 0;
  4818. INIT_LIST_HEAD(&head);
  4819. if (fl) {
  4820. VERIFY(err, fl->cid == RH_CID);
  4821. if (err) {
  4822. err = -EBADR;
  4823. goto bail;
  4824. }
  4825. }
  4826. do {
  4827. match = NULL;
  4828. spin_lock_irqsave(&me->hlock, irq_flags);
  4829. hlist_for_each_entry_safe(map, n, &me->maps, hn) {
  4830. if (!map->is_dumped && (!fl ||
  4831. (fl && map->servloc_name && fl->servloc_name &&
  4832. !strcmp(map->servloc_name, fl->servloc_name)))) {
  4833. map->is_dumped = true;
  4834. match = map;
  4835. if (!match->is_persistent)
  4836. hlist_del_init(&map->hn);
  4837. break;
  4838. }
  4839. }
  4840. spin_unlock_irqrestore(&me->hlock, irq_flags);
  4841. if (match)
  4842. err = fastrpc_mmap_dump(match, fl, locked, dump_req);
  4843. } while (match && !err);
  4844. bail:
  4845. if (err && match) {
  4846. if (!locked && fl)
  4847. mutex_lock(&fl->map_mutex);
  4848. fastrpc_mmap_add_global(match);
  4849. if (!locked && fl)
  4850. mutex_unlock(&fl->map_mutex);
  4851. }
  4852. spin_lock_irqsave(&me->hlock, irq_flags);
  4853. hlist_for_each_entry_safe(map, n, &me->maps, hn) {
  4854. if (map->is_dumped && ((!fl && map->servloc_name) ||
  4855. (fl && map->servloc_name && fl->servloc_name &&
  4856. !strcmp(map->servloc_name, fl->servloc_name))))
  4857. map->is_dumped = false;
  4858. }
  4859. spin_unlock_irqrestore(&me->hlock, irq_flags);
  4860. return err;
  4861. }
  4862. static int fastrpc_mmap_remove_pdr(struct fastrpc_file *fl)
  4863. {
  4864. struct fastrpc_apps *me = &gfa;
  4865. int session = 0, err = 0, cid = -1;
  4866. if (!fl) {
  4867. err = -EBADF;
  4868. goto bail;
  4869. }
  4870. err = fastrpc_get_spd_session(fl->servloc_name,
  4871. &session, &cid);
  4872. if (err)
  4873. goto bail;
  4874. VERIFY(err, cid == fl->cid);
  4875. if (err) {
  4876. err = -EBADR;
  4877. goto bail;
  4878. }
  4879. if (atomic_read(&me->channel[cid].spd[session].ispdup) == 0) {
  4880. err = -ENOTCONN;
  4881. goto bail;
  4882. }
  4883. if (me->channel[cid].spd[session].pdrcount !=
  4884. me->channel[cid].spd[session].prevpdrcount) {
  4885. err = fastrpc_dsp_restart_handler(fl, 0, false);
  4886. if (err)
  4887. ADSPRPC_WARN("failed to unmap remote heap (err %d)\n",
  4888. err);
  4889. me->channel[cid].spd[session].prevpdrcount =
  4890. me->channel[cid].spd[session].pdrcount;
  4891. }
  4892. bail:
  4893. return err;
  4894. }
  4895. static inline void get_fastrpc_ioctl_mmap_64(
  4896. struct fastrpc_ioctl_mmap_64 *mmap64,
  4897. struct fastrpc_ioctl_mmap *immap)
  4898. {
  4899. immap->fd = mmap64->fd;
  4900. immap->flags = mmap64->flags;
  4901. immap->vaddrin = (uintptr_t)mmap64->vaddrin;
  4902. immap->size = mmap64->size;
  4903. }
  4904. static inline void put_fastrpc_ioctl_mmap_64(
  4905. struct fastrpc_ioctl_mmap_64 *mmap64,
  4906. struct fastrpc_ioctl_mmap *immap)
  4907. {
  4908. mmap64->vaddrout = (uint64_t)immap->vaddrout;
  4909. }
  4910. static inline void get_fastrpc_ioctl_munmap_64(
  4911. struct fastrpc_ioctl_munmap_64 *munmap64,
  4912. struct fastrpc_ioctl_munmap *imunmap)
  4913. {
  4914. imunmap->vaddrout = (uintptr_t)munmap64->vaddrout;
  4915. imunmap->size = munmap64->size;
  4916. }
  4917. int fastrpc_internal_munmap(struct fastrpc_file *fl,
  4918. struct fastrpc_ioctl_munmap *ud)
  4919. {
  4920. int err = 0;
  4921. struct fastrpc_mmap *map = NULL;
  4922. struct fastrpc_buf *rbuf = NULL, *free = NULL;
  4923. struct hlist_node *n;
  4924. VERIFY(err, fl->dsp_proc_init == 1);
  4925. if (err) {
  4926. ADSPRPC_ERR(
  4927. "user application %s trying to unmap without initialization\n",
  4928. current->comm);
  4929. err = -EHOSTDOWN;
  4930. return err;
  4931. }
  4932. mutex_lock(&fl->internal_map_mutex);
  4933. spin_lock(&fl->hlock);
  4934. hlist_for_each_entry_safe(rbuf, n, &fl->remote_bufs, hn_rem) {
  4935. if (rbuf->raddr && ((rbuf->flags == ADSP_MMAP_ADD_PAGES) ||
  4936. (rbuf->flags == ADSP_MMAP_ADD_PAGES_LLC))) {
  4937. if ((rbuf->raddr == ud->vaddrout) &&
  4938. (rbuf->size == ud->size)) {
  4939. free = rbuf;
  4940. break;
  4941. }
  4942. }
  4943. }
  4944. spin_unlock(&fl->hlock);
  4945. if (free) {
  4946. VERIFY(err, !(err = fastrpc_munmap_on_dsp(fl, free->raddr,
  4947. free->phys, free->size, free->flags)));
  4948. if (err)
  4949. goto bail;
  4950. fastrpc_buf_free(rbuf, 0);
  4951. mutex_unlock(&fl->internal_map_mutex);
  4952. return err;
  4953. }
  4954. mutex_lock(&fl->map_mutex);
  4955. VERIFY(err, !(err = fastrpc_mmap_remove(fl, -1, ud->vaddrout,
  4956. ud->size, &map)));
  4957. mutex_unlock(&fl->map_mutex);
  4958. if (err)
  4959. goto bail;
  4960. VERIFY(err, map != NULL);
  4961. if (err) {
  4962. err = -EINVAL;
  4963. goto bail;
  4964. }
  4965. if (!map->is_persistent) {
  4966. VERIFY(err, !(err = fastrpc_munmap_on_dsp(fl, map->raddr,
  4967. map->phys, map->size, map->flags)));
  4968. }
  4969. if (err)
  4970. goto bail;
  4971. mutex_lock(&fl->map_mutex);
  4972. fastrpc_mmap_free(map, 0);
  4973. mutex_unlock(&fl->map_mutex);
  4974. bail:
  4975. if (err && map) {
  4976. mutex_lock(&fl->map_mutex);
  4977. if ((map->flags == ADSP_MMAP_HEAP_ADDR) ||
  4978. (map->flags == ADSP_MMAP_REMOTE_HEAP_ADDR))
  4979. fastrpc_mmap_add_global(map);
  4980. else
  4981. fastrpc_mmap_add(map);
  4982. mutex_unlock(&fl->map_mutex);
  4983. }
  4984. mutex_unlock(&fl->internal_map_mutex);
  4985. return err;
  4986. }
  4987. /*
  4988. * fastrpc_internal_munmap_fd can only be used for buffers
  4989. * mapped with persist attributes. This can only be called
  4990. * once for any persist buffer
  4991. */
  4992. static int fastrpc_internal_munmap_fd(struct fastrpc_file *fl,
  4993. struct fastrpc_ioctl_munmap_fd *ud)
  4994. {
  4995. int err = 0;
  4996. struct fastrpc_mmap *map = NULL;
  4997. VERIFY(err, (fl && ud));
  4998. if (err) {
  4999. err = -EINVAL;
  5000. return err;
  5001. }
  5002. VERIFY(err, fl->dsp_proc_init == 1);
  5003. if (err) {
  5004. ADSPRPC_ERR(
  5005. "user application %s trying to unmap without initialization\n",
  5006. current->comm);
  5007. err = -EHOSTDOWN;
  5008. return err;
  5009. }
  5010. mutex_lock(&fl->internal_map_mutex);
  5011. mutex_lock(&fl->map_mutex);
  5012. err = fastrpc_mmap_find(fl, ud->fd, NULL, ud->va, ud->len, 0, 0, &map);
  5013. if (err) {
  5014. ADSPRPC_ERR(
  5015. "mapping not found to unmap fd 0x%x, va 0x%llx, len 0x%x, err %d\n",
  5016. ud->fd, (unsigned long long)ud->va,
  5017. (unsigned int)ud->len, err);
  5018. mutex_unlock(&fl->map_mutex);
  5019. goto bail;
  5020. }
  5021. if (map && (map->attr & FASTRPC_ATTR_KEEP_MAP)) {
  5022. map->attr = map->attr & (~FASTRPC_ATTR_KEEP_MAP);
  5023. fastrpc_mmap_free(map, 0);
  5024. }
  5025. mutex_unlock(&fl->map_mutex);
  5026. bail:
  5027. mutex_unlock(&fl->internal_map_mutex);
  5028. return err;
  5029. }
  5030. int fastrpc_internal_mem_map(struct fastrpc_file *fl,
  5031. struct fastrpc_ioctl_mem_map *ud)
  5032. {
  5033. int err = 0;
  5034. struct fastrpc_mmap *map = NULL;
  5035. mutex_lock(&fl->internal_map_mutex);
  5036. VERIFY(err, fl->dsp_proc_init == 1);
  5037. if (err) {
  5038. pr_err("adsprpc: ERROR: %s: user application %s trying to map without initialization\n",
  5039. __func__, current->comm);
  5040. err = EBADR;
  5041. goto bail;
  5042. }
  5043. /* create SMMU mapping */
  5044. mutex_lock(&fl->map_mutex);
  5045. VERIFY(err, !(err = fastrpc_mmap_create(fl, ud->m.fd, NULL, ud->m.attrs,
  5046. ud->m.vaddrin, ud->m.length,
  5047. ud->m.flags, &map)));
  5048. mutex_unlock(&fl->map_mutex);
  5049. if (err)
  5050. goto bail;
  5051. if (map->raddr) {
  5052. err = -EEXIST;
  5053. goto bail;
  5054. }
  5055. /* create DSP mapping */
  5056. VERIFY(err, !(err = fastrpc_mem_map_to_dsp(fl, ud->m.fd, ud->m.offset,
  5057. ud->m.flags, map->va, map->phys, map->size, &map->raddr)));
  5058. if (err)
  5059. goto bail;
  5060. ud->m.vaddrout = map->raddr;
  5061. if (ud->m.flags == ADSP_MMAP_HEAP_ADDR ||
  5062. ud->m.flags == ADSP_MMAP_REMOTE_HEAP_ADDR)
  5063. fastrpc_mmap_add_global(map);
  5064. bail:
  5065. if (err) {
  5066. ADSPRPC_ERR("failed to map fd %d, len 0x%x, flags %d, map %pK, err %d\n",
  5067. ud->m.fd, ud->m.length, ud->m.flags, map, err);
  5068. if (map) {
  5069. mutex_lock(&fl->map_mutex);
  5070. fastrpc_mmap_free(map, 0);
  5071. mutex_unlock(&fl->map_mutex);
  5072. }
  5073. }
  5074. mutex_unlock(&fl->internal_map_mutex);
  5075. return err;
  5076. }
  5077. int fastrpc_internal_mem_unmap(struct fastrpc_file *fl,
  5078. struct fastrpc_ioctl_mem_unmap *ud)
  5079. {
  5080. int err = 0;
  5081. struct fastrpc_mmap *map = NULL;
  5082. size_t map_size = 0;
  5083. mutex_lock(&fl->internal_map_mutex);
  5084. VERIFY(err, fl->dsp_proc_init == 1);
  5085. if (err) {
  5086. pr_err("adsprpc: ERROR: %s: user application %s trying to map without initialization\n",
  5087. __func__, current->comm);
  5088. err = EBADR;
  5089. goto bail;
  5090. }
  5091. mutex_lock(&fl->map_mutex);
  5092. VERIFY(err, !(err = fastrpc_mmap_remove(fl, ud->um.fd,
  5093. (uintptr_t)ud->um.vaddr, ud->um.length, &map)));
  5094. mutex_unlock(&fl->map_mutex);
  5095. if (err)
  5096. goto bail;
  5097. VERIFY(err, map->flags == FASTRPC_MAP_FD ||
  5098. map->flags == FASTRPC_MAP_FD_DELAYED ||
  5099. map->flags == FASTRPC_MAP_STATIC);
  5100. if (err) {
  5101. err = -EBADMSG;
  5102. goto bail;
  5103. }
  5104. map_size = map->size;
  5105. /* remove mapping on DSP */
  5106. VERIFY(err, !(err = fastrpc_mem_unmap_to_dsp(fl, map->fd, map->flags,
  5107. map->raddr, map->phys, map->size)));
  5108. if (err)
  5109. goto bail;
  5110. /* remove SMMU mapping */
  5111. mutex_lock(&fl->map_mutex);
  5112. fastrpc_mmap_free(map, 0);
  5113. mutex_unlock(&fl->map_mutex);
  5114. map = NULL;
  5115. bail:
  5116. if (err) {
  5117. ADSPRPC_ERR(
  5118. "failed to unmap fd %d addr 0x%llx length %zu map size %zu err 0x%x\n",
  5119. ud->um.fd, ud->um.vaddr, ud->um.length, map_size, err);
  5120. /* Add back to map list in case of error to unmap on DSP */
  5121. if (map) {
  5122. mutex_lock(&fl->map_mutex);
  5123. if ((map->flags == ADSP_MMAP_HEAP_ADDR) ||
  5124. (map->flags == ADSP_MMAP_REMOTE_HEAP_ADDR))
  5125. fastrpc_mmap_add_global(map);
  5126. else
  5127. fastrpc_mmap_add(map);
  5128. mutex_unlock(&fl->map_mutex);
  5129. }
  5130. }
  5131. mutex_unlock(&fl->internal_map_mutex);
  5132. return err;
  5133. }
  5134. int fastrpc_internal_mmap(struct fastrpc_file *fl,
  5135. struct fastrpc_ioctl_mmap *ud)
  5136. {
  5137. struct fastrpc_mmap *map = NULL;
  5138. struct fastrpc_buf *rbuf = NULL;
  5139. unsigned long dma_attr = 0;
  5140. uintptr_t raddr = 0;
  5141. int err = 0;
  5142. VERIFY(err, fl->dsp_proc_init == 1);
  5143. if (err) {
  5144. ADSPRPC_ERR(
  5145. "user application %s trying to map without initialization\n",
  5146. current->comm);
  5147. err = -EHOSTDOWN;
  5148. return err;
  5149. }
  5150. mutex_lock(&fl->internal_map_mutex);
  5151. /* Pages for unsigned PD's user-heap should be allocated in userspace */
  5152. if (((ud->flags == ADSP_MMAP_ADD_PAGES) ||
  5153. (ud->flags == ADSP_MMAP_ADD_PAGES_LLC)) && !fl->is_unsigned_pd) {
  5154. if (ud->vaddrin) {
  5155. err = -EINVAL;
  5156. ADSPRPC_ERR(
  5157. "adding user allocated pages is not supported\n");
  5158. goto bail;
  5159. }
  5160. dma_attr = DMA_ATTR_DELAYED_UNMAP | DMA_ATTR_NO_KERNEL_MAPPING;
  5161. if (ud->flags == ADSP_MMAP_ADD_PAGES_LLC)
  5162. dma_attr |= DMA_ATTR_SYS_CACHE_ONLY;
  5163. err = fastrpc_buf_alloc(fl, ud->size, dma_attr, ud->flags,
  5164. USERHEAP_BUF, &rbuf);
  5165. if (err)
  5166. goto bail;
  5167. err = fastrpc_mmap_on_dsp(fl, ud->flags, 0,
  5168. rbuf->phys, rbuf->size, 0, &raddr);
  5169. if (err)
  5170. goto bail;
  5171. rbuf->raddr = raddr;
  5172. } else {
  5173. uintptr_t va_to_dsp;
  5174. if (fl->is_unsigned_pd && ud->flags == ADSP_MMAP_REMOTE_HEAP_ADDR) {
  5175. err = -EINVAL;
  5176. ADSPRPC_ERR(
  5177. "Secure memory allocation is not supported in unsigned PD");
  5178. goto bail;
  5179. }
  5180. mutex_lock(&fl->map_mutex);
  5181. VERIFY(err, !(err = fastrpc_mmap_create(fl, ud->fd, NULL, 0,
  5182. (uintptr_t)ud->vaddrin, ud->size,
  5183. ud->flags, &map)));
  5184. mutex_unlock(&fl->map_mutex);
  5185. if (err)
  5186. goto bail;
  5187. if (ud->flags == ADSP_MMAP_HEAP_ADDR ||
  5188. ud->flags == ADSP_MMAP_REMOTE_HEAP_ADDR)
  5189. va_to_dsp = 0;
  5190. else
  5191. va_to_dsp = (uintptr_t)map->va;
  5192. VERIFY(err, 0 == (err = fastrpc_mmap_on_dsp(fl, ud->flags,
  5193. va_to_dsp, map->phys, map->size, map->refs, &raddr)));
  5194. if (err)
  5195. goto bail;
  5196. map->raddr = raddr;
  5197. if (ud->flags == ADSP_MMAP_HEAP_ADDR ||
  5198. ud->flags == ADSP_MMAP_REMOTE_HEAP_ADDR)
  5199. fastrpc_mmap_add_global(map);
  5200. }
  5201. ud->vaddrout = raddr;
  5202. bail:
  5203. if (err) {
  5204. if (map) {
  5205. mutex_lock(&fl->map_mutex);
  5206. fastrpc_mmap_free(map, 0);
  5207. mutex_unlock(&fl->map_mutex);
  5208. }
  5209. if (!IS_ERR_OR_NULL(rbuf))
  5210. fastrpc_buf_free(rbuf, 0);
  5211. }
  5212. mutex_unlock(&fl->internal_map_mutex);
  5213. return err;
  5214. }
  5215. static void fastrpc_context_list_dtor(struct fastrpc_file *fl);
  5216. static int fastrpc_session_alloc_locked(struct fastrpc_channel_ctx *chan,
  5217. int secure, int sharedcb, int pd_type, struct fastrpc_session_ctx **session)
  5218. {
  5219. struct fastrpc_apps *me = &gfa;
  5220. uint64_t idx = 0;
  5221. int err = 0;
  5222. /*
  5223. * PD type can be either unused(DEFAULT_UNUSED) (or) if PD type
  5224. * is used, choose the context bank with matching PD type.
  5225. */
  5226. if (chan->sesscount) {
  5227. for (idx = 0; idx < chan->sesscount; ++idx) {
  5228. if (!chan->session[idx].used &&
  5229. chan->session[idx].smmu.secure == secure &&
  5230. chan->session[idx].smmu.sharedcb == sharedcb &&
  5231. (pd_type == DEFAULT_UNUSED ||
  5232. chan->session[idx].smmu.pd_type == pd_type)) {
  5233. chan->session[idx].used = 1;
  5234. break;
  5235. }
  5236. }
  5237. if (idx >= chan->sesscount) {
  5238. err = -EUSERS;
  5239. goto bail;
  5240. }
  5241. chan->session[idx].smmu.faults = 0;
  5242. } else {
  5243. VERIFY(err, me->dev != NULL);
  5244. if (err) {
  5245. err = -ENODEV;
  5246. goto bail;
  5247. }
  5248. chan->session[0].dev = me->dev;
  5249. chan->session[0].smmu.dev = me->dev;
  5250. }
  5251. *session = &chan->session[idx];
  5252. bail:
  5253. return err;
  5254. }
  5255. static void handle_remote_signal(uint64_t msg, int cid)
  5256. {
  5257. struct fastrpc_apps *me = &gfa;
  5258. uint32_t pid = msg >> 32;
  5259. uint32_t signal_id = msg & 0xffffffff;
  5260. struct fastrpc_file *fl = NULL;
  5261. struct hlist_node *n = NULL;
  5262. unsigned long irq_flags = 0;
  5263. DSPSIGNAL_VERBOSE("Received queue signal %llx: PID %u, signal %u\n", msg, pid, signal_id);
  5264. if (signal_id >= DSPSIGNAL_NUM_SIGNALS) {
  5265. ADSPRPC_ERR("Received bad signal %u for PID %u\n", signal_id, pid);
  5266. return;
  5267. }
  5268. spin_lock_irqsave(&me->hlock, irq_flags);
  5269. hlist_for_each_entry_safe(fl, n, &me->drivers, hn) {
  5270. /* Response from DSP contains unique fastrpc process id, use unique fastrpc process ID to compare */
  5271. if ((fl->tgid_frpc == pid) && (fl->cid == cid)) {
  5272. unsigned long fflags = 0;
  5273. spin_lock_irqsave(&fl->dspsignals_lock, fflags);
  5274. if (fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE]) {
  5275. struct fastrpc_dspsignal *group =
  5276. fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE];
  5277. struct fastrpc_dspsignal *sig =
  5278. &group[signal_id % DSPSIGNAL_GROUP_SIZE];
  5279. if ((sig->state == DSPSIGNAL_STATE_PENDING) ||
  5280. (sig->state == DSPSIGNAL_STATE_SIGNALED)) {
  5281. DSPSIGNAL_VERBOSE("Signaling signal %u for PID %u\n",
  5282. signal_id, pid);
  5283. trace_fastrpc_dspsignal("complete", signal_id, sig->state, 0);
  5284. complete(&sig->comp);
  5285. sig->state = DSPSIGNAL_STATE_SIGNALED;
  5286. } else if (sig->state == DSPSIGNAL_STATE_UNUSED) {
  5287. ADSPRPC_ERR("Received unknown signal %u for PID %u\n",
  5288. signal_id, pid);
  5289. }
  5290. } else {
  5291. ADSPRPC_ERR("Received unknown signal %u for PID %u\n",
  5292. signal_id, pid);
  5293. }
  5294. spin_unlock_irqrestore(&fl->dspsignals_lock, fflags);
  5295. break;
  5296. }
  5297. }
  5298. spin_unlock_irqrestore(&me->hlock, irq_flags);
  5299. }
  5300. int fastrpc_handle_rpc_response(void *data, int len, int cid)
  5301. {
  5302. struct smq_invoke_rsp *rsp = (struct smq_invoke_rsp *)data;
  5303. struct smq_notif_rspv3 *notif = (struct smq_notif_rspv3 *)data;
  5304. struct smq_invoke_rspv2 *rspv2 = NULL;
  5305. struct smq_invoke_ctx *ctx = NULL;
  5306. struct fastrpc_apps *me = &gfa;
  5307. uint32_t index, rsp_flags = 0, early_wake_time = 0, ver = 0;
  5308. int err = 0, ignore_rsp_err = 0;
  5309. struct fastrpc_channel_ctx *chan = NULL;
  5310. unsigned long irq_flags = 0;
  5311. int64_t ns = 0;
  5312. uint64_t xo_time_in_us = 0, dspsig_msg = 0;
  5313. xo_time_in_us = CONVERT_CNT_TO_US(__arch_counter_get_cntvct());
  5314. if (len == sizeof(uint64_t)) {
  5315. /*
  5316. * dspsignal message from the DSP
  5317. */
  5318. dspsig_msg = *((uint64_t *)data);
  5319. trace_fastrpc_transport_response(cid, dspsig_msg, 0, 0, 0);
  5320. handle_remote_signal(dspsig_msg, cid);
  5321. goto bail;
  5322. }
  5323. chan = &me->channel[cid];
  5324. VERIFY(err, (rsp && len >= sizeof(*rsp)));
  5325. if (err) {
  5326. err = -EINVAL;
  5327. goto bail;
  5328. }
  5329. if (notif->ctx == FASTRPC_NOTIF_CTX_RESERVED) {
  5330. VERIFY(err, (notif->type == STATUS_RESPONSE &&
  5331. len >= sizeof(*notif)));
  5332. if (err)
  5333. goto bail;
  5334. fastrpc_notif_find_process(cid, notif);
  5335. goto bail;
  5336. }
  5337. if (len >= sizeof(struct smq_invoke_rspv2))
  5338. rspv2 = (struct smq_invoke_rspv2 *)data;
  5339. if (rspv2) {
  5340. early_wake_time = rspv2->early_wake_time;
  5341. rsp_flags = rspv2->flags;
  5342. ver = rspv2->version;
  5343. }
  5344. trace_fastrpc_transport_response(cid, rsp->ctx,
  5345. rsp->retval, rsp_flags, early_wake_time);
  5346. ns = get_timestamp_in_ns();
  5347. fastrpc_update_rxmsg_buf(chan, rsp->ctx, rsp->retval,
  5348. rsp_flags, early_wake_time, ver, ns, xo_time_in_us);
  5349. index = (uint32_t)GET_TABLE_IDX_FROM_CTXID(rsp->ctx);
  5350. VERIFY(err, index < FASTRPC_CTX_MAX);
  5351. if (err)
  5352. goto bail;
  5353. spin_lock_irqsave(&chan->ctxlock, irq_flags);
  5354. ctx = chan->ctxtable[index];
  5355. VERIFY(err, !IS_ERR_OR_NULL(ctx) &&
  5356. (ctx->ctxid == GET_CTXID_FROM_RSP_CTX(rsp->ctx)) &&
  5357. ctx->magic == FASTRPC_CTX_MAGIC);
  5358. if (err) {
  5359. /*
  5360. * Received an anticipatory COMPLETE_SIGNAL from DSP for a
  5361. * context after CPU successfully polling on memory and
  5362. * completed processing of context. Ignore the message.
  5363. * Also ignore response for a call which was already
  5364. * completed by update of poll memory and the context was
  5365. * removed from the table and possibly reused for another call.
  5366. */
  5367. ignore_rsp_err = ((rsp_flags == COMPLETE_SIGNAL) || !ctx ||
  5368. (ctx && (ctx->ctxid != GET_CTXID_FROM_RSP_CTX(rsp->ctx)))) ? 1 : 0;
  5369. goto bail_unlock;
  5370. }
  5371. if (rspv2) {
  5372. VERIFY(err, rspv2->version == FASTRPC_RSP_VERSION2);
  5373. if (err)
  5374. goto bail_unlock;
  5375. }
  5376. VERIFY(err, VALID_FASTRPC_CID(ctx->fl->cid));
  5377. if (err) {
  5378. err = -ECHRNG;
  5379. goto bail_unlock;
  5380. }
  5381. context_notify_user(ctx, rsp->retval, rsp_flags, early_wake_time);
  5382. bail_unlock:
  5383. spin_unlock_irqrestore(&chan->ctxlock, irq_flags);
  5384. bail:
  5385. if (err) {
  5386. err = -ENOKEY;
  5387. if (!ignore_rsp_err)
  5388. ADSPRPC_ERR(
  5389. "invalid response data %pK, len %d from remote subsystem err %d\n",
  5390. data, len, err);
  5391. else {
  5392. err = 0;
  5393. me->duplicate_rsp_err_cnt++;
  5394. }
  5395. }
  5396. return err;
  5397. }
  5398. static int fastrpc_session_alloc_secure_memory(
  5399. struct fastrpc_channel_ctx *chan, int secure,
  5400. int sharedcb, int pd_type, struct fastrpc_session_ctx **session)
  5401. {
  5402. int err = 0;
  5403. struct fastrpc_apps *me = &gfa;
  5404. /*
  5405. * If PD type is configured for context banks,
  5406. * Use CPZ_USERPD, to allocate secure context bank type.
  5407. */
  5408. if (pd_type != DEFAULT_UNUSED && me->cb_pd_type)
  5409. pd_type = CPZ_USERPD;
  5410. mutex_lock(&chan->smd_mutex);
  5411. if (!*session)
  5412. err = fastrpc_session_alloc_locked(chan, secure, sharedcb, pd_type, session);
  5413. mutex_unlock(&chan->smd_mutex);
  5414. if (err == -EUSERS) {
  5415. ADSPRPC_WARN(
  5416. "max concurrent sessions limit (%d) already reached on %s err %d\n",
  5417. chan->sesscount, chan->subsys, err);
  5418. }
  5419. return err;
  5420. }
  5421. static void fastrpc_session_free(struct fastrpc_channel_ctx *chan,
  5422. struct fastrpc_session_ctx *session)
  5423. {
  5424. mutex_lock(&chan->smd_mutex);
  5425. session->used = 0;
  5426. mutex_unlock(&chan->smd_mutex);
  5427. }
  5428. void fastrpc_file_free(struct kref *ref)
  5429. {
  5430. struct fastrpc_file *fl = NULL;
  5431. struct hlist_node *n = NULL;
  5432. struct fastrpc_mmap *map = NULL, *lmap = NULL;
  5433. unsigned long flags;
  5434. int cid;
  5435. struct fastrpc_apps *me = &gfa;
  5436. bool is_driver_closed = false;
  5437. int err = 0;
  5438. unsigned long irq_flags = 0;
  5439. bool is_locked = false;
  5440. int i;
  5441. struct fastrpc_buf *init_mem = NULL;
  5442. fl = container_of(ref, struct fastrpc_file, refcount);
  5443. if (!fl) {
  5444. ADSPRPC_ERR("%s Invalid fl", __func__);
  5445. return;
  5446. }
  5447. cid = fl->cid;
  5448. spin_lock_irqsave(&me->hlock, irq_flags);
  5449. if (fl->device) {
  5450. fl->device->dev_close = true;
  5451. if (fl->device->refs == 0) {
  5452. is_driver_closed = true;
  5453. hlist_del_init(&fl->device->hn);
  5454. }
  5455. }
  5456. fl->file_close = FASTRPC_PROCESS_EXIT_START;
  5457. spin_unlock_irqrestore(&me->hlock, irq_flags);
  5458. (void)fastrpc_release_current_dsp_process(fl);
  5459. spin_lock_irqsave(&fl->apps->hlock, irq_flags);
  5460. is_locked = true;
  5461. if (!fl->is_dma_invoke_pend)
  5462. goto skip_dmainvoke_wait;
  5463. is_locked = false;
  5464. spin_unlock_irqrestore(&fl->apps->hlock, irq_flags);
  5465. wait_for_completion(&fl->dma_invoke);
  5466. skip_dmainvoke_wait:
  5467. if (!is_locked) {
  5468. spin_lock_irqsave(&fl->apps->hlock, irq_flags);
  5469. is_locked = true;
  5470. }
  5471. hlist_del_init(&fl->hn);
  5472. fl->is_dma_invoke_pend = false;
  5473. fl->dsp_process_state = PROCESS_CREATE_DEFAULT;
  5474. is_locked = false;
  5475. spin_unlock_irqrestore(&fl->apps->hlock, irq_flags);
  5476. if (!fl->sctx) {
  5477. spin_lock_irqsave(&me->hlock, irq_flags);
  5478. /* Reset the tgid usage to false */
  5479. if (fl->tgid_frpc != -1)
  5480. frpc_tgid_usage_array[fl->tgid_frpc] = false;
  5481. spin_unlock_irqrestore(&me->hlock, irq_flags);
  5482. kfree(fl);
  5483. fl = NULL;
  5484. return;
  5485. }
  5486. //Dummy wake up to exit Async worker thread
  5487. spin_lock_irqsave(&fl->aqlock, flags);
  5488. atomic_add(1, &fl->async_queue_job_count);
  5489. wake_up_interruptible(&fl->async_wait_queue);
  5490. spin_unlock_irqrestore(&fl->aqlock, flags);
  5491. // Dummy wake up to exit notification worker thread
  5492. spin_lock_irqsave(&fl->proc_state_notif.nqlock, flags);
  5493. atomic_add(1, &fl->proc_state_notif.notif_queue_count);
  5494. wake_up_interruptible(&fl->proc_state_notif.notif_wait_queue);
  5495. spin_unlock_irqrestore(&fl->proc_state_notif.nqlock, flags);
  5496. if (!is_locked) {
  5497. spin_lock_irqsave(&fl->apps->hlock, irq_flags);
  5498. is_locked = true;
  5499. }
  5500. if (!IS_ERR_OR_NULL(fl->init_mem)) {
  5501. init_mem = fl->init_mem;
  5502. fl->init_mem = NULL;
  5503. is_locked = false;
  5504. spin_unlock_irqrestore(&fl->apps->hlock, irq_flags);
  5505. fastrpc_buf_free(init_mem, 0);
  5506. }
  5507. if (is_locked) {
  5508. is_locked = false;
  5509. spin_unlock_irqrestore(&fl->apps->hlock, irq_flags);
  5510. }
  5511. fastrpc_context_list_dtor(fl);
  5512. fastrpc_cached_buf_list_free(fl);
  5513. if (!IS_ERR_OR_NULL(fl->hdr_bufs))
  5514. kfree(fl->hdr_bufs);
  5515. if (!IS_ERR_OR_NULL(fl->pers_hdr_buf))
  5516. fastrpc_buf_free(fl->pers_hdr_buf, 0);
  5517. mutex_lock(&fl->internal_map_mutex);
  5518. mutex_lock(&fl->map_mutex);
  5519. do {
  5520. lmap = NULL;
  5521. hlist_for_each_entry_safe(map, n, &fl->maps, hn) {
  5522. hlist_del_init(&map->hn);
  5523. lmap = map;
  5524. break;
  5525. }
  5526. fastrpc_mmap_free(lmap, 1);
  5527. } while (lmap);
  5528. mutex_unlock(&fl->map_mutex);
  5529. mutex_unlock(&fl->internal_map_mutex);
  5530. fastrpc_pm_relax(fl, gcinfo[fl->cid].secure);
  5531. if (fl->device && is_driver_closed)
  5532. device_unregister(&fl->device->dev);
  5533. spin_lock_irqsave(&me->hlock, irq_flags);
  5534. /* Reset the tgid usage to false */
  5535. if (fl->tgid_frpc != -1)
  5536. frpc_tgid_usage_array[fl->tgid_frpc] = false;
  5537. spin_unlock_irqrestore(&me->hlock, irq_flags);
  5538. VERIFY(err, VALID_FASTRPC_CID(cid));
  5539. if (!err && fl->sctx)
  5540. fastrpc_session_free(&fl->apps->channel[cid], fl->sctx);
  5541. if (!err && fl->secsctx)
  5542. fastrpc_session_free(&fl->apps->channel[cid], fl->secsctx);
  5543. for (i = 0; i < (DSPSIGNAL_NUM_SIGNALS / DSPSIGNAL_GROUP_SIZE); i++)
  5544. kfree(fl->signal_groups[i]);
  5545. mutex_destroy(&fl->signal_create_mutex);
  5546. fastrpc_remote_buf_list_free(fl);
  5547. mutex_destroy(&fl->map_mutex);
  5548. mutex_destroy(&fl->internal_map_mutex);
  5549. kfree(fl->dev_pm_qos_req);
  5550. kfree(fl->gidlist.gids);
  5551. kfree(fl);
  5552. fl = NULL;
  5553. }
  5554. static int fastrpc_file_get(struct fastrpc_file *fl)
  5555. {
  5556. if (!fl)
  5557. return -ENOENT;
  5558. return kref_get_unless_zero(&fl->refcount) ? 0 : -ENOENT;
  5559. }
  5560. static void fastrpc_file_put(struct fastrpc_file *fl)
  5561. {
  5562. if (fl)
  5563. kref_put(&fl->refcount, fastrpc_file_free);
  5564. }
  5565. static int fastrpc_device_release(struct inode *inode, struct file *file)
  5566. {
  5567. struct fastrpc_file *fl = (struct fastrpc_file *)file->private_data;
  5568. struct fastrpc_apps *me = &gfa;
  5569. unsigned int ii;
  5570. if (!fl)
  5571. return 0;
  5572. if (fl->qos_request && fl->dev_pm_qos_req) {
  5573. for (ii = 0; ii < me->lowest_capacity_core_count; ii++) {
  5574. if (!dev_pm_qos_request_active(&fl->dev_pm_qos_req[ii]))
  5575. continue;
  5576. dev_pm_qos_remove_request(&fl->dev_pm_qos_req[ii]);
  5577. }
  5578. }
  5579. debugfs_remove(fl->debugfs_file);
  5580. fastrpc_file_put(fl);
  5581. file->private_data = NULL;
  5582. return 0;
  5583. }
  5584. static ssize_t fastrpc_debugfs_read(struct file *filp, char __user *buffer,
  5585. size_t count, loff_t *position)
  5586. {
  5587. struct fastrpc_apps *me = &gfa;
  5588. struct fastrpc_file *fl = filp->private_data;
  5589. struct hlist_node *n;
  5590. struct fastrpc_buf *buf = NULL;
  5591. struct fastrpc_mmap *map = NULL;
  5592. struct fastrpc_mmap *gmaps = NULL;
  5593. struct smq_invoke_ctx *ictx = NULL;
  5594. struct fastrpc_channel_ctx *chan = NULL;
  5595. unsigned int len = 0;
  5596. int i, j, sess_used = 0, ret = 0;
  5597. char *fileinfo = NULL;
  5598. char single_line[] = "----------------";
  5599. char title[] = "=========================";
  5600. unsigned long irq_flags = 0;
  5601. fileinfo = kzalloc(DEBUGFS_SIZE, GFP_KERNEL);
  5602. if (!fileinfo) {
  5603. ret = -ENOMEM;
  5604. goto bail;
  5605. }
  5606. if (fl == NULL) {
  5607. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5608. "\n%s %s %s\n", title, " CHANNEL INFO ", title);
  5609. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5610. "%-7s|%-10s|%-15s|%-9s|%-13s\n",
  5611. "subsys", "sesscount", "subsystemstate",
  5612. "ssrcount", "session_used");
  5613. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5614. "-%s%s%s%s-\n", single_line, single_line,
  5615. single_line, single_line);
  5616. for (i = 0; i < NUM_CHANNELS; i++) {
  5617. sess_used = 0;
  5618. chan = &gcinfo[i];
  5619. len += scnprintf(fileinfo + len,
  5620. DEBUGFS_SIZE - len, "%-7s", chan->subsys);
  5621. len += scnprintf(fileinfo + len,
  5622. DEBUGFS_SIZE - len, "|%-10u",
  5623. chan->sesscount);
  5624. len += scnprintf(fileinfo + len,
  5625. DEBUGFS_SIZE - len, "|%-15d",
  5626. chan->subsystemstate);
  5627. len += scnprintf(fileinfo + len,
  5628. DEBUGFS_SIZE - len, "|%-9u",
  5629. chan->ssrcount);
  5630. for (j = 0; j < chan->sesscount; j++)
  5631. sess_used += chan->session[j].used;
  5632. len += scnprintf(fileinfo + len,
  5633. DEBUGFS_SIZE - len, "|%-13d\n", sess_used);
  5634. }
  5635. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5636. "\n%s%s%s\n", "=============",
  5637. " CMA HEAP ", "==============");
  5638. len += scnprintf(fileinfo + len,
  5639. DEBUGFS_SIZE - len, "%-20s|%-20s\n", "addr", "size");
  5640. len += scnprintf(fileinfo + len,
  5641. DEBUGFS_SIZE - len, "--%s%s---\n",
  5642. single_line, single_line);
  5643. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5644. "\n==========%s %s %s===========\n",
  5645. title, " GMAPS ", title);
  5646. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5647. "%-20s|%-20s|%-20s|%-20s\n",
  5648. "fd", "phys", "size", "va");
  5649. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5650. "%s%s%s%s%s\n", single_line, single_line,
  5651. single_line, single_line, single_line);
  5652. spin_lock_irqsave(&me->hlock, irq_flags);
  5653. hlist_for_each_entry_safe(gmaps, n, &me->maps, hn) {
  5654. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5655. "%-20d|0x%-18llX|0x%-18X|0x%-20lX\n\n",
  5656. gmaps->fd, gmaps->phys,
  5657. (uint32_t)gmaps->size,
  5658. gmaps->va);
  5659. }
  5660. spin_unlock_irqrestore(&me->hlock, irq_flags);
  5661. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5662. "%-20s|%-20s|%-20s|%-20s\n",
  5663. "len", "refs", "raddr", "flags");
  5664. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5665. "%s%s%s%s%s\n", single_line, single_line,
  5666. single_line, single_line, single_line);
  5667. spin_lock_irqsave(&me->hlock, irq_flags);
  5668. hlist_for_each_entry_safe(gmaps, n, &me->maps, hn) {
  5669. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5670. "0x%-18X|%-20d|%-20lu|%-20u\n",
  5671. (uint32_t)gmaps->len, gmaps->refs,
  5672. gmaps->raddr, gmaps->flags);
  5673. }
  5674. spin_unlock_irqrestore(&me->hlock, irq_flags);
  5675. } else {
  5676. ret = fastrpc_file_get(fl);
  5677. if (ret) {
  5678. ADSPRPC_ERR("Failed to get user process reference for fl (%pK)\n", fl);
  5679. goto bail;
  5680. }
  5681. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5682. "\n%s %13s %d\n", "cid", ":", fl->cid);
  5683. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5684. "%s %12s %d\n", "tgid", ":", fl->tgid);
  5685. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5686. "%s %14s %d\n", "tgid_frpc", ":", fl->tgid_frpc);
  5687. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5688. "%s %7s %d\n", "sessionid", ":", fl->sessionid);
  5689. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5690. "%s %8s %u\n", "ssrcount", ":", fl->ssrcount);
  5691. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5692. "%s %14s %d\n", "pd", ":", fl->pd);
  5693. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5694. "%s %9s %s\n", "servloc_name", ":", fl->servloc_name);
  5695. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5696. "%s %6s %d\n", "file_close", ":", fl->file_close);
  5697. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5698. "%s %9s %d\n", "profile", ":", fl->profile);
  5699. if (fl->sctx) {
  5700. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5701. "%s %3s %d\n", "smmu.coherent", ":",
  5702. fl->sctx->smmu.coherent);
  5703. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5704. "%s %4s %d\n", "smmu.enabled", ":",
  5705. fl->sctx->smmu.enabled);
  5706. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5707. "%s %9s %d\n", "smmu.cb", ":", fl->sctx->smmu.cb);
  5708. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5709. "%s %5s %d\n", "smmu.secure", ":",
  5710. fl->sctx->smmu.secure);
  5711. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5712. "%s %5s %d\n", "smmu.faults", ":",
  5713. fl->sctx->smmu.faults);
  5714. }
  5715. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5716. "\n=======%s %s %s======\n", title,
  5717. " LIST OF MAPS ", title);
  5718. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5719. "%-20s|%-20s|%-20s|%-20s\n", "va", "phys", "size", "flags");
  5720. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5721. "%s%s%s%s%s\n",
  5722. single_line, single_line, single_line,
  5723. single_line, single_line);
  5724. mutex_lock(&fl->map_mutex);
  5725. hlist_for_each_entry_safe(map, n, &fl->maps, hn) {
  5726. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5727. "0x%-20lX|0x%-20llX|0x%-20zu|0x%-17llX\n\n",
  5728. map->va, map->phys,
  5729. map->size, map->flags);
  5730. }
  5731. mutex_unlock(&fl->map_mutex);
  5732. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5733. "%-20s|%-20s|%-20s\n",
  5734. "len", "refs",
  5735. "raddr");
  5736. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5737. "%s%s%s%s%s\n",
  5738. single_line, single_line, single_line,
  5739. single_line, single_line);
  5740. mutex_lock(&fl->map_mutex);
  5741. hlist_for_each_entry_safe(map, n, &fl->maps, hn) {
  5742. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5743. "%-20zu|%-20d|0x%-20lX\n\n",
  5744. map->len, map->refs, map->raddr);
  5745. }
  5746. mutex_unlock(&fl->map_mutex);
  5747. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5748. "%-20s|%-20s\n", "secure", "attr");
  5749. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5750. "%s%s%s%s%s\n",
  5751. single_line, single_line, single_line,
  5752. single_line, single_line);
  5753. mutex_lock(&fl->map_mutex);
  5754. hlist_for_each_entry_safe(map, n, &fl->maps, hn) {
  5755. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5756. "%-20d|0x%-20lX\n\n",
  5757. map->secure, map->attr);
  5758. }
  5759. mutex_unlock(&fl->map_mutex);
  5760. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5761. "\n======%s %s %s======\n", title,
  5762. " LIST OF BUFS ", title);
  5763. spin_lock(&fl->hlock);
  5764. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5765. "%-19s|%-19s|%-19s|%-19s\n",
  5766. "virt", "phys", "size", "flags");
  5767. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5768. "%s%s%s%s%s\n", single_line, single_line,
  5769. single_line, single_line, single_line);
  5770. hlist_for_each_entry_safe(buf, n, &fl->cached_bufs, hn) {
  5771. len += scnprintf(fileinfo + len,
  5772. DEBUGFS_SIZE - len,
  5773. "0x%-17p|0x%-17llX|%-19zu|0x%-17llX\n",
  5774. buf->virt, (uint64_t)buf->phys, buf->size, buf->flags);
  5775. }
  5776. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5777. "\n======%s %s %s======\n", title,
  5778. " LIST OF REMOTE BUFS ", title);
  5779. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5780. "%-19s|%-19s|%-19s|%-19s\n",
  5781. "virt", "phys", "size", "flags");
  5782. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5783. "%s%s%s%s%s\n", single_line, single_line,
  5784. single_line, single_line, single_line);
  5785. hlist_for_each_entry_safe(buf, n, &fl->remote_bufs, hn_rem) {
  5786. len += scnprintf(fileinfo + len,
  5787. DEBUGFS_SIZE - len,
  5788. "0x%-17p|0x%-17llX|%-19zu|0x%-17llX\n",
  5789. buf->virt, (uint64_t)buf->phys, buf->size, buf->flags);
  5790. }
  5791. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5792. "\n%s %s %s\n", title,
  5793. " LIST OF PENDING SMQCONTEXTS ", title);
  5794. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5795. "%-20s|%-10s|%-10s|%-10s|%-20s\n",
  5796. "sc", "pid", "tgid", "used", "ctxid");
  5797. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5798. "%s%s%s%s%s\n", single_line, single_line,
  5799. single_line, single_line, single_line);
  5800. hlist_for_each_entry_safe(ictx, n, &fl->clst.pending, hn) {
  5801. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5802. "0x%-18X|%-10d|%-10d|%-10zu|0x%-20llX\n\n",
  5803. ictx->sc, ictx->pid, ictx->tgid,
  5804. ictx->used, ictx->ctxid);
  5805. }
  5806. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5807. "\n%s %s %s\n", title,
  5808. " LIST OF INTERRUPTED SMQCONTEXTS ", title);
  5809. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5810. "%-20s|%-10s|%-10s|%-10s|%-20s\n",
  5811. "sc", "pid", "tgid", "used", "ctxid");
  5812. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5813. "%s%s%s%s%s\n", single_line, single_line,
  5814. single_line, single_line, single_line);
  5815. hlist_for_each_entry_safe(ictx, n, &fl->clst.interrupted, hn) {
  5816. len += scnprintf(fileinfo + len, DEBUGFS_SIZE - len,
  5817. "%-20u|%-20d|%-20d|%-20zu|0x%-20llX\n\n",
  5818. ictx->sc, ictx->pid, ictx->tgid,
  5819. ictx->used, ictx->ctxid);
  5820. }
  5821. spin_unlock(&fl->hlock);
  5822. fastrpc_file_put(fl);
  5823. }
  5824. if (len > DEBUGFS_SIZE)
  5825. len = DEBUGFS_SIZE;
  5826. ret = simple_read_from_buffer(buffer, count, position, fileinfo, len);
  5827. kfree(fileinfo);
  5828. bail:
  5829. return ret;
  5830. }
  5831. static const struct file_operations debugfs_fops = {
  5832. .open = simple_open,
  5833. .read = fastrpc_debugfs_read,
  5834. };
  5835. static int fastrpc_channel_open(struct fastrpc_file *fl, uint32_t flags)
  5836. {
  5837. struct fastrpc_apps *me = &gfa;
  5838. int cid = -1, err = 0;
  5839. VERIFY(err, fl && fl->sctx && fl->cid >= 0 && fl->cid < NUM_CHANNELS);
  5840. if (err) {
  5841. ADSPRPC_ERR("kernel session not initialized yet for %s\n",
  5842. current->comm);
  5843. err = -EBADR;
  5844. return err;
  5845. }
  5846. cid = fl->cid;
  5847. err = fastrpc_wait_for_transport_interrupt(cid, flags);
  5848. if (err)
  5849. goto bail;
  5850. err = verify_transport_device(cid, fl->tvm_remote_domain);
  5851. if (err)
  5852. goto bail;
  5853. mutex_lock(&me->channel[cid].smd_mutex);
  5854. if (me->channel[cid].ssrcount !=
  5855. me->channel[cid].prevssrcount) {
  5856. if (me->channel[cid].subsystemstate != SUBSYSTEM_UP) {
  5857. err = -ECONNREFUSED;
  5858. mutex_unlock(&me->channel[cid].smd_mutex);
  5859. goto bail;
  5860. }
  5861. }
  5862. fl->ssrcount = me->channel[cid].ssrcount;
  5863. if (cid == ADSP_DOMAIN_ID && me->channel[cid].ssrcount !=
  5864. me->channel[cid].prevssrcount) {
  5865. mutex_unlock(&me->channel[cid].smd_mutex);
  5866. mutex_lock(&fl->map_mutex);
  5867. err = fastrpc_dsp_restart_handler(fl, 1, true);
  5868. mutex_unlock(&fl->map_mutex);
  5869. if (err)
  5870. ADSPRPC_WARN(
  5871. "failed to unmap remote heap for %s (err %d)\n",
  5872. me->channel[cid].subsys, err);
  5873. mutex_lock(&me->channel[cid].smd_mutex);
  5874. me->channel[cid].prevssrcount =
  5875. me->channel[cid].ssrcount;
  5876. }
  5877. me->channel[cid].in_hib = 0;
  5878. mutex_unlock(&me->channel[cid].smd_mutex);
  5879. bail:
  5880. return err;
  5881. }
  5882. static inline void fastrpc_register_wakeup_source(struct device *dev,
  5883. const char *client_name, struct wakeup_source **device_wake_source)
  5884. {
  5885. struct wakeup_source *wake_source = NULL;
  5886. wake_source = wakeup_source_register(dev, client_name);
  5887. if (IS_ERR_OR_NULL(wake_source)) {
  5888. ADSPRPC_ERR(
  5889. "wakeup_source_register failed for dev %s, client %s with err %ld\n",
  5890. dev_name(dev), client_name, PTR_ERR(wake_source));
  5891. return;
  5892. }
  5893. *device_wake_source = wake_source;
  5894. }
  5895. static int fastrpc_device_open(struct inode *inode, struct file *filp)
  5896. {
  5897. int err = 0;
  5898. struct fastrpc_file *fl = NULL;
  5899. struct fastrpc_apps *me = &gfa;
  5900. unsigned long irq_flags = 0;
  5901. /*
  5902. * Indicates the device node opened
  5903. * MINOR_NUM_DEV or MINOR_NUM_SECURE_DEV
  5904. */
  5905. int dev_minor = MINOR(inode->i_rdev);
  5906. VERIFY(err, ((dev_minor == MINOR_NUM_DEV) ||
  5907. (dev_minor == MINOR_NUM_SECURE_DEV)));
  5908. if (err) {
  5909. ADSPRPC_ERR("Invalid dev minor num %d\n",
  5910. dev_minor);
  5911. return err;
  5912. }
  5913. VERIFY(err, NULL != (fl = kzalloc(sizeof(*fl), GFP_KERNEL)));
  5914. if (err) {
  5915. err = -ENOMEM;
  5916. return err;
  5917. }
  5918. context_list_ctor(&fl->clst);
  5919. spin_lock_init(&fl->hlock);
  5920. spin_lock_init(&fl->aqlock);
  5921. spin_lock_init(&fl->proc_state_notif.nqlock);
  5922. INIT_HLIST_HEAD(&fl->maps);
  5923. INIT_HLIST_HEAD(&fl->cached_bufs);
  5924. fl->num_cached_buf = 0;
  5925. INIT_HLIST_HEAD(&fl->remote_bufs);
  5926. init_waitqueue_head(&fl->async_wait_queue);
  5927. init_waitqueue_head(&fl->proc_state_notif.notif_wait_queue);
  5928. INIT_HLIST_NODE(&fl->hn);
  5929. fl->sessionid = 0;
  5930. fl->tgid_open = current->tgid;
  5931. /* PD type is not known, when device is opened */
  5932. fl->pd_type = DEFAULT_UNUSED;
  5933. fl->apps = me;
  5934. fl->mode = FASTRPC_MODE_SERIAL;
  5935. fl->cid = -1;
  5936. fl->tgid_frpc = -1;
  5937. fl->tvm_remote_domain = -1;
  5938. fl->dev_minor = dev_minor;
  5939. fl->init_mem = NULL;
  5940. fl->qos_request = 0;
  5941. fl->dsp_proc_init = 0;
  5942. fl->dsp_process_state = PROCESS_CREATE_DEFAULT;
  5943. fl->is_unsigned_pd = false;
  5944. fl->is_compat = false;
  5945. fl->exit_notif = false;
  5946. fl->exit_async = false;
  5947. fl->multi_session_support = false;
  5948. fl->set_session_info = false;
  5949. init_completion(&fl->dma_invoke);
  5950. fl->file_close = FASTRPC_PROCESS_DEFAULT_STATE;
  5951. filp->private_data = fl;
  5952. fl->sharedbuf_info.buf_fd = -1;
  5953. mutex_init(&fl->internal_map_mutex);
  5954. mutex_init(&fl->map_mutex);
  5955. spin_lock_irqsave(&me->hlock, irq_flags);
  5956. hlist_add_head(&fl->hn, &me->drivers);
  5957. spin_unlock_irqrestore(&me->hlock, irq_flags);
  5958. kref_init(&fl->refcount);
  5959. if (me->lowest_capacity_core_count)
  5960. fl->dev_pm_qos_req = kzalloc((me->lowest_capacity_core_count) *
  5961. sizeof(struct dev_pm_qos_request),
  5962. GFP_KERNEL);
  5963. spin_lock_init(&fl->dspsignals_lock);
  5964. mutex_init(&fl->signal_create_mutex);
  5965. init_completion(&fl->shutdown);
  5966. return 0;
  5967. }
  5968. static int fastrpc_get_process_gids(struct gid_list *gidlist)
  5969. {
  5970. struct group_info *group_info = get_current_groups();
  5971. int i = 0, err = 0, num_gids = group_info->ngroups + 1;
  5972. unsigned int *gids = NULL;
  5973. gids = kcalloc(num_gids, sizeof(unsigned int), GFP_KERNEL);
  5974. if (!gids) {
  5975. err = -ENOMEM;
  5976. goto bail;
  5977. }
  5978. /* Get the real GID */
  5979. gids[0] = __kgid_val(current_gid());
  5980. /* Get the supplemental GIDs */
  5981. for (i = 1; i < num_gids; i++)
  5982. gids[i] = __kgid_val(group_info->gid[i - 1]);
  5983. sort(gids, num_gids, sizeof(*gids), uint_cmp_func, NULL);
  5984. gidlist->gids = gids;
  5985. gidlist->gidcount = num_gids;
  5986. bail:
  5987. if (err)
  5988. kfree(gids);
  5989. return err;
  5990. }
  5991. // Generate a unique process ID to DSP process
  5992. static int get_unique_hlos_process_id(void)
  5993. {
  5994. int tgid_frpc = -1, tgid_index = 1;
  5995. struct fastrpc_apps *me = &gfa;
  5996. unsigned long irq_flags = 0;
  5997. spin_lock_irqsave(&me->hlock, irq_flags);
  5998. for (tgid_index = 1; tgid_index < MAX_FRPC_TGID; tgid_index++) {
  5999. if (!frpc_tgid_usage_array[tgid_index]) {
  6000. tgid_frpc = tgid_index;
  6001. /* Set the tgid usage to false */
  6002. frpc_tgid_usage_array[tgid_index] = true;
  6003. break;
  6004. }
  6005. }
  6006. spin_unlock_irqrestore(&me->hlock, irq_flags);
  6007. return tgid_frpc;
  6008. }
  6009. static int fastrpc_set_process_info(struct fastrpc_file *fl, uint32_t cid)
  6010. {
  6011. int err = 0, buf_size = 0;
  6012. char strpid[PID_SIZE];
  6013. char cur_comm[TASK_COMM_LEN];
  6014. memcpy(cur_comm, current->comm, TASK_COMM_LEN);
  6015. cur_comm[TASK_COMM_LEN-1] = '\0';
  6016. fl->tgid = current->tgid;
  6017. fl->tgid_frpc = get_unique_hlos_process_id();
  6018. VERIFY(err, fl->tgid_frpc != -1);
  6019. if (err) {
  6020. ADSPRPC_ERR("too many fastrpc clients, max %u allowed\n", MAX_FRPC_TGID);
  6021. err = -EUSERS;
  6022. goto bail;
  6023. }
  6024. ADSPRPC_INFO("HLOS pid %d, cid %d is mapped to unique sessions pid %d",
  6025. fl->tgid, cid, fl->tgid_frpc);
  6026. /*
  6027. * Third-party apps don't have permission to open the fastrpc device, so
  6028. * it is opened on their behalf by DSP HAL. This is detected by
  6029. * comparing current PID with the one stored during device open.
  6030. */
  6031. if (current->tgid != fl->tgid_open)
  6032. fl->untrusted_process = true;
  6033. snprintf(strpid, PID_SIZE, "%d", current->pid);
  6034. if (debugfs_root) {
  6035. VERIFY(err, VALID_FASTRPC_CID(cid));
  6036. if (err) {
  6037. err = -ECHRNG;
  6038. goto bail;
  6039. }
  6040. buf_size = strlen(cur_comm) + strlen("_") + strlen(strpid)
  6041. + strlen("_") + strlen(__TOSTR__(NUM_CHANNELS)) + 1;
  6042. spin_lock(&fl->hlock);
  6043. if (fl->debug_buf_alloced_attempted) {
  6044. spin_unlock(&fl->hlock);
  6045. return err;
  6046. }
  6047. fl->debug_buf_alloced_attempted = 1;
  6048. spin_unlock(&fl->hlock);
  6049. fl->debug_buf = kzalloc(buf_size, GFP_KERNEL);
  6050. if (!fl->debug_buf) {
  6051. err = -ENOMEM;
  6052. return err;
  6053. }
  6054. /* Use HLOS PID, unique fastrpc PID, CID in debugfs filename,
  6055. * for better ability to debug
  6056. */
  6057. snprintf(fl->debug_buf, buf_size, "%.10s%s%d%s%d%s%d",
  6058. cur_comm, "_", current->pid, "_", fl->tgid_frpc, "_", cid);
  6059. fl->debugfs_file = debugfs_create_file(fl->debug_buf, 0644,
  6060. debugfs_root, fl, &debugfs_fops);
  6061. if (IS_ERR_OR_NULL(fl->debugfs_file)) {
  6062. pr_warn("Error: %s: %s: failed to create debugfs file %s\n",
  6063. cur_comm, __func__, fl->debug_buf);
  6064. fl->debugfs_file = NULL;
  6065. }
  6066. kfree(fl->debug_buf);
  6067. fl->debug_buf = NULL;
  6068. }
  6069. bail:
  6070. return err;
  6071. }
  6072. int fastrpc_get_info(struct fastrpc_file *fl, uint32_t *info)
  6073. {
  6074. int err = 0;
  6075. uint32_t cid = *info;
  6076. struct fastrpc_apps *me = &gfa;
  6077. VERIFY(err, fl != NULL);
  6078. if (err) {
  6079. err = -EBADF;
  6080. goto bail;
  6081. }
  6082. spin_lock(&fl->hlock);
  6083. if (fl->set_session_info) {
  6084. spin_unlock(&fl->hlock);
  6085. ADSPRPC_ERR("Set session info invoked multiple times\n");
  6086. err = -EBADR;
  6087. goto bail;
  6088. }
  6089. // Set set_session_info to true
  6090. fl->set_session_info = true;
  6091. spin_unlock(&fl->hlock);
  6092. VERIFY(err, VALID_FASTRPC_CID(cid));
  6093. if (err) {
  6094. err = -ECHRNG;
  6095. goto bail;
  6096. }
  6097. fastrpc_get_process_gids(&fl->gidlist);
  6098. err = fastrpc_set_process_info(fl, cid);
  6099. if (err)
  6100. goto bail;
  6101. if (fl->cid == -1) {
  6102. struct fastrpc_channel_ctx *chan = NULL;
  6103. chan = &me->channel[cid];
  6104. /* Check to see if the device node is non-secure */
  6105. if (fl->dev_minor == MINOR_NUM_DEV) {
  6106. /*
  6107. * If an app is trying to offload to a secure remote
  6108. * channel by opening the non-secure device node, allow
  6109. * the access if the subsystem supports unsigned
  6110. * offload. Untrusted apps will be restricted from
  6111. * offloading to signed PD using DSP HAL.
  6112. */
  6113. if (chan->secure == SECURE_CHANNEL
  6114. && !chan->unsigned_support) {
  6115. ADSPRPC_ERR(
  6116. "cannot use domain %d with non-secure device\n",
  6117. cid);
  6118. err = -EACCES;
  6119. goto bail;
  6120. }
  6121. }
  6122. fl->cid = cid;
  6123. mutex_lock(&fl->apps->channel[cid].smd_mutex);
  6124. fl->ssrcount = fl->apps->channel[cid].ssrcount;
  6125. err = fastrpc_session_alloc_locked(&fl->apps->channel[cid],
  6126. 0, fl->sharedcb, fl->pd_type, &fl->sctx);
  6127. mutex_unlock(&fl->apps->channel[cid].smd_mutex);
  6128. if (err == -EUSERS) {
  6129. ADSPRPC_WARN(
  6130. "max concurrent sessions limit (%d) already reached on %s err %d\n",
  6131. chan->sesscount, chan->subsys, err);
  6132. }
  6133. if (err)
  6134. goto bail;
  6135. }
  6136. VERIFY(err, fl->sctx != NULL);
  6137. if (err) {
  6138. err = -EBADR;
  6139. goto bail;
  6140. }
  6141. *info = (fl->sctx->smmu.enabled ? 1 : 0);
  6142. bail:
  6143. return err;
  6144. }
  6145. static int fastrpc_manage_poll_mode(struct fastrpc_file *fl, uint32_t enable, uint32_t timeout)
  6146. {
  6147. int err = 0;
  6148. const unsigned int MAX_POLL_TIMEOUT_US = 10000;
  6149. if ((fl->cid != CDSP_DOMAIN_ID) || (fl->proc_flags != FASTRPC_INIT_CREATE)) {
  6150. err = -EPERM;
  6151. ADSPRPC_ERR("flags %d, cid %d, poll mode allowed only for dynamic CDSP process\n",
  6152. fl->proc_flags, fl->cid);
  6153. goto bail;
  6154. }
  6155. if (timeout > MAX_POLL_TIMEOUT_US) {
  6156. err = -EBADMSG;
  6157. ADSPRPC_ERR("poll timeout %u is greater than max allowed value %u\n",
  6158. timeout, MAX_POLL_TIMEOUT_US);
  6159. goto bail;
  6160. }
  6161. spin_lock(&fl->hlock);
  6162. if (enable) {
  6163. fl->poll_mode = true;
  6164. fl->poll_timeout = timeout;
  6165. } else {
  6166. fl->poll_mode = false;
  6167. fl->poll_timeout = 0;
  6168. }
  6169. spin_unlock(&fl->hlock);
  6170. ADSPRPC_INFO("updated poll mode to %d, timeout %u\n", enable, timeout);
  6171. bail:
  6172. return err;
  6173. }
  6174. int fastrpc_internal_control(struct fastrpc_file *fl,
  6175. struct fastrpc_ioctl_control *cp)
  6176. {
  6177. int err = 0;
  6178. unsigned int latency;
  6179. struct fastrpc_apps *me = &gfa;
  6180. unsigned int cpu;
  6181. unsigned long flags = 0;
  6182. VERIFY(err, !IS_ERR_OR_NULL(fl) && !IS_ERR_OR_NULL(fl->apps));
  6183. if (err) {
  6184. err = -EBADF;
  6185. goto bail;
  6186. }
  6187. VERIFY(err, !IS_ERR_OR_NULL(cp));
  6188. if (err) {
  6189. err = -EINVAL;
  6190. goto bail;
  6191. }
  6192. switch (cp->req) {
  6193. case FASTRPC_CONTROL_LATENCY:
  6194. latency = cp->lp.enable == FASTRPC_LATENCY_CTRL_ENB ?
  6195. fl->apps->latency : PM_QOS_RESUME_LATENCY_DEFAULT_VALUE;
  6196. VERIFY(err, latency != 0);
  6197. if (err) {
  6198. err = -EINVAL;
  6199. goto bail;
  6200. }
  6201. VERIFY(err, (me->lowest_capacity_core_count && fl->dev_pm_qos_req));
  6202. if (err) {
  6203. ADSPRPC_INFO("Skipping PM QoS latency voting, core count: %u\n",
  6204. me->lowest_capacity_core_count);
  6205. err = -EINVAL;
  6206. goto bail;
  6207. }
  6208. /*
  6209. * Add voting request for all possible cores corresponding to cluster
  6210. * id 0. If DT property 'qcom,single-core-latency-vote' is enabled
  6211. * then add voting request for only one core of cluster id 0.
  6212. */
  6213. for (cpu = 0; cpu < me->lowest_capacity_core_count; cpu++) {
  6214. if (!fl->qos_request) {
  6215. err = dev_pm_qos_add_request(
  6216. get_cpu_device(cpu),
  6217. &fl->dev_pm_qos_req[cpu],
  6218. DEV_PM_QOS_RESUME_LATENCY,
  6219. latency);
  6220. } else {
  6221. err = dev_pm_qos_update_request(
  6222. &fl->dev_pm_qos_req[cpu],
  6223. latency);
  6224. }
  6225. /* PM QoS request APIs return 0 or 1 on success */
  6226. if (err < 0) {
  6227. ADSPRPC_WARN("QoS with lat %u failed for CPU %d, err %d, req %d\n",
  6228. latency, cpu, err, fl->qos_request);
  6229. break;
  6230. }
  6231. }
  6232. if (err >= 0) {
  6233. fl->qos_request = 1;
  6234. err = 0;
  6235. }
  6236. /* Ensure CPU feature map updated to DSP for early WakeUp */
  6237. fastrpc_send_cpuinfo_to_dsp(fl);
  6238. break;
  6239. case FASTRPC_CONTROL_KALLOC:
  6240. cp->kalloc.kalloc_support = 1;
  6241. break;
  6242. case FASTRPC_CONTROL_WAKELOCK:
  6243. if (fl->dev_minor != MINOR_NUM_SECURE_DEV) {
  6244. ADSPRPC_ERR(
  6245. "PM voting not allowed for non-secure device node %d\n",
  6246. fl->dev_minor);
  6247. err = -EPERM;
  6248. goto bail;
  6249. }
  6250. fl->wake_enable = cp->wp.enable;
  6251. break;
  6252. case FASTRPC_CONTROL_PM:
  6253. if (!fl->wake_enable) {
  6254. /* Kernel PM voting not requested by this application */
  6255. err = -EACCES;
  6256. goto bail;
  6257. }
  6258. if (cp->pm.timeout > MAX_PM_TIMEOUT_MS)
  6259. fl->ws_timeout = MAX_PM_TIMEOUT_MS;
  6260. else
  6261. fl->ws_timeout = cp->pm.timeout;
  6262. VERIFY(err, VALID_FASTRPC_CID(fl->cid));
  6263. if (err) {
  6264. err = -ECHRNG;
  6265. goto bail;
  6266. }
  6267. fastrpc_pm_awake(fl, gcinfo[fl->cid].secure);
  6268. break;
  6269. case FASTRPC_CONTROL_DSPPROCESS_CLEAN:
  6270. (void)fastrpc_release_current_dsp_process(fl);
  6271. fastrpc_queue_pd_status(fl, fl->cid, FASTRPC_USER_PD_FORCE_KILL, fl->sessionid);
  6272. break;
  6273. case FASTRPC_CONTROL_RPC_POLL:
  6274. err = fastrpc_manage_poll_mode(fl, cp->lp.enable, cp->lp.latency);
  6275. if (err)
  6276. goto bail;
  6277. break;
  6278. case FASTRPC_CONTROL_SMMU:
  6279. fl->sharedcb = cp->smmu.sharedcb;
  6280. break;
  6281. case FASTRPC_CONTROL_ASYNC_WAKE:
  6282. fl->exit_async = true;
  6283. spin_lock_irqsave(&fl->aqlock, flags);
  6284. atomic_add(1, &fl->async_queue_job_count);
  6285. wake_up_interruptible(&fl->async_wait_queue);
  6286. spin_unlock_irqrestore(&fl->aqlock, flags);
  6287. break;
  6288. case FASTRPC_CONTROL_NOTIF_WAKE:
  6289. fl->exit_notif = true;
  6290. spin_lock_irqsave(&fl->proc_state_notif.nqlock, flags);
  6291. atomic_add(1, &fl->proc_state_notif.notif_queue_count);
  6292. wake_up_interruptible(&fl->proc_state_notif.notif_wait_queue);
  6293. spin_unlock_irqrestore(&fl->proc_state_notif.nqlock, flags);
  6294. break;
  6295. default:
  6296. err = -EBADRQC;
  6297. break;
  6298. }
  6299. bail:
  6300. return err;
  6301. }
  6302. /* Wait for PD to be up before audio or sensors daemons try connecting */
  6303. static int fastrpc_check_pd_status(struct fastrpc_file *fl, char *sloc_name)
  6304. {
  6305. int err = 0, session = -1, cid = -1;
  6306. struct fastrpc_apps *me = &gfa;
  6307. if (fl->servloc_name && sloc_name
  6308. && !strcmp(fl->servloc_name, sloc_name)) {
  6309. err = fastrpc_get_spd_session(sloc_name, &session, &cid);
  6310. if (err || cid != fl->cid)
  6311. goto bail;
  6312. /*
  6313. * Audio PD attachment is not allowed after PDR.
  6314. * Allow kill message after PDR to clean DSP guestOS resources.
  6315. */
  6316. if ((!strcmp(fl->servloc_name,
  6317. AUDIO_PDR_SERVICE_LOCATION_CLIENT_NAME)) &&
  6318. (me->channel[cid].spd[session].pdrcount !=
  6319. me->channel[cid].spd[session].prevpdrcount) &&
  6320. !fl->dsp_proc_init) {
  6321. err = -ECONNRESET;
  6322. goto bail;
  6323. }
  6324. #if IS_ENABLED(CONFIG_QCOM_PDR_HELPERS)
  6325. if (!strcmp(fl->servloc_name,
  6326. AUDIO_PDR_SERVICE_LOCATION_CLIENT_NAME) || !strcmp(fl->servloc_name,
  6327. SENSORS_PDR_ADSP_SERVICE_LOCATION_CLIENT_NAME) ||
  6328. !strcmp(fl->servloc_name,
  6329. SENSORS_PDR_SLPI_SERVICE_LOCATION_CLIENT_NAME)) {
  6330. err = wait_event_interruptible(
  6331. me->channel[cid].spd[session].wait_for_pdup,
  6332. atomic_read(&me->channel[cid].spd[session].ispdup));
  6333. goto bail;
  6334. }
  6335. #else
  6336. (void)me;
  6337. #endif
  6338. }
  6339. bail:
  6340. return err;
  6341. }
  6342. int fastrpc_setmode(unsigned long ioctl_param,
  6343. struct fastrpc_file *fl)
  6344. {
  6345. int err = 0;
  6346. switch ((uint32_t)ioctl_param) {
  6347. case FASTRPC_MODE_PARALLEL:
  6348. case FASTRPC_MODE_SERIAL:
  6349. fl->mode = (uint32_t)ioctl_param;
  6350. break;
  6351. case FASTRPC_MODE_PROFILE:
  6352. fl->profile = (uint32_t)ioctl_param;
  6353. break;
  6354. case FASTRPC_MODE_SESSION:
  6355. if (!fl->multi_session_support)
  6356. fl->sessionid = 1;
  6357. break;
  6358. default:
  6359. err = -ENOTTY;
  6360. break;
  6361. }
  6362. return err;
  6363. }
  6364. int fastrpc_control(struct fastrpc_ioctl_control *cp,
  6365. void *param, struct fastrpc_file *fl)
  6366. {
  6367. int err = 0;
  6368. K_COPY_FROM_USER(err, 0, cp, param,
  6369. sizeof(*cp));
  6370. if (err) {
  6371. err = -EFAULT;
  6372. goto bail;
  6373. }
  6374. VERIFY(err, 0 == (err = fastrpc_internal_control(fl, cp)));
  6375. if (err)
  6376. goto bail;
  6377. if (cp->req == FASTRPC_CONTROL_KALLOC) {
  6378. K_COPY_TO_USER(err, 0, param, cp, sizeof(*cp));
  6379. if (err) {
  6380. err = -EFAULT;
  6381. goto bail;
  6382. }
  6383. }
  6384. bail:
  6385. return err;
  6386. }
  6387. static int fastrpc_get_dsp_info(
  6388. struct fastrpc_ioctl_capability *cap,
  6389. void *param, struct fastrpc_file *fl)
  6390. {
  6391. int err = 0;
  6392. K_COPY_FROM_USER(err, 0, cap, param,
  6393. sizeof(struct fastrpc_ioctl_capability));
  6394. VERIFY(err, cap->domain < NUM_CHANNELS);
  6395. if (err) {
  6396. err = -ECHRNG;
  6397. goto bail;
  6398. }
  6399. cap->capability = 0;
  6400. err = fastrpc_get_info_from_kernel(cap, fl);
  6401. if (err)
  6402. goto bail;
  6403. K_COPY_TO_USER(err, 0, &((struct fastrpc_ioctl_capability *)
  6404. param)->capability, &cap->capability, sizeof(cap->capability));
  6405. bail:
  6406. return err;
  6407. }
  6408. int fastrpc_dspsignal_signal(struct fastrpc_file *fl,
  6409. struct fastrpc_ioctl_dspsignal_signal *sig)
  6410. {
  6411. int err = 0, cid = -1;
  6412. struct fastrpc_channel_ctx *channel_ctx = NULL;
  6413. uint64_t msg = 0;
  6414. // We don't check if the signal has even been allocated since we don't
  6415. // track outgoing signals in the driver. The userspace library does a
  6416. // basic sanity check and any security validation needs to be done by
  6417. // the recipient.
  6418. DSPSIGNAL_VERBOSE("Send signal PID %u, unique fastrpc pid %u signal %u\n",
  6419. (unsigned int)fl->tgid, (unsigned int)fl->tgid_frpc,
  6420. (unsigned int)sig->signal_id);
  6421. VERIFY(err, sig->signal_id < DSPSIGNAL_NUM_SIGNALS);
  6422. if (err) {
  6423. ADSPRPC_ERR("Sending bad signal %u for PID %u",
  6424. sig->signal_id, (unsigned int)fl->tgid);
  6425. err = -EBADR;
  6426. goto bail;
  6427. }
  6428. cid = fl->cid;
  6429. VERIFY(err, VALID_FASTRPC_CID(cid) && fl->sctx != NULL);
  6430. if (err) {
  6431. err = -EBADR;
  6432. goto bail;
  6433. }
  6434. channel_ctx = &fl->apps->channel[cid];
  6435. mutex_lock(&channel_ctx->smd_mutex);
  6436. if (fl->ssrcount != channel_ctx->ssrcount) {
  6437. err = -ECONNRESET;
  6438. mutex_unlock(&channel_ctx->smd_mutex);
  6439. goto bail;
  6440. }
  6441. /* Use unique fastrpc pid, to signal DSP process */
  6442. msg = (((uint64_t)fl->tgid_frpc) << 32) | ((uint64_t)sig->signal_id);
  6443. err = fastrpc_transport_send(cid, (void *)&msg, sizeof(msg), fl->tvm_remote_domain);
  6444. mutex_unlock(&channel_ctx->smd_mutex);
  6445. trace_fastrpc_dspsignal("signal", sig->signal_id, 0, 0);
  6446. bail:
  6447. return err;
  6448. }
  6449. int fastrpc_dspsignal_wait(struct fastrpc_file *fl,
  6450. struct fastrpc_ioctl_dspsignal_wait *wait)
  6451. {
  6452. int err = 0, cid = -1;
  6453. uint32_t timeout_usec = wait->timeout_usec;
  6454. unsigned long timeout = usecs_to_jiffies(wait->timeout_usec);
  6455. uint32_t signal_id = wait->signal_id;
  6456. struct fastrpc_dspsignal *s = NULL;
  6457. long ret = 0;
  6458. unsigned long irq_flags = 0;
  6459. DSPSIGNAL_VERBOSE("Wait for signal %u\n", signal_id);
  6460. VERIFY(err, signal_id < DSPSIGNAL_NUM_SIGNALS);
  6461. if (err) {
  6462. ADSPRPC_ERR("Waiting on bad signal %u", signal_id);
  6463. err = -EINVAL;
  6464. goto bail;
  6465. }
  6466. cid = fl->cid;
  6467. VERIFY(err, VALID_FASTRPC_CID(cid) && fl->sctx != NULL);
  6468. if (err) {
  6469. err = -EBADR;
  6470. goto bail;
  6471. }
  6472. spin_lock_irqsave(&fl->dspsignals_lock, irq_flags);
  6473. if (fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE] != NULL) {
  6474. struct fastrpc_dspsignal *group =
  6475. fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE];
  6476. s = &group[signal_id % DSPSIGNAL_GROUP_SIZE];
  6477. }
  6478. if ((s == NULL) || (s->state == DSPSIGNAL_STATE_UNUSED)) {
  6479. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6480. ADSPRPC_ERR("Unknown signal id %u\n", signal_id);
  6481. err = -ENOENT;
  6482. goto bail;
  6483. }
  6484. if (s->state != DSPSIGNAL_STATE_PENDING) {
  6485. if ((s->state == DSPSIGNAL_STATE_CANCELED) || (s->state == DSPSIGNAL_STATE_UNUSED))
  6486. err = -EINTR;
  6487. if (s->state == DSPSIGNAL_STATE_SIGNALED) {
  6488. /* Signal already received from DSP. Reset signal state and return */
  6489. s->state = DSPSIGNAL_STATE_PENDING;
  6490. reinit_completion(&s->comp);
  6491. }
  6492. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6493. DSPSIGNAL_VERBOSE("Signal %u in state %u, complete wait immediately",
  6494. signal_id, s->state);
  6495. goto bail;
  6496. }
  6497. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6498. trace_fastrpc_dspsignal("wait", signal_id, s->state, wait->timeout_usec);
  6499. if (timeout_usec != 0xffffffff)
  6500. ret = wait_for_completion_interruptible_timeout(&s->comp, timeout);
  6501. else
  6502. ret = wait_for_completion_interruptible(&s->comp);
  6503. trace_fastrpc_dspsignal("wakeup", signal_id, s->state, wait->timeout_usec);
  6504. if (timeout_usec != 0xffffffff && ret == 0) {
  6505. DSPSIGNAL_VERBOSE("Wait for signal %u timed out %ld us\n",
  6506. signal_id, timeout_usec);
  6507. err = -ETIMEDOUT;
  6508. goto bail;
  6509. } else if (ret < 0) {
  6510. ADSPRPC_ERR("Wait for signal %u failed %d\n", signal_id, (int)ret);
  6511. err = ret;
  6512. goto bail;
  6513. }
  6514. spin_lock_irqsave(&fl->dspsignals_lock, irq_flags);
  6515. if (s->state == DSPSIGNAL_STATE_SIGNALED) {
  6516. s->state = DSPSIGNAL_STATE_PENDING;
  6517. DSPSIGNAL_VERBOSE("Signal %u completed\n", signal_id);
  6518. } else if ((s->state == DSPSIGNAL_STATE_CANCELED) || (s->state == DSPSIGNAL_STATE_UNUSED)) {
  6519. DSPSIGNAL_VERBOSE("Signal %u cancelled or destroyed\n", signal_id);
  6520. err = -EINTR;
  6521. }
  6522. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6523. bail:
  6524. return err;
  6525. }
  6526. int fastrpc_dspsignal_create(struct fastrpc_file *fl,
  6527. struct fastrpc_ioctl_dspsignal_create *create)
  6528. {
  6529. int err = 0, cid = -1;
  6530. uint32_t signal_id = create->signal_id;
  6531. struct fastrpc_dspsignal *group, *sig;
  6532. unsigned long irq_flags = 0;
  6533. VERIFY(err, signal_id < DSPSIGNAL_NUM_SIGNALS);
  6534. if (err) {
  6535. err = -EINVAL;
  6536. goto bail;
  6537. }
  6538. cid = fl->cid;
  6539. VERIFY(err, VALID_FASTRPC_CID(cid) && fl->sctx != NULL);
  6540. if (err) {
  6541. err = -EBADR;
  6542. goto bail;
  6543. }
  6544. // Use a separate mutex for creating signals. This avoids holding on
  6545. // to a spinlock if we need to allocate a whole group of signals. The
  6546. // mutex ensures nobody else will allocate the same group.
  6547. mutex_lock(&fl->signal_create_mutex);
  6548. spin_lock_irqsave(&fl->dspsignals_lock, irq_flags);
  6549. group = fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE];
  6550. if (group == NULL) {
  6551. int i;
  6552. // Release the spinlock while we allocate a new group but take
  6553. // it back before taking the group into use. No other code
  6554. // allocates groups so the mutex is sufficient.
  6555. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6556. VERIFY(err, (group = kzalloc(DSPSIGNAL_GROUP_SIZE * sizeof(*group),
  6557. GFP_KERNEL)) != NULL);
  6558. if (err) {
  6559. ADSPRPC_ERR("Unable to allocate signal group\n");
  6560. err = -ENOMEM;
  6561. mutex_unlock(&fl->signal_create_mutex);
  6562. goto bail;
  6563. }
  6564. for (i = 0; i < DSPSIGNAL_GROUP_SIZE; i++) {
  6565. sig = &group[i];
  6566. init_completion(&sig->comp);
  6567. sig->state = DSPSIGNAL_STATE_UNUSED;
  6568. }
  6569. spin_lock_irqsave(&fl->dspsignals_lock, irq_flags);
  6570. fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE] = group;
  6571. }
  6572. sig = &group[signal_id % DSPSIGNAL_GROUP_SIZE];
  6573. if (sig->state != DSPSIGNAL_STATE_UNUSED) {
  6574. err = -EBUSY;
  6575. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6576. mutex_unlock(&fl->signal_create_mutex);
  6577. ADSPRPC_ERR("Attempting to create signal %u already in use (state %u)\n",
  6578. signal_id, sig->state);
  6579. goto bail;
  6580. }
  6581. sig->state = DSPSIGNAL_STATE_PENDING;
  6582. reinit_completion(&sig->comp);
  6583. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6584. mutex_unlock(&fl->signal_create_mutex);
  6585. DSPSIGNAL_VERBOSE("Signal %u created\n", signal_id);
  6586. bail:
  6587. return err;
  6588. }
  6589. int fastrpc_dspsignal_destroy(struct fastrpc_file *fl,
  6590. struct fastrpc_ioctl_dspsignal_destroy *destroy)
  6591. {
  6592. int err = 0, cid = -1;
  6593. uint32_t signal_id = destroy->signal_id;
  6594. struct fastrpc_dspsignal *s = NULL;
  6595. unsigned long irq_flags = 0;
  6596. DSPSIGNAL_VERBOSE("Destroy signal %u\n", signal_id);
  6597. VERIFY(err, signal_id < DSPSIGNAL_NUM_SIGNALS);
  6598. if (err) {
  6599. err = -EINVAL;
  6600. goto bail;
  6601. }
  6602. cid = fl->cid;
  6603. VERIFY(err, VALID_FASTRPC_CID(cid) && fl->sctx != NULL);
  6604. if (err) {
  6605. err = -EBADR;
  6606. goto bail;
  6607. }
  6608. spin_lock_irqsave(&fl->dspsignals_lock, irq_flags);
  6609. if (fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE] != NULL) {
  6610. struct fastrpc_dspsignal *group =
  6611. fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE];
  6612. s = &group[signal_id % DSPSIGNAL_GROUP_SIZE];
  6613. }
  6614. if ((s == NULL) || (s->state == DSPSIGNAL_STATE_UNUSED)) {
  6615. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6616. ADSPRPC_ERR("Attempting to destroy unused signal %u\n", signal_id);
  6617. err = -ENOENT;
  6618. goto bail;
  6619. }
  6620. s->state = DSPSIGNAL_STATE_UNUSED;
  6621. complete_all(&s->comp);
  6622. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6623. DSPSIGNAL_VERBOSE("Signal %u destroyed\n", signal_id);
  6624. bail:
  6625. return err;
  6626. }
  6627. int fastrpc_dspsignal_cancel_wait(struct fastrpc_file *fl,
  6628. struct fastrpc_ioctl_dspsignal_cancel_wait *cancel)
  6629. {
  6630. int err = 0, cid = -1;
  6631. uint32_t signal_id = cancel->signal_id;
  6632. struct fastrpc_dspsignal *s = NULL;
  6633. unsigned long irq_flags = 0;
  6634. DSPSIGNAL_VERBOSE("Cancel wait for signal %u\n", signal_id);
  6635. VERIFY(err, signal_id < DSPSIGNAL_NUM_SIGNALS);
  6636. if (err) {
  6637. err = -EINVAL;
  6638. goto bail;
  6639. }
  6640. cid = fl->cid;
  6641. VERIFY(err, VALID_FASTRPC_CID(cid) && fl->sctx != NULL);
  6642. if (err) {
  6643. err = -EBADR;
  6644. goto bail;
  6645. }
  6646. spin_lock_irqsave(&fl->dspsignals_lock, irq_flags);
  6647. if (fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE] != NULL) {
  6648. struct fastrpc_dspsignal *group =
  6649. fl->signal_groups[signal_id / DSPSIGNAL_GROUP_SIZE];
  6650. s = &group[signal_id % DSPSIGNAL_GROUP_SIZE];
  6651. }
  6652. if ((s == NULL) || (s->state == DSPSIGNAL_STATE_UNUSED)) {
  6653. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6654. ADSPRPC_ERR("Attempting to cancel unused signal %u\n", signal_id);
  6655. err = -ENOENT;
  6656. goto bail;
  6657. }
  6658. if (s->state != DSPSIGNAL_STATE_CANCELED) {
  6659. s->state = DSPSIGNAL_STATE_CANCELED;
  6660. trace_fastrpc_dspsignal("cancel", signal_id, s->state, 0);
  6661. complete_all(&s->comp);
  6662. }
  6663. spin_unlock_irqrestore(&fl->dspsignals_lock, irq_flags);
  6664. DSPSIGNAL_VERBOSE("Signal %u cancelled\n", signal_id);
  6665. bail:
  6666. return err;
  6667. }
  6668. static inline int fastrpc_mmap_device_ioctl(struct fastrpc_file *fl,
  6669. unsigned int ioctl_num, union fastrpc_ioctl_param *p,
  6670. void *param)
  6671. {
  6672. union {
  6673. struct fastrpc_ioctl_mmap mmap;
  6674. struct fastrpc_ioctl_munmap munmap;
  6675. } i;
  6676. int err = 0;
  6677. switch (ioctl_num) {
  6678. case FASTRPC_IOCTL_MEM_MAP:
  6679. K_COPY_FROM_USER(err, 0, &p->mem_map, param,
  6680. sizeof(p->mem_map));
  6681. if (err) {
  6682. err = -EFAULT;
  6683. goto bail;
  6684. }
  6685. VERIFY(err, 0 == (err = fastrpc_internal_mem_map(fl,
  6686. &p->mem_map)));
  6687. if (err)
  6688. goto bail;
  6689. K_COPY_TO_USER(err, 0, param, &p->mem_map, sizeof(p->mem_map));
  6690. if (err) {
  6691. err = -EFAULT;
  6692. goto bail;
  6693. }
  6694. break;
  6695. case FASTRPC_IOCTL_MEM_UNMAP:
  6696. K_COPY_FROM_USER(err, 0, &p->mem_unmap, param,
  6697. sizeof(p->mem_unmap));
  6698. if (err) {
  6699. err = -EFAULT;
  6700. goto bail;
  6701. }
  6702. VERIFY(err, 0 == (err = fastrpc_internal_mem_unmap(fl,
  6703. &p->mem_unmap)));
  6704. if (err)
  6705. goto bail;
  6706. K_COPY_TO_USER(err, 0, param, &p->mem_unmap,
  6707. sizeof(p->mem_unmap));
  6708. if (err) {
  6709. err = -EFAULT;
  6710. goto bail;
  6711. }
  6712. break;
  6713. case FASTRPC_IOCTL_MMAP:
  6714. K_COPY_FROM_USER(err, 0, &p->mmap, param,
  6715. sizeof(p->mmap));
  6716. if (err) {
  6717. err = -EFAULT;
  6718. goto bail;
  6719. }
  6720. VERIFY(err, 0 == (err = fastrpc_internal_mmap(fl, &p->mmap)));
  6721. if (err)
  6722. goto bail;
  6723. K_COPY_TO_USER(err, 0, param, &p->mmap, sizeof(p->mmap));
  6724. if (err) {
  6725. err = -EFAULT;
  6726. goto bail;
  6727. }
  6728. break;
  6729. case FASTRPC_IOCTL_MUNMAP:
  6730. K_COPY_FROM_USER(err, 0, &p->munmap, param,
  6731. sizeof(p->munmap));
  6732. if (err) {
  6733. err = -EFAULT;
  6734. goto bail;
  6735. }
  6736. VERIFY(err, 0 == (err = fastrpc_internal_munmap(fl,
  6737. &p->munmap)));
  6738. if (err)
  6739. goto bail;
  6740. break;
  6741. case FASTRPC_IOCTL_MMAP_64:
  6742. K_COPY_FROM_USER(err, 0, &p->mmap64, param,
  6743. sizeof(p->mmap64));
  6744. if (err) {
  6745. err = -EFAULT;
  6746. goto bail;
  6747. }
  6748. get_fastrpc_ioctl_mmap_64(&p->mmap64, &i.mmap);
  6749. VERIFY(err, 0 == (err = fastrpc_internal_mmap(fl, &i.mmap)));
  6750. if (err)
  6751. goto bail;
  6752. put_fastrpc_ioctl_mmap_64(&p->mmap64, &i.mmap);
  6753. K_COPY_TO_USER(err, 0, param, &p->mmap64, sizeof(p->mmap64));
  6754. if (err) {
  6755. err = -EFAULT;
  6756. goto bail;
  6757. }
  6758. break;
  6759. case FASTRPC_IOCTL_MUNMAP_64:
  6760. K_COPY_FROM_USER(err, 0, &p->munmap64, param,
  6761. sizeof(p->munmap64));
  6762. if (err) {
  6763. err = -EFAULT;
  6764. goto bail;
  6765. }
  6766. get_fastrpc_ioctl_munmap_64(&p->munmap64, &i.munmap);
  6767. VERIFY(err, 0 == (err = fastrpc_internal_munmap(fl,
  6768. &i.munmap)));
  6769. if (err)
  6770. goto bail;
  6771. break;
  6772. case FASTRPC_IOCTL_MUNMAP_FD:
  6773. K_COPY_FROM_USER(err, 0, &p->munmap_fd, param,
  6774. sizeof(p->munmap_fd));
  6775. if (err) {
  6776. err = -EFAULT;
  6777. goto bail;
  6778. }
  6779. VERIFY(err, 0 == (err = fastrpc_internal_munmap_fd(fl,
  6780. &p->munmap_fd)));
  6781. if (err)
  6782. goto bail;
  6783. break;
  6784. default:
  6785. err = -ENOTTY;
  6786. pr_info("bad ioctl: %d\n", ioctl_num);
  6787. break;
  6788. }
  6789. bail:
  6790. return err;
  6791. }
  6792. static long fastrpc_device_ioctl(struct file *file, unsigned int ioctl_num,
  6793. unsigned long ioctl_param)
  6794. {
  6795. union fastrpc_ioctl_param p;
  6796. void *param = (char *)ioctl_param;
  6797. struct fastrpc_file *fl = (struct fastrpc_file *)file->private_data;
  6798. int size = 0, err = 0;
  6799. uint32_t info;
  6800. p.inv.fds = NULL;
  6801. p.inv.attrs = NULL;
  6802. p.inv.crc = NULL;
  6803. p.inv.perf_kernel = NULL;
  6804. p.inv.perf_dsp = NULL;
  6805. p.inv.job = NULL;
  6806. err = fastrpc_file_get(fl);
  6807. if (err) {
  6808. ADSPRPC_ERR("Failed to get user process reference\n");
  6809. goto bail;
  6810. }
  6811. spin_lock(&fl->hlock);
  6812. if (fl->file_close >= FASTRPC_PROCESS_EXIT_START) {
  6813. err = -ESHUTDOWN;
  6814. pr_warn("adsprpc: fastrpc_device_release is happening, So not sending any new requests to DSP\n");
  6815. spin_unlock(&fl->hlock);
  6816. goto bail;
  6817. }
  6818. spin_unlock(&fl->hlock);
  6819. switch (ioctl_num) {
  6820. case FASTRPC_IOCTL_INVOKE:
  6821. size = sizeof(struct fastrpc_ioctl_invoke);
  6822. fallthrough;
  6823. case FASTRPC_IOCTL_INVOKE_FD:
  6824. if (!size)
  6825. size = sizeof(struct fastrpc_ioctl_invoke_fd);
  6826. fallthrough;
  6827. case FASTRPC_IOCTL_INVOKE_ATTRS:
  6828. if (!size)
  6829. size = sizeof(struct fastrpc_ioctl_invoke_attrs);
  6830. fallthrough;
  6831. case FASTRPC_IOCTL_INVOKE_CRC:
  6832. if (!size)
  6833. size = sizeof(struct fastrpc_ioctl_invoke_crc);
  6834. fallthrough;
  6835. case FASTRPC_IOCTL_INVOKE_PERF:
  6836. if (!size)
  6837. size = sizeof(struct fastrpc_ioctl_invoke_perf);
  6838. trace_fastrpc_msg("invoke: begin");
  6839. K_COPY_FROM_USER(err, 0, &p.inv, param, size);
  6840. if (err) {
  6841. err = -EFAULT;
  6842. goto bail;
  6843. }
  6844. VERIFY(err, 0 == (err = fastrpc_internal_invoke(fl, fl->mode,
  6845. USER_MSG, &p.inv)));
  6846. trace_fastrpc_msg("invoke: end");
  6847. if (err)
  6848. goto bail;
  6849. break;
  6850. case FASTRPC_IOCTL_INVOKE2:
  6851. K_COPY_FROM_USER(err, 0, &p.inv2, param,
  6852. sizeof(struct fastrpc_ioctl_invoke2));
  6853. if (err) {
  6854. err = -EFAULT;
  6855. goto bail;
  6856. }
  6857. VERIFY(err, 0 == (err = fastrpc_internal_invoke2(fl, &p.inv2)));
  6858. if (err)
  6859. goto bail;
  6860. break;
  6861. case FASTRPC_IOCTL_SETMODE:
  6862. err = fastrpc_setmode(ioctl_param, fl);
  6863. break;
  6864. case FASTRPC_IOCTL_CONTROL:
  6865. err = fastrpc_control(&p.cp, param, fl);
  6866. break;
  6867. case FASTRPC_IOCTL_GETINFO:
  6868. K_COPY_FROM_USER(err, 0, &info, param, sizeof(info));
  6869. if (err) {
  6870. err = -EFAULT;
  6871. goto bail;
  6872. }
  6873. VERIFY(err, 0 == (err = fastrpc_get_info(fl, &info)));
  6874. if (err)
  6875. goto bail;
  6876. K_COPY_TO_USER(err, 0, param, &info, sizeof(info));
  6877. if (err) {
  6878. err = -EFAULT;
  6879. goto bail;
  6880. }
  6881. break;
  6882. case FASTRPC_IOCTL_INIT:
  6883. p.init.attrs = 0;
  6884. p.init.siglen = 0;
  6885. size = sizeof(struct fastrpc_ioctl_init);
  6886. fallthrough;
  6887. case FASTRPC_IOCTL_INIT_ATTRS:
  6888. if (!size)
  6889. size = sizeof(struct fastrpc_ioctl_init_attrs);
  6890. K_COPY_FROM_USER(err, 0, &p.init, param, size);
  6891. if (err) {
  6892. err = -EFAULT;
  6893. goto bail;
  6894. }
  6895. VERIFY(err, 0 == (err = fastrpc_init_process(fl, &p.init)));
  6896. if (err)
  6897. goto bail;
  6898. break;
  6899. case FASTRPC_IOCTL_GET_DSP_INFO:
  6900. err = fastrpc_get_dsp_info(&p.cap, param, fl);
  6901. break;
  6902. case FASTRPC_IOCTL_MEM_MAP:
  6903. fallthrough;
  6904. case FASTRPC_IOCTL_MEM_UNMAP:
  6905. fallthrough;
  6906. case FASTRPC_IOCTL_MMAP:
  6907. fallthrough;
  6908. case FASTRPC_IOCTL_MUNMAP:
  6909. fallthrough;
  6910. case FASTRPC_IOCTL_MMAP_64:
  6911. fallthrough;
  6912. case FASTRPC_IOCTL_MUNMAP_64:
  6913. fallthrough;
  6914. case FASTRPC_IOCTL_MUNMAP_FD:
  6915. err = fastrpc_mmap_device_ioctl(fl, ioctl_num, &p, param);
  6916. break;
  6917. case FASTRPC_IOCTL_DSPSIGNAL_SIGNAL:
  6918. K_COPY_FROM_USER(err, 0, &p.sig, param,
  6919. sizeof(struct fastrpc_ioctl_dspsignal_signal));
  6920. if (err) {
  6921. err = -EFAULT;
  6922. goto bail;
  6923. }
  6924. VERIFY(err, 0 == (err = fastrpc_dspsignal_signal(fl, &p.sig)));
  6925. if (err)
  6926. goto bail;
  6927. break;
  6928. case FASTRPC_IOCTL_DSPSIGNAL_WAIT:
  6929. K_COPY_FROM_USER(err, 0, &p.wait, param,
  6930. sizeof(struct fastrpc_ioctl_dspsignal_wait));
  6931. if (err) {
  6932. err = -EFAULT;
  6933. goto bail;
  6934. }
  6935. VERIFY(err, 0 == (err = fastrpc_dspsignal_wait(fl, &p.wait)));
  6936. if (err)
  6937. goto bail;
  6938. break;
  6939. case FASTRPC_IOCTL_DSPSIGNAL_CREATE:
  6940. K_COPY_FROM_USER(err, 0, &p.cre, param,
  6941. sizeof(struct fastrpc_ioctl_dspsignal_create));
  6942. if (err) {
  6943. err = -EFAULT;
  6944. goto bail;
  6945. }
  6946. VERIFY(err, 0 == (err = fastrpc_dspsignal_create(fl, &p.cre)));
  6947. if (err)
  6948. goto bail;
  6949. break;
  6950. case FASTRPC_IOCTL_DSPSIGNAL_DESTROY:
  6951. K_COPY_FROM_USER(err, 0, &p.des, param,
  6952. sizeof(struct fastrpc_ioctl_dspsignal_destroy));
  6953. if (err) {
  6954. err = -EFAULT;
  6955. goto bail;
  6956. }
  6957. VERIFY(err, 0 == (err = fastrpc_dspsignal_destroy(fl, &p.des)));
  6958. if (err)
  6959. goto bail;
  6960. break;
  6961. case FASTRPC_IOCTL_DSPSIGNAL_CANCEL_WAIT:
  6962. K_COPY_FROM_USER(err, 0, &p.canc, param,
  6963. sizeof(struct fastrpc_ioctl_dspsignal_cancel_wait));
  6964. if (err) {
  6965. err = -EFAULT;
  6966. goto bail;
  6967. }
  6968. VERIFY(err, 0 == (err = fastrpc_dspsignal_cancel_wait(fl, &p.canc)));
  6969. if (err)
  6970. goto bail;
  6971. break;
  6972. default:
  6973. err = -ENOTTY;
  6974. pr_info("bad ioctl: %d\n", ioctl_num);
  6975. break;
  6976. }
  6977. bail:
  6978. fastrpc_file_put(fl);
  6979. return err;
  6980. }
  6981. /*
  6982. * fastrpc_smq_ctx_detail : Store smq_invoke_ctx structure parameter.
  6983. * Input :
  6984. * structure smq_invoke_ctx
  6985. * void* mini_dump_buff
  6986. */
  6987. static void fastrpc_smq_ctx_detail(struct smq_invoke_ctx *smq_ctx, int cid, void *mini_dump_buff)
  6988. {
  6989. int i = 0;
  6990. remote_arg64_t *rpra = NULL;
  6991. struct fastrpc_mmap *map = NULL;
  6992. if (!smq_ctx)
  6993. return;
  6994. if (smq_ctx->buf && smq_ctx->buf->virt)
  6995. rpra = smq_ctx->buf->virt;
  6996. for (i = 0; rpra &&
  6997. i < (REMOTE_SCALARS_INBUFS(smq_ctx->sc) + REMOTE_SCALARS_OUTBUFS(smq_ctx->sc));
  6998. ++i) {
  6999. map = smq_ctx->maps[i];
  7000. if (map) {
  7001. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7002. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7003. smq_invoke_ctx_params,
  7004. smq_ctx->pid, smq_ctx->tgid, smq_ctx->handle,
  7005. smq_ctx->sc, smq_ctx->fl, smq_ctx->fds,
  7006. smq_ctx->magic);
  7007. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7008. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7009. fastrpc_mmap_params,
  7010. map->fd, map->flags, map->buf,
  7011. map->phys, map->size, map->va,
  7012. map->raddr, map->len, map->refs,
  7013. map->secure);
  7014. } else {
  7015. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7016. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7017. smq_invoke_ctx_params, smq_ctx->pid, smq_ctx->tgid,
  7018. smq_ctx->handle, smq_ctx->sc, smq_ctx->fl, smq_ctx->fds,
  7019. smq_ctx->magic);
  7020. }
  7021. break;
  7022. }
  7023. }
  7024. /*
  7025. * fastrpc_print_fastrpcbuf : Print fastrpc_buf structure parameter.
  7026. * Input :
  7027. * structure fastrpc_buf
  7028. * void* buffer
  7029. */
  7030. static void fastrpc_print_fastrpcbuf(struct fastrpc_buf *buf, void *buffer)
  7031. {
  7032. if (!buf || !buffer)
  7033. return;
  7034. scnprintf(buffer + strlen(buffer),
  7035. MINI_DUMP_DBG_SIZE - strlen(buffer),
  7036. fastrpc_buf_params, buf->fl, buf->phys,
  7037. buf->virt, buf->size, buf->dma_attr, buf->raddr,
  7038. buf->flags, buf->type, buf->in_use);
  7039. }
  7040. /*
  7041. * fastrpc_print_map : Print fastrpc_map structure parameter.
  7042. * @args1: structure fastrpc_map, map whose details needs
  7043. * to because printed.
  7044. * @args1: buffer for storing the string consisting details
  7045. */
  7046. static void fastrpc_print_map(struct fastrpc_mmap *map, void *buffer)
  7047. {
  7048. scnprintf(buffer +
  7049. strlen(buffer),
  7050. MINI_DUMP_DBG_SIZE -
  7051. strlen(buffer),
  7052. fastrpc_mmap_params,
  7053. map->fd,
  7054. map->flags, map->buf,
  7055. map->phys, map->size,
  7056. map->va, map->raddr,
  7057. map->len, map->refs,
  7058. map->secure);
  7059. }
  7060. /*
  7061. * fastrpc_print_debug_data : Print debug structure variable in CMA memory.
  7062. * Input cid: Channel id
  7063. */
  7064. static void fastrpc_print_debug_data(int cid)
  7065. {
  7066. unsigned int i = 0, count = 0, gmsg_log_iter = 3, err = 0, len = 0;
  7067. unsigned int tx_index = 0, rx_index = 0;
  7068. unsigned long flags = 0;
  7069. char *gmsg_log_tx = NULL;
  7070. char *gmsg_log_rx = NULL;
  7071. void *mini_dump_buff = NULL;
  7072. struct fastrpc_apps *me = &gfa;
  7073. struct smq_invoke_rspv2 *rsp = NULL;
  7074. struct fastrpc_file *fl = NULL;
  7075. struct fastrpc_channel_ctx *chan = NULL;
  7076. struct hlist_node *n = NULL;
  7077. struct smq_invoke_ctx *ictx = NULL;
  7078. struct fastrpc_tx_msg *tx_msg = NULL;
  7079. struct fastrpc_buf *buf = NULL, *iter = NULL;
  7080. struct fastrpc_mmap *map = NULL;
  7081. unsigned long irq_flags = 0;
  7082. VERIFY(err, NULL != (gmsg_log_tx = kzalloc(MD_GMSG_BUFFER, GFP_KERNEL)));
  7083. if (err) {
  7084. err = -ENOMEM;
  7085. goto free_buf;
  7086. }
  7087. VERIFY(err, NULL != (gmsg_log_rx = kzalloc(MD_GMSG_BUFFER, GFP_KERNEL)));
  7088. if (err) {
  7089. err = -ENOMEM;
  7090. goto free_buf;
  7091. }
  7092. chan = &me->channel[cid];
  7093. if ((!chan) || (!chan->buf))
  7094. goto free_buf;
  7095. mini_dump_buff = chan->buf->virt;
  7096. if (!mini_dump_buff)
  7097. goto free_buf;
  7098. if (chan) {
  7099. tx_index = chan->gmsg_log.tx_index;
  7100. rx_index = chan->gmsg_log.rx_index;
  7101. }
  7102. hlist_for_each_entry_safe(iter, n, &chan->initmems, hn_init) {
  7103. fl = iter->fl;
  7104. if ( fl && (fl->cid == cid)) {
  7105. scnprintf(mini_dump_buff +
  7106. strlen(mini_dump_buff),
  7107. MINI_DUMP_DBG_SIZE -
  7108. strlen(mini_dump_buff),
  7109. "\nfastrpc_file : %p\n", fl);
  7110. scnprintf(mini_dump_buff +
  7111. strlen(mini_dump_buff),
  7112. MINI_DUMP_DBG_SIZE -
  7113. strlen(mini_dump_buff),
  7114. fastrpc_file_params, fl->tgid,
  7115. fl->cid, fl->ssrcount, fl->pd,
  7116. fl->profile, fl->mode,
  7117. fl->tgid_open, fl->num_cached_buf,
  7118. fl->num_pers_hdrs, fl->sessionid,
  7119. fl->servloc_name, fl->file_close,
  7120. fl->dsp_proc_init, fl->apps,
  7121. fl->qos_request, fl->dev_minor,
  7122. fl->debug_buf,
  7123. fl->debug_buf_alloced_attempted,
  7124. fl->wake_enable,
  7125. fl->ws_timeout,
  7126. fl->untrusted_process);
  7127. scnprintf(mini_dump_buff +
  7128. strlen(mini_dump_buff),
  7129. MINI_DUMP_DBG_SIZE -
  7130. strlen(mini_dump_buff),
  7131. "\nSession Maps\n");
  7132. spin_lock_irqsave(&me->hlock, irq_flags);
  7133. hlist_for_each_entry_safe(map, n, &me->maps, hn) {
  7134. fastrpc_print_map(map, mini_dump_buff);
  7135. }
  7136. spin_unlock_irqrestore(&me->hlock, irq_flags);
  7137. mutex_lock(&fl->map_mutex);
  7138. hlist_for_each_entry_safe(map, n, &fl->maps, hn) {
  7139. fastrpc_print_map(map, mini_dump_buff);
  7140. }
  7141. mutex_unlock(&fl->map_mutex);
  7142. spin_lock(&fl->hlock);
  7143. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7144. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7145. "\ncached_bufs\n");
  7146. hlist_for_each_entry_safe(buf, n, &fl->cached_bufs, hn) {
  7147. fastrpc_print_fastrpcbuf(buf, mini_dump_buff);
  7148. }
  7149. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7150. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7151. "\ninit_mem: %p\n", fl->init_mem);
  7152. fastrpc_print_fastrpcbuf(fl->init_mem, mini_dump_buff);
  7153. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7154. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7155. "\npers_hdr_buf: %p\n", fl->pers_hdr_buf);
  7156. fastrpc_print_fastrpcbuf(fl->pers_hdr_buf, mini_dump_buff);
  7157. snprintf(mini_dump_buff + strlen(mini_dump_buff),
  7158. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7159. "\nhdr_bufs: %p\n", fl->hdr_bufs);
  7160. fastrpc_print_fastrpcbuf(fl->hdr_bufs, mini_dump_buff);
  7161. if (fl->debugfs_file) {
  7162. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7163. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7164. "\nfl->debugfs_file.d_iname : %s\n",
  7165. fl->debugfs_file->d_iname);
  7166. }
  7167. if (fl->sctx) {
  7168. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7169. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7170. "\nfl->sctx->smmu.cb : %d\n",
  7171. fl->sctx->smmu.cb);
  7172. }
  7173. if (fl->secsctx) {
  7174. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7175. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7176. "\nfl->secsctx->smmu.cb : %d\n",
  7177. fl->secsctx->smmu.cb);
  7178. }
  7179. scnprintf(mini_dump_buff +
  7180. strlen(mini_dump_buff),
  7181. MINI_DUMP_DBG_SIZE -
  7182. strlen(mini_dump_buff),
  7183. "\nPending Ctx:\n");
  7184. hlist_for_each_entry_safe(ictx, n, &fl->clst.pending, hn) {
  7185. fastrpc_smq_ctx_detail(ictx,
  7186. cid, mini_dump_buff);
  7187. }
  7188. scnprintf(mini_dump_buff +
  7189. strlen(mini_dump_buff),
  7190. MINI_DUMP_DBG_SIZE -
  7191. strlen(mini_dump_buff),
  7192. "\nInterrupted Ctx:\n");
  7193. hlist_for_each_entry_safe(ictx, n,
  7194. &fl->clst.interrupted,
  7195. hn) {
  7196. fastrpc_smq_ctx_detail(ictx,
  7197. cid, mini_dump_buff);
  7198. }
  7199. spin_unlock(&fl->hlock);
  7200. }
  7201. }
  7202. spin_lock_irqsave(&chan->gmsg_log.lock, flags);
  7203. if (rx_index) {
  7204. for (i = rx_index, count = 0, len = 0 ; i > 0 &&
  7205. count <= gmsg_log_iter; i--, count++) {
  7206. rsp = &chan->gmsg_log.rx_msgs[i].rsp;
  7207. len += scnprintf(gmsg_log_rx + len, MD_GMSG_BUFFER - len,
  7208. "ctx: 0x%x, retval: %d, flags: %d, early_wake_time: %d, version: %d\n",
  7209. rsp->ctx, rsp->retval, rsp->flags,
  7210. rsp->early_wake_time, rsp->version);
  7211. }
  7212. }
  7213. if (tx_index) {
  7214. for (i = tx_index, count = 0, len = 0;
  7215. i > 0 && count <= gmsg_log_iter;
  7216. i--, count++) {
  7217. tx_msg = &chan->gmsg_log.tx_msgs[i];
  7218. len += scnprintf(gmsg_log_tx + len, MD_GMSG_BUFFER - len,
  7219. "pid: %d, tid: %d, ctx: 0x%x, handle: 0x%x, sc: 0x%x, addr: 0x%x, size:%d\n",
  7220. tx_msg->msg.pid,
  7221. tx_msg->msg.tid,
  7222. tx_msg->msg.invoke.header.ctx,
  7223. tx_msg->msg.invoke.header.handle,
  7224. tx_msg->msg.invoke.header.sc,
  7225. tx_msg->msg.invoke.page.addr,
  7226. tx_msg->msg.invoke.page.size);
  7227. }
  7228. }
  7229. spin_unlock_irqrestore(&chan->gmsg_log.lock, flags);
  7230. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7231. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7232. "gmsg_log_tx:\n%s\n", gmsg_log_tx);
  7233. scnprintf(mini_dump_buff + strlen(mini_dump_buff),
  7234. MINI_DUMP_DBG_SIZE - strlen(mini_dump_buff),
  7235. "gmsg_log_rx:\n %s\n", gmsg_log_rx);
  7236. if (chan && chan->buf)
  7237. chan->buf->size = strlen(mini_dump_buff);
  7238. free_buf:
  7239. kfree(gmsg_log_tx);
  7240. kfree(gmsg_log_rx);
  7241. }
  7242. void fastrpc_restart_drivers(int cid)
  7243. {
  7244. struct fastrpc_apps *me = &gfa;
  7245. fastrpc_notify_drivers(me, cid);
  7246. mutex_lock(&me->channel[cid].smd_mutex);
  7247. me->channel[cid].ssrcount++;
  7248. mutex_unlock(&me->channel[cid].smd_mutex);
  7249. }
  7250. static int fastrpc_restart_notifier_cb(struct notifier_block *nb,
  7251. unsigned long code,
  7252. void *data)
  7253. {
  7254. struct fastrpc_apps *me = &gfa;
  7255. struct fastrpc_channel_ctx *ctx;
  7256. struct fastrpc_file *fl;
  7257. struct hlist_node *n;
  7258. int cid = -1;
  7259. struct timespec64 startT = {0};
  7260. unsigned long irq_flags = 0;
  7261. uint64_t ssrcount = 0;
  7262. ctx = container_of(nb, struct fastrpc_channel_ctx, nb);
  7263. cid = ctx - &me->channel[0];
  7264. /* ssrcount should be read within a critical section */
  7265. mutex_lock(&me->channel[cid].smd_mutex);
  7266. ssrcount = ctx->ssrcount;
  7267. mutex_unlock(&me->channel[cid].smd_mutex);
  7268. switch (code) {
  7269. case QCOM_SSR_BEFORE_SHUTDOWN:
  7270. fastrpc_rproc_trace_events(gcinfo[cid].subsys,
  7271. "QCOM_SSR_BEFORE_SHUTDOWN", "fastrpc_restart_notifier-enter");
  7272. pr_info("adsprpc: %s: %s subsystem is restarting\n",
  7273. __func__, gcinfo[cid].subsys);
  7274. mutex_lock(&me->channel[cid].smd_mutex);
  7275. ctx->ssrcount++;
  7276. ctx->subsystemstate = SUBSYSTEM_RESTARTING;
  7277. mutex_unlock(&me->channel[cid].smd_mutex);
  7278. if (cid == RH_CID)
  7279. me->staticpd_flags = 0;
  7280. break;
  7281. case QCOM_SSR_AFTER_SHUTDOWN:
  7282. fastrpc_rproc_trace_events(gcinfo[cid].subsys,
  7283. "QCOM_SSR_AFTER_SHUTDOWN", "fastrpc_restart_notifier-enter");
  7284. spin_lock_irqsave(&me->hlock, irq_flags);
  7285. hlist_for_each_entry_safe(fl, n, &me->drivers, hn) {
  7286. if (fl->cid != cid)
  7287. continue;
  7288. complete(&fl->shutdown);
  7289. }
  7290. spin_unlock_irqrestore(&me->hlock, irq_flags);
  7291. ctx->subsystemstate = SUBSYSTEM_DOWN;
  7292. pr_info("adsprpc: %s: received RAMDUMP notification for %s\n",
  7293. __func__, gcinfo[cid].subsys);
  7294. break;
  7295. case QCOM_SSR_BEFORE_POWERUP:
  7296. fastrpc_rproc_trace_events(gcinfo[cid].subsys,
  7297. "QCOM_SSR_BEFORE_POWERUP", "fastrpc_restart_notifier-enter");
  7298. pr_info("adsprpc: %s: subsystem %s is about to start\n",
  7299. __func__, gcinfo[cid].subsys);
  7300. if (cid == CDSP_DOMAIN_ID && dump_enabled() && ssrcount)
  7301. fastrpc_update_ramdump_status(cid);
  7302. fastrpc_notify_drivers(me, cid);
  7303. /* Skip ram dump collection in first boot */
  7304. if (cid == CDSP_DOMAIN_ID && dump_enabled() && ssrcount) {
  7305. mutex_lock(&me->channel[cid].smd_mutex);
  7306. fastrpc_print_debug_data(cid);
  7307. mutex_unlock(&me->channel[cid].smd_mutex);
  7308. ktime_get_real_ts64(&startT);
  7309. fastrpc_ramdump_collection(cid);
  7310. pr_info("adsprpc: %s: fastrpc ramdump finished in %lu (us)\n",
  7311. __func__, getnstimediff(&startT));
  7312. }
  7313. break;
  7314. case QCOM_SSR_AFTER_POWERUP:
  7315. fastrpc_rproc_trace_events(gcinfo[cid].subsys,
  7316. "QCOM_SSR_AFTER_POWERUP", "fastrpc_restart_notifier-enter");
  7317. pr_info("adsprpc: %s: %s subsystem is up\n",
  7318. __func__, gcinfo[cid].subsys);
  7319. ctx->subsystemstate = SUBSYSTEM_UP;
  7320. break;
  7321. default:
  7322. break;
  7323. }
  7324. fastrpc_rproc_trace_events(dev_name(me->dev), "fastrpc_restart_notifier", "exit");
  7325. return NOTIFY_DONE;
  7326. }
  7327. static void fastrpc_pdr_cb(int state, char *service_path, void *priv)
  7328. {
  7329. struct fastrpc_apps *me = &gfa;
  7330. struct fastrpc_static_pd *spd;
  7331. int err = 0;
  7332. spd = priv;
  7333. VERIFY(err, spd);
  7334. if (err)
  7335. goto bail;
  7336. switch (state) {
  7337. case SERVREG_SERVICE_STATE_DOWN:
  7338. pr_info("adsprpc: %s: %s (%s) is down for PDR on %s\n",
  7339. __func__, spd->spdname,
  7340. spd->servloc_name,
  7341. gcinfo[spd->cid].subsys);
  7342. mutex_lock(&me->channel[spd->cid].smd_mutex);
  7343. spd->pdrcount++;
  7344. atomic_set(&spd->ispdup, 0);
  7345. mutex_unlock(&me->channel[spd->cid].smd_mutex);
  7346. if (!strcmp(spd->servloc_name,
  7347. AUDIO_PDR_SERVICE_LOCATION_CLIENT_NAME))
  7348. me->staticpd_flags = 0;
  7349. fastrpc_notify_pdr_drivers(me, spd->servloc_name);
  7350. break;
  7351. case SERVREG_SERVICE_STATE_UP:
  7352. pr_info("adsprpc: %s: %s (%s) is up for PDR on %s\n",
  7353. __func__, spd->spdname,
  7354. spd->servloc_name,
  7355. gcinfo[spd->cid].subsys);
  7356. atomic_set(&spd->ispdup, 1);
  7357. wake_up_interruptible(&spd->wait_for_pdup);
  7358. break;
  7359. default:
  7360. break;
  7361. }
  7362. bail:
  7363. if (err) {
  7364. pr_err("adsprpc: %s: failed for path %s, state %d, spd %pK\n",
  7365. __func__, service_path, state, spd);
  7366. }
  7367. }
  7368. static const struct file_operations fops = {
  7369. .open = fastrpc_device_open,
  7370. .release = fastrpc_device_release,
  7371. .unlocked_ioctl = fastrpc_device_ioctl,
  7372. /* Only DSP service 64-bit app will interface with fastrpc TVM driver.
  7373. * There is not need to support 32-bit fastrpc driver on TVM.
  7374. */
  7375. #if IS_ENABLED(CONFIG_MSM_ADSPRPC_TRUSTED)
  7376. .compat_ioctl = NULL,
  7377. #else
  7378. .compat_ioctl = compat_fastrpc_device_ioctl,
  7379. #endif
  7380. };
  7381. static const struct of_device_id fastrpc_match_table[] = {
  7382. { .compatible = "qcom,msm-fastrpc-adsp", },
  7383. { .compatible = "qcom,msm-fastrpc-compute", },
  7384. { .compatible = "qcom,msm-fastrpc-compute-cb", },
  7385. { .compatible = "qcom,msm-adsprpc-mem-region", },
  7386. {}
  7387. };
  7388. static int fastrpc_cb_probe(struct device *dev)
  7389. {
  7390. struct fastrpc_channel_ctx *chan = NULL;
  7391. struct fastrpc_session_ctx *sess = NULL;
  7392. struct of_phandle_args iommuspec;
  7393. struct fastrpc_apps *me = &gfa;
  7394. struct fastrpc_buf *buf = NULL;
  7395. struct gen_pool *gen_pool = NULL;
  7396. struct iommu_domain *domain = NULL;
  7397. const char *name;
  7398. int err = 0, cid = -1, i = 0;
  7399. u32 sharedcb_count = 0, j = 0;
  7400. uint32_t dma_addr_pool[2] = {0, 0};
  7401. VERIFY(err, NULL != (name = of_get_property(dev->of_node,
  7402. "label", NULL)));
  7403. if (err) {
  7404. err = -EINVAL;
  7405. goto bail;
  7406. }
  7407. for (i = 0; i < NUM_CHANNELS; i++) {
  7408. if (!gcinfo[i].name)
  7409. continue;
  7410. if (!strcmp(name, gcinfo[i].name))
  7411. break;
  7412. }
  7413. VERIFY(err, i < NUM_CHANNELS);
  7414. if (err) {
  7415. err = -ECHRNG;
  7416. goto bail;
  7417. }
  7418. cid = i;
  7419. chan = &gcinfo[i];
  7420. VERIFY(err, chan->sesscount < NUM_SESSIONS);
  7421. if (err) {
  7422. err = -EINVAL;
  7423. goto bail;
  7424. }
  7425. err = of_parse_phandle_with_args(dev->of_node, "iommus",
  7426. "#iommu-cells", 0, &iommuspec);
  7427. if (err) {
  7428. pr_err("Error: adsprpc: %s: parsing iommu arguments failed for %s with err %d\n",
  7429. __func__, dev_name(dev), err);
  7430. goto bail;
  7431. }
  7432. sess = &chan->session[chan->sesscount];
  7433. sess->used = 0;
  7434. sess->smmu.coherent = of_property_read_bool(dev->of_node,
  7435. "dma-coherent");
  7436. sess->smmu.secure = of_property_read_bool(dev->of_node,
  7437. "qcom,secure-context-bank");
  7438. sess->smmu.cb = iommuspec.args[0] & 0xf;
  7439. sess->smmu.dev = dev;
  7440. sess->smmu.dev_name = dev_name(dev);
  7441. sess->smmu.enabled = 1;
  7442. if (!sess->smmu.dev->dma_parms)
  7443. sess->smmu.dev->dma_parms = devm_kzalloc(sess->smmu.dev,
  7444. sizeof(*sess->smmu.dev->dma_parms), GFP_KERNEL);
  7445. dma_set_max_seg_size(sess->smmu.dev, DMA_BIT_MASK(32));
  7446. dma_set_seg_boundary(sess->smmu.dev, (unsigned long)DMA_BIT_MASK(64));
  7447. of_property_read_u32_array(dev->of_node, "qcom,iommu-dma-addr-pool",
  7448. dma_addr_pool, 2);
  7449. me->max_size_limit = (dma_addr_pool[1] == 0 ? 0x78000000 :
  7450. dma_addr_pool[1]);
  7451. if (of_get_property(dev->of_node, "pd-type", NULL) != NULL) {
  7452. err = of_property_read_u32(dev->of_node, "pd-type",
  7453. &(sess->smmu.pd_type));
  7454. /* Set cb_pd_type, if the process type is set for context banks */
  7455. me->cb_pd_type = true;
  7456. if (err)
  7457. goto bail;
  7458. }
  7459. if (of_get_property(dev->of_node, "shared-cb", NULL) != NULL) {
  7460. sess->smmu.sharedcb = 1;
  7461. // Set share_securecb, if the secure context bank is shared
  7462. if (sess->smmu.secure)
  7463. me->share_securecb = 1;
  7464. err = of_property_read_u32(dev->of_node, "shared-cb",
  7465. &sharedcb_count);
  7466. if (err)
  7467. goto bail;
  7468. if (sharedcb_count > 0) {
  7469. struct fastrpc_session_ctx *dup_sess;
  7470. for (j = 1; j < sharedcb_count &&
  7471. chan->sesscount < NUM_SESSIONS; j++) {
  7472. chan->sesscount++;
  7473. dup_sess = &chan->session[chan->sesscount];
  7474. memcpy(dup_sess, sess,
  7475. sizeof(struct fastrpc_session_ctx));
  7476. }
  7477. }
  7478. }
  7479. if (of_get_property(dev->of_node, "qrtr-gen-pool", NULL) != NULL) {
  7480. u32 frpc_gen_addr_pool[2] = {0, 0};
  7481. struct sg_table sgt;
  7482. err = of_property_read_u32_array(dev->of_node, "frpc-gen-addr-pool",
  7483. frpc_gen_addr_pool, 2);
  7484. if (err) {
  7485. pr_err("Error: adsprpc: %s: parsing frpc-gen-addr-pool arguments failed for %s with err %d\n",
  7486. __func__, dev_name(dev), err);
  7487. goto bail;
  7488. }
  7489. sess->smmu.genpool_iova = frpc_gen_addr_pool[0];
  7490. sess->smmu.genpool_size = frpc_gen_addr_pool[1];
  7491. VERIFY(err, NULL != (buf = kzalloc(sizeof(*buf), GFP_KERNEL)));
  7492. if (err) {
  7493. err = -ENOMEM;
  7494. ADSPRPC_ERR(
  7495. "allocation failed for size 0x%zx\n", sizeof(*buf));
  7496. goto bail;
  7497. }
  7498. INIT_HLIST_NODE(&buf->hn);
  7499. buf->virt = NULL;
  7500. buf->phys = 0;
  7501. buf->size = frpc_gen_addr_pool[1];
  7502. buf->dma_attr = DMA_ATTR_DELAYED_UNMAP;
  7503. /* Allocate memory for adding to genpool */
  7504. buf->virt = dma_alloc_attrs(sess->smmu.dev, buf->size,
  7505. (dma_addr_t *)&buf->phys,
  7506. GFP_KERNEL, buf->dma_attr);
  7507. if (IS_ERR_OR_NULL(buf->virt)) {
  7508. ADSPRPC_ERR(
  7509. "dma_alloc_attrs failed for size 0x%zx, returned %pK\n",
  7510. buf->size, buf->virt);
  7511. err = -ENOBUFS;
  7512. goto dma_alloc_bail;
  7513. }
  7514. err = dma_get_sgtable_attrs(sess->smmu.dev, &sgt, buf->virt,
  7515. buf->phys, buf->size, buf->dma_attr);
  7516. if (err) {
  7517. ADSPRPC_ERR("dma_get_sgtable_attrs failed with err %d", err);
  7518. goto iommu_map_bail;
  7519. }
  7520. domain = iommu_get_domain_for_dev(sess->smmu.dev);
  7521. if (!domain) {
  7522. ADSPRPC_ERR("iommu_get_domain_for_dev failed ");
  7523. goto iommu_map_bail;
  7524. }
  7525. /* Map the allocated memory with fixed IOVA and is shared to remote subsystem */
  7526. err = iommu_map_sg(domain, frpc_gen_addr_pool[0], sgt.sgl,
  7527. sgt.nents, IOMMU_READ | IOMMU_WRITE | IOMMU_CACHE);
  7528. if (err < 0) {
  7529. ADSPRPC_ERR("iommu_map_sg failed with err %d", err);
  7530. goto iommu_map_bail;
  7531. }
  7532. /* Create genpool using SMMU device */
  7533. gen_pool = devm_gen_pool_create(sess->smmu.dev, 0,
  7534. NUMA_NO_NODE, NULL);
  7535. if (IS_ERR(gen_pool)) {
  7536. err = PTR_ERR(gen_pool);
  7537. ADSPRPC_ERR("devm_gen_pool_create failed with err %d", err);
  7538. goto genpool_create_bail;
  7539. }
  7540. /* Add allocated memory to genpool */
  7541. err = gen_pool_add_virt(gen_pool, (unsigned long)buf->virt,
  7542. buf->phys, buf->size, NUMA_NO_NODE);
  7543. if (err) {
  7544. ADSPRPC_ERR("gen_pool_add_virt failed with err %d", err);
  7545. goto genpool_add_bail;
  7546. }
  7547. sess->smmu.frpc_genpool = gen_pool;
  7548. sess->smmu.frpc_genpool_buf = buf;
  7549. }
  7550. chan->sesscount++;
  7551. if (debugfs_root && !debugfs_global_file) {
  7552. debugfs_global_file = debugfs_create_file("global", 0644,
  7553. debugfs_root, NULL, &debugfs_fops);
  7554. if (IS_ERR_OR_NULL(debugfs_global_file)) {
  7555. pr_warn("Error: %s: %s: failed to create debugfs global file\n",
  7556. current->comm, __func__);
  7557. debugfs_global_file = NULL;
  7558. }
  7559. }
  7560. bail:
  7561. return err;
  7562. genpool_add_bail:
  7563. gen_pool_destroy(gen_pool);
  7564. genpool_create_bail:
  7565. iommu_unmap(domain, sess->smmu.genpool_iova,
  7566. sess->smmu.genpool_size);
  7567. iommu_map_bail:
  7568. dma_free_attrs(sess->smmu.dev, buf->size, buf->virt,
  7569. buf->phys, buf->dma_attr);
  7570. dma_alloc_bail:
  7571. kfree(buf);
  7572. return err;
  7573. }
  7574. static void init_secure_vmid_list(struct device *dev, char *prop_name,
  7575. struct secure_vm *destvm)
  7576. {
  7577. int err = 0;
  7578. u32 len = 0, i = 0;
  7579. u32 *rhvmlist = NULL;
  7580. u32 *rhvmpermlist = NULL;
  7581. if (!of_find_property(dev->of_node, prop_name, &len))
  7582. goto bail;
  7583. if (len == 0)
  7584. goto bail;
  7585. len /= sizeof(u32);
  7586. VERIFY(err, NULL != (rhvmlist = kcalloc(len, sizeof(u32), GFP_KERNEL)));
  7587. if (err)
  7588. goto bail;
  7589. VERIFY(err, NULL != (rhvmpermlist = kcalloc(len, sizeof(u32),
  7590. GFP_KERNEL)));
  7591. if (err)
  7592. goto bail;
  7593. for (i = 0; i < len; i++) {
  7594. err = of_property_read_u32_index(dev->of_node, prop_name, i,
  7595. &rhvmlist[i]);
  7596. if (err) {
  7597. pr_err("Error: adsprpc: %s: failed to read VMID\n",
  7598. __func__);
  7599. goto bail;
  7600. }
  7601. ADSPRPC_INFO("secure VMID = %d\n",
  7602. rhvmlist[i]);
  7603. rhvmpermlist[i] = QCOM_SCM_PERM_RWX;
  7604. }
  7605. destvm->vmid = rhvmlist;
  7606. destvm->vmperm = rhvmpermlist;
  7607. destvm->vmcount = len;
  7608. bail:
  7609. if (err) {
  7610. kfree(rhvmlist);
  7611. kfree(rhvmpermlist);
  7612. }
  7613. }
  7614. static void fastrpc_init_privileged_gids(struct device *dev, char *prop_name,
  7615. struct gid_list *gidlist)
  7616. {
  7617. int err = 0;
  7618. u32 len = 0, i = 0;
  7619. u32 *gids = NULL;
  7620. if (!of_find_property(dev->of_node, prop_name, &len))
  7621. goto bail;
  7622. if (len == 0)
  7623. goto bail;
  7624. len /= sizeof(u32);
  7625. gids = kcalloc(len, sizeof(u32), GFP_KERNEL);
  7626. if (!gids) {
  7627. err = ENOMEM;
  7628. goto bail;
  7629. }
  7630. for (i = 0; i < len; i++) {
  7631. err = of_property_read_u32_index(dev->of_node, prop_name,
  7632. i, &gids[i]);
  7633. if (err) {
  7634. pr_err("Error: adsprpc: %s: failed to read GID %u\n",
  7635. __func__, i);
  7636. goto bail;
  7637. }
  7638. pr_info("adsprpc: %s: privileged GID: %u\n", __func__, gids[i]);
  7639. }
  7640. sort(gids, len, sizeof(*gids), uint_cmp_func, NULL);
  7641. gidlist->gids = gids;
  7642. gidlist->gidcount = len;
  7643. bail:
  7644. if (err)
  7645. kfree(gids);
  7646. }
  7647. static void configure_secure_channels(uint32_t secure_domains)
  7648. {
  7649. struct fastrpc_apps *me = &gfa;
  7650. int ii = 0;
  7651. /*
  7652. * secure_domains contains the bitmask of the secure channels
  7653. * Bit 0 - ADSP
  7654. * Bit 1 - MDSP
  7655. * Bit 2 - SLPI
  7656. * Bit 3 - CDSP
  7657. */
  7658. for (ii = ADSP_DOMAIN_ID; ii <= CDSP_DOMAIN_ID; ++ii) {
  7659. int secure = (secure_domains >> ii) & 0x01;
  7660. me->channel[ii].secure = secure;
  7661. ADSPRPC_INFO("domain %d configured as secure %d\n", ii, secure);
  7662. }
  7663. }
  7664. /*
  7665. * This function is used to create the service locator required for
  7666. * registering for remote process restart (PDR) notifications if that
  7667. * PDR property has been enabled in the fastrpc node on the DTSI.
  7668. */
  7669. static int fastrpc_setup_service_locator(struct device *dev,
  7670. const char *propname,
  7671. char *client_name, char *service_name,
  7672. char *service_path)
  7673. {
  7674. int err = 0, session = -1, cid = -1;
  7675. struct fastrpc_apps *me = &gfa;
  7676. struct pdr_handle *handle = NULL;
  7677. struct pdr_service *service = NULL;
  7678. if (of_property_read_bool(dev->of_node, propname)) {
  7679. err = fastrpc_get_spd_session(client_name, &session, &cid);
  7680. if (err)
  7681. goto bail;
  7682. /* Register the service locator's callback function */
  7683. handle = pdr_handle_alloc(fastrpc_pdr_cb, &me->channel[cid].spd[session]);
  7684. if (IS_ERR_OR_NULL(handle)) {
  7685. err = PTR_ERR(handle);
  7686. goto bail;
  7687. }
  7688. me->channel[cid].spd[session].pdrhandle = handle;
  7689. service = pdr_add_lookup(handle, service_name, service_path);
  7690. if (IS_ERR_OR_NULL(service)) {
  7691. err = PTR_ERR(service);
  7692. goto bail;
  7693. }
  7694. pr_info("adsprpc: %s: pdr_add_lookup enabled for %s (%s, %s), DTSI (%s)\n",
  7695. __func__, service_name, client_name, service_path, propname);
  7696. }
  7697. bail:
  7698. if (err) {
  7699. pr_warn("adsprpc: %s: failed for %s (%s, %s), DTSI (%s) with err %d\n",
  7700. __func__, service_name, client_name, service_path, propname, err);
  7701. }
  7702. return err;
  7703. }
  7704. /*
  7705. * fastrpc_nsp_status_show() - Updates the buffer with remote nsp status
  7706. * by reading the fastrpc node.
  7707. * @dev : pointer to device node.
  7708. * @attr: pointer to device attribute.
  7709. * @buf : Output parameter to be updated with remote nsp status.
  7710. * Return : bytes written to buffer.
  7711. */
  7712. static ssize_t fastrpc_nsp_status_show(struct device *dev,
  7713. struct device_attribute *attr, char *buf)
  7714. {
  7715. struct fastrpc_apps *me = &gfa;
  7716. /*
  7717. * Default remote DSP status: 0
  7718. * driver possibly not probed yet or not the main device.
  7719. */
  7720. if (!dev || !dev->driver ||
  7721. !of_device_is_compatible(dev->of_node, "qcom,msm-fastrpc-compute")) {
  7722. ADSPRPC_ERR("Driver not probed yet or not the main device\n");
  7723. return 0;
  7724. }
  7725. return scnprintf(buf, PAGE_SIZE, "%d",
  7726. me->fastrpc_nsp_status);
  7727. }
  7728. /* Remote nsp status attribute declaration as read only */
  7729. static DEVICE_ATTR_RO(fastrpc_nsp_status);
  7730. /* Declaring attribute for remote dsp */
  7731. static struct attribute *msm_remote_dsp_attrs[] = {
  7732. &dev_attr_fastrpc_nsp_status.attr,
  7733. NULL
  7734. };
  7735. /* Defining remote dsp attributes in attributes group */
  7736. static struct attribute_group msm_remote_dsp_attr_group = {
  7737. .attrs = msm_remote_dsp_attrs,
  7738. };
  7739. static int fastrpc_probe(struct platform_device *pdev)
  7740. {
  7741. int err = 0;
  7742. struct fastrpc_apps *me = &gfa;
  7743. struct device *dev = &pdev->dev;
  7744. int ret = 0;
  7745. uint32_t secure_domains = 0;
  7746. if (of_device_is_compatible(dev->of_node,
  7747. "qcom,msm-fastrpc-compute")) {
  7748. err = sysfs_create_group(&pdev->dev.kobj, &msm_remote_dsp_attr_group);
  7749. if (err) {
  7750. ADSPRPC_ERR(
  7751. "Initialization of sysfs create group failed with %d\n",
  7752. err);
  7753. goto bail;
  7754. }
  7755. init_secure_vmid_list(dev, "qcom,adsp-remoteheap-vmid",
  7756. &gcinfo[0].rhvm);
  7757. fastrpc_init_privileged_gids(dev, "qcom,fastrpc-gids",
  7758. &me->gidlist);
  7759. /*
  7760. * Check if latency voting for only one core
  7761. * is enabled for the platform
  7762. */
  7763. me->single_core_latency_vote = of_property_read_bool(dev->of_node,
  7764. "qcom,single-core-latency-vote");
  7765. if (me->single_core_latency_vote)
  7766. me->lowest_capacity_core_count = 1;
  7767. of_property_read_u32(dev->of_node, "qcom,rpc-latency-us",
  7768. &me->latency);
  7769. of_property_read_u32(dev->of_node, "qcom,max-sessions",
  7770. &me->max_sess_per_proc);
  7771. if (of_get_property(dev->of_node,
  7772. "qcom,secure-domains", NULL) != NULL) {
  7773. VERIFY(err, !of_property_read_u32(dev->of_node,
  7774. "qcom,secure-domains",
  7775. &secure_domains));
  7776. if (!err)
  7777. configure_secure_channels(secure_domains);
  7778. else
  7779. pr_info("adsprpc: unable to read the domain configuration from dts\n");
  7780. }
  7781. }
  7782. if (of_device_is_compatible(dev->of_node,
  7783. "qcom,msm-fastrpc-compute-cb"))
  7784. return fastrpc_cb_probe(dev);
  7785. if (of_device_is_compatible(dev->of_node,
  7786. "qcom,msm-adsprpc-mem-region")) {
  7787. me->dev = dev;
  7788. ret = of_reserved_mem_device_init_by_idx(dev, dev->of_node, 0);
  7789. if (ret) {
  7790. pr_warn("adsprpc: Error: %s: initialization of memory region adsp_mem failed with %d\n",
  7791. __func__, ret);
  7792. }
  7793. goto bail;
  7794. }
  7795. me->legacy_remote_heap = of_property_read_bool(dev->of_node,
  7796. "qcom,fastrpc-legacy-remote-heap");
  7797. err = fastrpc_setup_service_locator(dev, AUDIO_PDR_ADSP_DTSI_PROPERTY_NAME,
  7798. AUDIO_PDR_SERVICE_LOCATION_CLIENT_NAME,
  7799. AUDIO_PDR_ADSP_SERVICE_NAME, ADSP_AUDIOPD_NAME);
  7800. if (err)
  7801. goto bail;
  7802. err = fastrpc_setup_service_locator(dev, SENSORS_PDR_ADSP_DTSI_PROPERTY_NAME,
  7803. SENSORS_PDR_ADSP_SERVICE_LOCATION_CLIENT_NAME,
  7804. SENSORS_PDR_ADSP_SERVICE_NAME, ADSP_SENSORPD_NAME);
  7805. if (err)
  7806. goto bail;
  7807. err = fastrpc_setup_service_locator(dev, SENSORS_PDR_SLPI_DTSI_PROPERTY_NAME,
  7808. SENSORS_PDR_SLPI_SERVICE_LOCATION_CLIENT_NAME,
  7809. SENSORS_PDR_SLPI_SERVICE_NAME, SLPI_SENSORPD_NAME);
  7810. if (err)
  7811. goto bail;
  7812. err = of_platform_populate(pdev->dev.of_node,
  7813. fastrpc_match_table,
  7814. NULL, &pdev->dev);
  7815. if (err)
  7816. goto bail;
  7817. bail:
  7818. return err;
  7819. }
  7820. /*
  7821. * Function to free fastrpc genpool buffer
  7822. */
  7823. static void fastrpc_genpool_free(struct fastrpc_session_ctx *sess)
  7824. {
  7825. struct fastrpc_buf *buf = NULL;
  7826. struct iommu_domain *domain = NULL;
  7827. if (!sess)
  7828. goto bail;
  7829. buf = sess->smmu.frpc_genpool_buf;
  7830. if (sess->smmu.frpc_genpool) {
  7831. gen_pool_destroy(sess->smmu.frpc_genpool);
  7832. sess->smmu.frpc_genpool = NULL;
  7833. }
  7834. if (buf && sess->smmu.dev) {
  7835. domain = iommu_get_domain_for_dev(sess->smmu.dev);
  7836. iommu_unmap(domain, sess->smmu.genpool_iova,
  7837. sess->smmu.genpool_size);
  7838. if (buf->phys)
  7839. dma_free_attrs(sess->smmu.dev, buf->size, buf->virt,
  7840. buf->phys, buf->dma_attr);
  7841. kfree(buf);
  7842. sess->smmu.frpc_genpool_buf = NULL;
  7843. }
  7844. bail:
  7845. return;
  7846. }
  7847. static void fastrpc_deinit(void)
  7848. {
  7849. struct fastrpc_channel_ctx *chan = gcinfo;
  7850. struct fastrpc_apps *me = &gfa;
  7851. int i, j;
  7852. for (i = 0; i < NUM_CHANNELS; i++, chan++) {
  7853. for (j = 0; j < NUM_SESSIONS; j++) {
  7854. struct fastrpc_session_ctx *sess = &chan->session[j];
  7855. fastrpc_genpool_free(sess);
  7856. if (sess->smmu.dev)
  7857. sess->smmu.dev = NULL;
  7858. }
  7859. kfree(chan->rhvm.vmid);
  7860. kfree(chan->rhvm.vmperm);
  7861. fastrpc_transport_session_deinit(i);
  7862. mutex_destroy(&chan->smd_mutex);
  7863. }
  7864. if (me->transport_initialized)
  7865. fastrpc_transport_deinit();
  7866. me->transport_initialized = 0;
  7867. mutex_destroy(&me->mut_uid);
  7868. }
  7869. #ifdef CONFIG_HIBERNATION
  7870. static bool hibernation;
  7871. static int fastrpc_hibernation_notifier(struct notifier_block *nb,
  7872. unsigned long event, void *dummy)
  7873. {
  7874. if (event == PM_HIBERNATION_PREPARE)
  7875. hibernation = true;
  7876. else if (event == PM_POST_HIBERNATION)
  7877. hibernation = false;
  7878. return NOTIFY_OK;
  7879. }
  7880. static struct notifier_block fastrpc_notif_block = {
  7881. .notifier_call = fastrpc_hibernation_notifier,
  7882. };
  7883. #endif
  7884. #ifdef CONFIG_PM_SLEEP
  7885. static int fastrpc_hibernation_suspend(struct device *dev)
  7886. {
  7887. int err = 0;
  7888. if (of_device_is_compatible(dev->of_node,
  7889. "qcom,msm-fastrpc-compute")) {
  7890. err = fastrpc_dsp_restart_handler(NULL, 0, true);
  7891. if (err)
  7892. ADSPRPC_WARN("failed to unmap remote heap (err %d)\n",
  7893. err);
  7894. }
  7895. return err;
  7896. }
  7897. static int fastrpc_restore(struct device *dev)
  7898. {
  7899. struct fastrpc_apps *me = &gfa;
  7900. int cid;
  7901. pr_info("adsprpc: restore enter\n");
  7902. for (cid = 0; cid < NUM_CHANNELS; cid++)
  7903. me->channel[cid].in_hib = 1;
  7904. pr_info("adsprpc: restore exit\n");
  7905. return 0;
  7906. }
  7907. static const struct dev_pm_ops fastrpc_pm = {
  7908. .freeze = fastrpc_hibernation_suspend,
  7909. .restore = fastrpc_restore,
  7910. };
  7911. #endif
  7912. static struct platform_driver fastrpc_driver = {
  7913. .probe = fastrpc_probe,
  7914. .driver = {
  7915. .name = "fastrpc",
  7916. .of_match_table = fastrpc_match_table,
  7917. .suppress_bind_attrs = true,
  7918. #ifdef CONFIG_PM_SLEEP
  7919. .pm = &fastrpc_pm,
  7920. #endif
  7921. },
  7922. };
  7923. union fastrpc_dev_param {
  7924. struct fastrpc_dev_map_dma *map;
  7925. struct fastrpc_dev_unmap_dma *unmap;
  7926. struct fastrpc_dev_get_hlos_pid *hpid;
  7927. };
  7928. long fastrpc_dev_map_dma(struct fastrpc_device *dev, unsigned long invoke_param)
  7929. {
  7930. int err = 0;
  7931. union fastrpc_dev_param p;
  7932. struct fastrpc_file *fl = NULL;
  7933. struct fastrpc_mmap *map = NULL;
  7934. struct fastrpc_apps *me = &gfa;
  7935. uintptr_t raddr = 0;
  7936. unsigned long irq_flags = 0;
  7937. bool reftaken = 0;
  7938. p.map = (struct fastrpc_dev_map_dma *)invoke_param;
  7939. spin_lock_irqsave(&me->hlock, irq_flags);
  7940. /* Verify if fastrpc device is closed*/
  7941. VERIFY(err, dev && !dev->dev_close);
  7942. if (err) {
  7943. err = -ESRCH;
  7944. spin_unlock_irqrestore(&me->hlock, irq_flags);
  7945. return err;
  7946. }
  7947. fl = dev->fl;
  7948. /* Verify if fastrpc file is not NULL*/
  7949. if (!fl) {
  7950. err = -EBADF;
  7951. spin_unlock_irqrestore(&me->hlock, irq_flags);
  7952. return err;
  7953. }
  7954. spin_unlock_irqrestore(&me->hlock, irq_flags);
  7955. err = fastrpc_file_get(fl);
  7956. if (err) {
  7957. ADSPRPC_ERR("Failed to get user process reference for fl (%pK)\n", fl);
  7958. goto bail;
  7959. }
  7960. reftaken = 1;
  7961. mutex_lock(&fl->internal_map_mutex);
  7962. spin_lock_irqsave(&me->hlock, irq_flags);
  7963. /* Verify if fastrpc file is being closed, holding device lock*/
  7964. if (fl->file_close) {
  7965. err = -ESRCH;
  7966. spin_unlock_irqrestore(&me->hlock, irq_flags);
  7967. goto bail;
  7968. }
  7969. fl->is_dma_invoke_pend = true;
  7970. spin_unlock_irqrestore(&me->hlock, irq_flags);
  7971. mutex_lock(&fl->map_mutex);
  7972. /* Map DMA buffer on SMMU device*/
  7973. err = fastrpc_mmap_create(fl, -1, p.map->buf,
  7974. p.map->attrs, 0, p.map->size,
  7975. ADSP_MMAP_DMA_BUFFER, &map);
  7976. mutex_unlock(&fl->map_mutex);
  7977. if (err)
  7978. goto bail;
  7979. /* Map DMA buffer on DSP*/
  7980. VERIFY(err, 0 == (err = fastrpc_mmap_on_dsp(fl,
  7981. map->flags, 0, map->phys, map->size, map->refs, &raddr)));
  7982. if (err)
  7983. goto bail;
  7984. map->raddr = raddr;
  7985. p.map->v_dsp_addr = raddr;
  7986. bail:
  7987. if (err && map) {
  7988. mutex_lock(&fl->map_mutex);
  7989. fastrpc_mmap_free(map, 0);
  7990. mutex_unlock(&fl->map_mutex);
  7991. }
  7992. if (fl) {
  7993. spin_lock_irqsave(&me->hlock, irq_flags);
  7994. if (fl->file_close && fl->is_dma_invoke_pend)
  7995. complete(&fl->dma_invoke);
  7996. fl->is_dma_invoke_pend = false;
  7997. spin_unlock_irqrestore(&me->hlock, irq_flags);
  7998. }
  7999. mutex_unlock(&fl->internal_map_mutex);
  8000. if (reftaken)
  8001. fastrpc_file_put(fl);
  8002. return err;
  8003. }
  8004. long fastrpc_dev_unmap_dma(struct fastrpc_device *dev, unsigned long invoke_param)
  8005. {
  8006. int err = 0;
  8007. union fastrpc_dev_param p;
  8008. struct fastrpc_file *fl = NULL;
  8009. struct fastrpc_mmap *map = NULL;
  8010. struct fastrpc_apps *me = &gfa;
  8011. unsigned long irq_flags = 0;
  8012. bool reftaken = 0;
  8013. p.unmap = (struct fastrpc_dev_unmap_dma *)invoke_param;
  8014. spin_lock_irqsave(&me->hlock, irq_flags);
  8015. /* Verify if fastrpc device is closed*/
  8016. VERIFY(err, dev && !dev->dev_close);
  8017. if (err) {
  8018. err = -ESRCH;
  8019. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8020. return err;
  8021. }
  8022. fl = dev->fl;
  8023. /* Verify if fastrpc file is not NULL*/
  8024. if (!fl) {
  8025. err = -EBADF;
  8026. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8027. return err;
  8028. }
  8029. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8030. err = fastrpc_file_get(fl);
  8031. if (err) {
  8032. ADSPRPC_ERR("Failed to get user process reference for fl (%pK)\n", fl);
  8033. goto bail;
  8034. }
  8035. reftaken = 1;
  8036. mutex_lock(&fl->internal_map_mutex);
  8037. spin_lock_irqsave(&me->hlock, irq_flags);
  8038. /* Verify if fastrpc file is being closed, holding device lock*/
  8039. if (fl->file_close) {
  8040. err = -ESRCH;
  8041. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8042. goto bail;
  8043. }
  8044. fl->is_dma_invoke_pend = true;
  8045. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8046. mutex_lock(&fl->map_mutex);
  8047. if (!fastrpc_mmap_find(fl, -1, p.unmap->buf, 0, 0, ADSP_MMAP_DMA_BUFFER, 0, &map)) {
  8048. mutex_unlock(&fl->map_mutex);
  8049. if (err)
  8050. goto bail;
  8051. /* Un-map DMA buffer on DSP*/
  8052. VERIFY(err, !(err = fastrpc_munmap_on_dsp(fl, map->raddr,
  8053. map->phys, map->size, map->flags)));
  8054. if (err)
  8055. goto bail;
  8056. mutex_lock(&fl->map_mutex);
  8057. fastrpc_mmap_free(map, 0);
  8058. }
  8059. mutex_unlock(&fl->map_mutex);
  8060. bail:
  8061. if (fl) {
  8062. spin_lock_irqsave(&me->hlock, irq_flags);
  8063. if (fl->file_close && fl->is_dma_invoke_pend)
  8064. complete(&fl->dma_invoke);
  8065. fl->is_dma_invoke_pend = false;
  8066. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8067. }
  8068. mutex_unlock(&fl->internal_map_mutex);
  8069. if (reftaken)
  8070. fastrpc_file_put(fl);
  8071. return err;
  8072. }
  8073. long fastrpc_dev_get_hlos_pid(struct fastrpc_device *dev, unsigned long invoke_param)
  8074. {
  8075. int err = 0;
  8076. union fastrpc_dev_param p;
  8077. struct fastrpc_file *fl = NULL;
  8078. struct fastrpc_apps *me = &gfa;
  8079. unsigned long irq_flags = 0;
  8080. p.hpid = (struct fastrpc_dev_get_hlos_pid *)invoke_param;
  8081. spin_lock_irqsave(&me->hlock, irq_flags);
  8082. /* Verify if fastrpc device is closed*/
  8083. VERIFY(err, dev && !dev->dev_close);
  8084. if (err) {
  8085. err = -ESRCH;
  8086. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8087. return err;
  8088. }
  8089. fl = dev->fl;
  8090. /* Verify if fastrpc file is not NULL*/
  8091. if (!fl) {
  8092. err = -EBADF;
  8093. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8094. return err;
  8095. }
  8096. p.hpid->hlos_pid = fl->tgid;
  8097. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8098. return err;
  8099. }
  8100. long fastrpc_driver_invoke(struct fastrpc_device *dev, unsigned int invoke_num,
  8101. unsigned long invoke_param)
  8102. {
  8103. int err = 0;
  8104. switch (invoke_num) {
  8105. case FASTRPC_DEV_MAP_DMA:
  8106. err = fastrpc_dev_map_dma(dev, invoke_param);
  8107. break;
  8108. case FASTRPC_DEV_UNMAP_DMA:
  8109. err = fastrpc_dev_unmap_dma(dev, invoke_param);
  8110. break;
  8111. case FASTRPC_DEV_GET_HLOS_PID:
  8112. err = fastrpc_dev_get_hlos_pid(dev, invoke_param);
  8113. break;
  8114. default:
  8115. err = -ENOTTY;
  8116. break;
  8117. }
  8118. return err;
  8119. }
  8120. EXPORT_SYMBOL(fastrpc_driver_invoke);
  8121. static struct device fastrpc_bus = {
  8122. .init_name = "fastrpc"
  8123. };
  8124. static int fastrpc_bus_match(struct device *dev, struct device_driver *driver)
  8125. {
  8126. struct fastrpc_apps *me = &gfa;
  8127. struct fastrpc_driver *frpc_driver = to_fastrpc_driver(driver);
  8128. struct fastrpc_device *frpc_device = to_fastrpc_device(dev);
  8129. unsigned long irq_flags = 0;
  8130. if (frpc_device->handle == frpc_driver->handle) {
  8131. spin_lock_irqsave(&me->hlock, irq_flags);
  8132. /* If device is being closed, fail the match */
  8133. if (frpc_device->dev_close) {
  8134. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8135. return 0;
  8136. }
  8137. frpc_device->refs++;
  8138. frpc_driver->device = dev;
  8139. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8140. return 1;
  8141. }
  8142. return 0;
  8143. }
  8144. static int fastrpc_bus_probe(struct device *dev)
  8145. {
  8146. struct fastrpc_device *frpc_dev = to_fastrpc_device(dev);
  8147. struct fastrpc_driver *frpc_drv = to_fastrpc_driver(dev->driver);
  8148. if (frpc_drv && frpc_drv->probe)
  8149. return frpc_drv->probe(frpc_dev);
  8150. return 0;
  8151. }
  8152. static void fastrpc_bus_remove(struct device *dev)
  8153. {
  8154. struct fastrpc_driver *frpc_drv = to_fastrpc_driver(dev->driver);
  8155. if (frpc_drv && frpc_drv->callback)
  8156. frpc_drv->callback(to_fastrpc_device(dev), FASTRPC_PROC_DOWN);
  8157. }
  8158. static struct bus_type fastrpc_bus_type = {
  8159. .name = "fastrpc",
  8160. .match = fastrpc_bus_match,
  8161. .probe = fastrpc_bus_probe,
  8162. .remove = fastrpc_bus_remove,
  8163. };
  8164. static void fastrpc_dev_release(struct device *dev)
  8165. {
  8166. kfree(to_fastrpc_device(dev));
  8167. }
  8168. static int fastrpc_device_create(struct fastrpc_file *fl)
  8169. {
  8170. int err = 0;
  8171. struct fastrpc_device *frpc_dev;
  8172. struct fastrpc_apps *me = &gfa;
  8173. unsigned long irq_flags = 0;
  8174. frpc_dev = kzalloc(sizeof(*frpc_dev), GFP_KERNEL);
  8175. if (!frpc_dev) {
  8176. err = -ENOMEM;
  8177. goto bail;
  8178. }
  8179. frpc_dev->dev.parent = &fastrpc_bus;
  8180. frpc_dev->dev.bus = &fastrpc_bus_type;
  8181. /* Use HLOS PID, unique fastrpc process ID and CID to create device file,
  8182. * Else names would conflict for multiple sessions
  8183. * And also for better ability to debug
  8184. */
  8185. dev_set_name(&frpc_dev->dev, "%s-%d-%d-%d",
  8186. dev_name(frpc_dev->dev.parent), fl->tgid, fl->tgid_frpc, fl->cid);
  8187. frpc_dev->dev.release = fastrpc_dev_release;
  8188. frpc_dev->fl = fl;
  8189. /* Use unique fastrpc tgid as handle */
  8190. frpc_dev->handle = fl->tgid_frpc;
  8191. err = device_register(&frpc_dev->dev);
  8192. if (err) {
  8193. put_device(&frpc_dev->dev);
  8194. ADSPRPC_ERR(
  8195. "fastrpc device register failed for process %d unique fastrpc tgid %d session %d with error %d\n",
  8196. fl->tgid, fl->tgid_frpc, fl->sessionid, err);
  8197. goto bail;
  8198. }
  8199. fl->device = frpc_dev;
  8200. spin_lock_irqsave(&me->hlock, irq_flags);
  8201. hlist_add_head(&frpc_dev->hn, &me->frpc_devices);
  8202. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8203. bail:
  8204. return err;
  8205. }
  8206. void fastrpc_driver_unregister(struct fastrpc_driver *frpc_driver)
  8207. {
  8208. struct fastrpc_apps *me = &gfa;
  8209. struct device *dev = NULL;
  8210. struct fastrpc_device *frpc_dev = NULL;
  8211. bool is_device_closed = false;
  8212. unsigned long irq_flags = 0;
  8213. spin_lock_irqsave(&me->hlock, irq_flags);
  8214. dev = frpc_driver->device;
  8215. if (dev) {
  8216. frpc_dev = to_fastrpc_device(dev);
  8217. if (frpc_dev->refs > 0)
  8218. frpc_dev->refs--;
  8219. else
  8220. ADSPRPC_ERR("Fastrpc device for driver %s is already freed\n",
  8221. frpc_driver->driver.name);
  8222. if (frpc_dev->dev_close) {
  8223. hlist_del_init(&frpc_dev->hn);
  8224. is_device_closed = true;
  8225. }
  8226. }
  8227. hlist_del_init(&frpc_driver->hn);
  8228. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8229. if (is_device_closed) {
  8230. ADSPRPC_INFO("un-registering fastrpc device with handle %d\n",
  8231. frpc_dev->handle);
  8232. device_unregister(dev);
  8233. }
  8234. driver_unregister(&frpc_driver->driver);
  8235. ADSPRPC_INFO("Un-registering fastrpc driver %s with handle %d\n",
  8236. frpc_driver->driver.name, frpc_driver->handle);
  8237. }
  8238. EXPORT_SYMBOL(fastrpc_driver_unregister);
  8239. int fastrpc_driver_register(struct fastrpc_driver *frpc_driver)
  8240. {
  8241. int err = 0;
  8242. struct fastrpc_apps *me = &gfa;
  8243. unsigned long irq_flags = 0;
  8244. frpc_driver->driver.bus = &fastrpc_bus_type;
  8245. frpc_driver->driver.owner = THIS_MODULE;
  8246. err = driver_register(&frpc_driver->driver);
  8247. if (err) {
  8248. ADSPRPC_ERR("fastrpc driver %s failed to register with error %d\n",
  8249. frpc_driver->driver.name, err);
  8250. goto bail;
  8251. }
  8252. ADSPRPC_INFO("fastrpc driver %s registered with handle %d\n",
  8253. frpc_driver->driver.name, frpc_driver->handle);
  8254. spin_lock_irqsave(&me->hlock, irq_flags);
  8255. hlist_add_head(&frpc_driver->hn, &me->frpc_drivers);
  8256. spin_unlock_irqrestore(&me->hlock, irq_flags);
  8257. bail:
  8258. return err;
  8259. }
  8260. EXPORT_SYMBOL(fastrpc_driver_register);
  8261. static int __init fastrpc_device_init(void)
  8262. {
  8263. struct fastrpc_apps *me = &gfa;
  8264. int err = 0, i;
  8265. uintptr_t attr = 0;
  8266. dma_addr_t region_phys = 0;
  8267. void *region_vaddr = NULL;
  8268. struct fastrpc_buf *buf = NULL;
  8269. debugfs_root = debugfs_create_dir("adsprpc", NULL);
  8270. if (IS_ERR_OR_NULL(debugfs_root)) {
  8271. pr_warn("Error: %s: %s: failed to create debugfs root dir\n",
  8272. current->comm, __func__);
  8273. debugfs_remove_recursive(debugfs_root);
  8274. debugfs_root = NULL;
  8275. }
  8276. memset(me, 0, sizeof(*me));
  8277. fastrpc_init(me);
  8278. fastrpc_get_nsp_status(me);
  8279. me->dev = NULL;
  8280. me->legacy_remote_heap = false;
  8281. err = bus_register(&fastrpc_bus_type);
  8282. if (err) {
  8283. ADSPRPC_ERR("fastrpc bus register failed with err %d\n",
  8284. err);
  8285. goto bus_register_bail;
  8286. }
  8287. err = device_register(&fastrpc_bus);
  8288. if (err) {
  8289. ADSPRPC_ERR("fastrpc bus device register failed with err %d\n",
  8290. err);
  8291. goto bus_device_register_bail;
  8292. }
  8293. me->fastrpc_bus_register = true;
  8294. fastrpc_lowest_capacity_corecount(me);
  8295. VERIFY(err, 0 == platform_driver_register(&fastrpc_driver));
  8296. if (err)
  8297. goto register_bail;
  8298. VERIFY(err, 0 == alloc_chrdev_region(&me->dev_no, 0, NUM_CHANNELS,
  8299. DEVICE_NAME));
  8300. if (err)
  8301. goto alloc_chrdev_bail;
  8302. cdev_init(&me->cdev, &fops);
  8303. me->cdev.owner = THIS_MODULE;
  8304. VERIFY(err, 0 == cdev_add(&me->cdev, MKDEV(MAJOR(me->dev_no), 0),
  8305. NUM_DEVICES));
  8306. if (err)
  8307. goto cdev_init_bail;
  8308. me->class = class_create(THIS_MODULE, "fastrpc");
  8309. VERIFY(err, !IS_ERR(me->class));
  8310. if (err)
  8311. goto class_create_bail;
  8312. #if IS_ENABLED(CONFIG_MSM_ADSPRPC_TRUSTED)
  8313. me->compat = 1;
  8314. #else
  8315. me->compat = (fops.compat_ioctl == NULL) ? 0 : 1;
  8316. #endif
  8317. /*
  8318. * Create devices and register with sysfs
  8319. * Create first device with minor number 0
  8320. */
  8321. me->non_secure_dev = device_create(me->class, NULL,
  8322. MKDEV(MAJOR(me->dev_no), MINOR_NUM_DEV),
  8323. NULL, DEVICE_NAME);
  8324. VERIFY(err, !IS_ERR_OR_NULL(me->non_secure_dev));
  8325. if (err) {
  8326. err = -ENODEV;
  8327. goto device_create_bail;
  8328. }
  8329. /* Create secure device with minor number for secure device */
  8330. me->secure_dev = device_create(me->class, NULL,
  8331. MKDEV(MAJOR(me->dev_no), MINOR_NUM_SECURE_DEV),
  8332. NULL, DEVICE_NAME_SECURE);
  8333. VERIFY(err, !IS_ERR_OR_NULL(me->secure_dev));
  8334. if (err)
  8335. goto device_create_bail;
  8336. for (i = 0; i < NUM_CHANNELS; i++) {
  8337. me->jobid[i] = 1;
  8338. me->channel[i].dev = me->secure_dev;
  8339. me->channel[i].ssrcount = 0;
  8340. me->channel[i].in_hib = 0;
  8341. me->channel[i].prevssrcount = 0;
  8342. me->channel[i].subsystemstate = SUBSYSTEM_UP;
  8343. me->channel[i].rh_dump_dev = NULL;
  8344. me->channel[i].nb.notifier_call = fastrpc_restart_notifier_cb;
  8345. me->channel[i].handle = qcom_register_ssr_notifier(
  8346. gcinfo[i].subsys,
  8347. &me->channel[i].nb);
  8348. if (i == CDSP_DOMAIN_ID) {
  8349. me->channel[i].dev = me->non_secure_dev;
  8350. #if !IS_ENABLED(CONFIG_MSM_ADSPRPC_TRUSTED)
  8351. /*
  8352. * Allocate CMA memory for mini dump.
  8353. * Ignore error as CMA node may not be available on all targets.
  8354. */
  8355. err = fastrpc_alloc_cma_memory(&region_phys,
  8356. &region_vaddr,
  8357. MINI_DUMP_DBG_SIZE,
  8358. (unsigned long)attr);
  8359. #endif
  8360. if (err) {
  8361. ADSPRPC_WARN("CMA alloc failed err 0x%x\n", err);
  8362. err = 0;
  8363. }
  8364. VERIFY(err, NULL != (buf = kzalloc(sizeof(*buf), GFP_KERNEL)));
  8365. if (err) {
  8366. err = -ENOMEM;
  8367. ADSPRPC_WARN("kzalloc failed err 0x%x\n", err);
  8368. err = 0;
  8369. } else {
  8370. INIT_HLIST_NODE(&buf->hn);
  8371. buf->virt = region_vaddr;
  8372. buf->phys = (uintptr_t)region_phys;
  8373. buf->size = MINI_DUMP_DBG_SIZE;
  8374. buf->dma_attr = attr;
  8375. buf->raddr = 0;
  8376. me->channel[i].buf = buf;
  8377. }
  8378. }
  8379. if (IS_ERR_OR_NULL(me->channel[i].handle))
  8380. pr_warn("adsprpc: %s: SSR notifier register failed for %s with err %d\n",
  8381. __func__, gcinfo[i].subsys,
  8382. PTR_ERR(me->channel[i].handle));
  8383. else
  8384. pr_info("adsprpc: %s: SSR notifier registered for %s\n",
  8385. __func__, gcinfo[i].subsys);
  8386. }
  8387. err = fastrpc_transport_init();
  8388. if (err)
  8389. goto device_create_bail;
  8390. me->transport_initialized = 1;
  8391. #ifdef CONFIG_HIBERNATION
  8392. err = register_pm_notifier(&fastrpc_notif_block);
  8393. if (err)
  8394. goto device_create_bail;
  8395. #endif
  8396. fastrpc_register_wakeup_source(me->non_secure_dev,
  8397. FASTRPC_NON_SECURE_WAKE_SOURCE_CLIENT_NAME,
  8398. &me->wake_source);
  8399. fastrpc_register_wakeup_source(me->secure_dev,
  8400. FASTRPC_SECURE_WAKE_SOURCE_CLIENT_NAME,
  8401. &me->wake_source_secure);
  8402. return 0;
  8403. device_create_bail:
  8404. for (i = 0; i < NUM_CHANNELS; i++) {
  8405. if (me->channel[i].handle)
  8406. qcom_unregister_ssr_notifier(me->channel[i].handle,
  8407. &me->channel[i].nb);
  8408. }
  8409. if (!IS_ERR_OR_NULL(me->non_secure_dev))
  8410. device_destroy(me->class, MKDEV(MAJOR(me->dev_no),
  8411. MINOR_NUM_DEV));
  8412. if (!IS_ERR_OR_NULL(me->secure_dev))
  8413. device_destroy(me->class, MKDEV(MAJOR(me->dev_no),
  8414. MINOR_NUM_SECURE_DEV));
  8415. class_destroy(me->class);
  8416. class_create_bail:
  8417. cdev_del(&me->cdev);
  8418. cdev_init_bail:
  8419. unregister_chrdev_region(me->dev_no, NUM_CHANNELS);
  8420. alloc_chrdev_bail:
  8421. platform_driver_unregister(&fastrpc_driver);
  8422. register_bail:
  8423. device_unregister(&fastrpc_bus);
  8424. bus_device_register_bail:
  8425. bus_unregister(&fastrpc_bus_type);
  8426. bus_register_bail:
  8427. fastrpc_deinit();
  8428. return err;
  8429. }
  8430. static void __exit fastrpc_device_exit(void)
  8431. {
  8432. struct fastrpc_apps *me = &gfa;
  8433. int i;
  8434. fastrpc_file_list_dtor(me);
  8435. fastrpc_deinit();
  8436. wakeup_source_unregister(me->wake_source);
  8437. wakeup_source_unregister(me->wake_source_secure);
  8438. for (i = 0; i < NUM_CHANNELS; i++) {
  8439. if (i == CDSP_DOMAIN_ID)
  8440. kfree(me->channel[i].buf);
  8441. if (!gcinfo[i].name)
  8442. continue;
  8443. qcom_unregister_ssr_notifier(me->channel[i].handle,
  8444. &me->channel[i].nb);
  8445. }
  8446. /* Destroy the secure and non secure devices */
  8447. device_destroy(me->class, MKDEV(MAJOR(me->dev_no), MINOR_NUM_DEV));
  8448. device_destroy(me->class, MKDEV(MAJOR(me->dev_no),
  8449. MINOR_NUM_SECURE_DEV));
  8450. of_reserved_mem_device_release(me->dev);
  8451. class_destroy(me->class);
  8452. cdev_del(&me->cdev);
  8453. unregister_chrdev_region(me->dev_no, NUM_CHANNELS);
  8454. if (me->transport_initialized)
  8455. fastrpc_transport_deinit();
  8456. me->transport_initialized = 0;
  8457. if (me->fastrpc_bus_register) {
  8458. bus_unregister(&fastrpc_bus_type);
  8459. device_unregister(&fastrpc_bus);
  8460. }
  8461. kfree(me->gidlist.gids);
  8462. debugfs_remove_recursive(debugfs_root);
  8463. }
  8464. module_init(fastrpc_device_init);
  8465. module_exit(fastrpc_device_exit);
  8466. MODULE_LICENSE("GPL v2");