fsl-mc-bus.c 34 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * Freescale Management Complex (MC) bus driver
  4. *
  5. * Copyright (C) 2014-2016 Freescale Semiconductor, Inc.
  6. * Copyright 2019-2020 NXP
  7. * Author: German Rivera <[email protected]>
  8. *
  9. */
  10. #define pr_fmt(fmt) "fsl-mc: " fmt
  11. #include <linux/module.h>
  12. #include <linux/of_device.h>
  13. #include <linux/of_address.h>
  14. #include <linux/ioport.h>
  15. #include <linux/slab.h>
  16. #include <linux/limits.h>
  17. #include <linux/bitops.h>
  18. #include <linux/msi.h>
  19. #include <linux/dma-mapping.h>
  20. #include <linux/acpi.h>
  21. #include <linux/iommu.h>
  22. #include <linux/dma-map-ops.h>
  23. #include "fsl-mc-private.h"
  24. /*
  25. * Default DMA mask for devices on a fsl-mc bus
  26. */
  27. #define FSL_MC_DEFAULT_DMA_MASK (~0ULL)
  28. static struct fsl_mc_version mc_version;
  29. /**
  30. * struct fsl_mc - Private data of a "fsl,qoriq-mc" platform device
  31. * @root_mc_bus_dev: fsl-mc device representing the root DPRC
  32. * @num_translation_ranges: number of entries in addr_translation_ranges
  33. * @translation_ranges: array of bus to system address translation ranges
  34. * @fsl_mc_regs: base address of register bank
  35. */
  36. struct fsl_mc {
  37. struct fsl_mc_device *root_mc_bus_dev;
  38. u8 num_translation_ranges;
  39. struct fsl_mc_addr_translation_range *translation_ranges;
  40. void __iomem *fsl_mc_regs;
  41. };
  42. /**
  43. * struct fsl_mc_addr_translation_range - bus to system address translation
  44. * range
  45. * @mc_region_type: Type of MC region for the range being translated
  46. * @start_mc_offset: Start MC offset of the range being translated
  47. * @end_mc_offset: MC offset of the first byte after the range (last MC
  48. * offset of the range is end_mc_offset - 1)
  49. * @start_phys_addr: system physical address corresponding to start_mc_addr
  50. */
  51. struct fsl_mc_addr_translation_range {
  52. enum dprc_region_type mc_region_type;
  53. u64 start_mc_offset;
  54. u64 end_mc_offset;
  55. phys_addr_t start_phys_addr;
  56. };
  57. #define FSL_MC_GCR1 0x0
  58. #define GCR1_P1_STOP BIT(31)
  59. #define GCR1_P2_STOP BIT(30)
  60. #define FSL_MC_FAPR 0x28
  61. #define MC_FAPR_PL BIT(18)
  62. #define MC_FAPR_BMT BIT(17)
  63. static phys_addr_t mc_portal_base_phys_addr;
  64. /**
  65. * fsl_mc_bus_match - device to driver matching callback
  66. * @dev: the fsl-mc device to match against
  67. * @drv: the device driver to search for matching fsl-mc object type
  68. * structures
  69. *
  70. * Returns 1 on success, 0 otherwise.
  71. */
  72. static int fsl_mc_bus_match(struct device *dev, struct device_driver *drv)
  73. {
  74. const struct fsl_mc_device_id *id;
  75. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  76. struct fsl_mc_driver *mc_drv = to_fsl_mc_driver(drv);
  77. bool found = false;
  78. /* When driver_override is set, only bind to the matching driver */
  79. if (mc_dev->driver_override) {
  80. found = !strcmp(mc_dev->driver_override, mc_drv->driver.name);
  81. goto out;
  82. }
  83. if (!mc_drv->match_id_table)
  84. goto out;
  85. /*
  86. * If the object is not 'plugged' don't match.
  87. * Only exception is the root DPRC, which is a special case.
  88. */
  89. if ((mc_dev->obj_desc.state & FSL_MC_OBJ_STATE_PLUGGED) == 0 &&
  90. !fsl_mc_is_root_dprc(&mc_dev->dev))
  91. goto out;
  92. /*
  93. * Traverse the match_id table of the given driver, trying to find
  94. * a matching for the given device.
  95. */
  96. for (id = mc_drv->match_id_table; id->vendor != 0x0; id++) {
  97. if (id->vendor == mc_dev->obj_desc.vendor &&
  98. strcmp(id->obj_type, mc_dev->obj_desc.type) == 0) {
  99. found = true;
  100. break;
  101. }
  102. }
  103. out:
  104. dev_dbg(dev, "%smatched\n", found ? "" : "not ");
  105. return found;
  106. }
  107. /*
  108. * fsl_mc_bus_uevent - callback invoked when a device is added
  109. */
  110. static int fsl_mc_bus_uevent(struct device *dev, struct kobj_uevent_env *env)
  111. {
  112. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  113. if (add_uevent_var(env, "MODALIAS=fsl-mc:v%08Xd%s",
  114. mc_dev->obj_desc.vendor,
  115. mc_dev->obj_desc.type))
  116. return -ENOMEM;
  117. return 0;
  118. }
  119. static int fsl_mc_dma_configure(struct device *dev)
  120. {
  121. struct device *dma_dev = dev;
  122. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  123. struct fsl_mc_driver *mc_drv = to_fsl_mc_driver(dev->driver);
  124. u32 input_id = mc_dev->icid;
  125. int ret;
  126. while (dev_is_fsl_mc(dma_dev))
  127. dma_dev = dma_dev->parent;
  128. if (dev_of_node(dma_dev))
  129. ret = of_dma_configure_id(dev, dma_dev->of_node, 0, &input_id);
  130. else
  131. ret = acpi_dma_configure_id(dev, DEV_DMA_COHERENT, &input_id);
  132. if (!ret && !mc_drv->driver_managed_dma) {
  133. ret = iommu_device_use_default_domain(dev);
  134. if (ret)
  135. arch_teardown_dma_ops(dev);
  136. }
  137. return ret;
  138. }
  139. static void fsl_mc_dma_cleanup(struct device *dev)
  140. {
  141. struct fsl_mc_driver *mc_drv = to_fsl_mc_driver(dev->driver);
  142. if (!mc_drv->driver_managed_dma)
  143. iommu_device_unuse_default_domain(dev);
  144. }
  145. static ssize_t modalias_show(struct device *dev, struct device_attribute *attr,
  146. char *buf)
  147. {
  148. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  149. return sprintf(buf, "fsl-mc:v%08Xd%s\n", mc_dev->obj_desc.vendor,
  150. mc_dev->obj_desc.type);
  151. }
  152. static DEVICE_ATTR_RO(modalias);
  153. static ssize_t driver_override_store(struct device *dev,
  154. struct device_attribute *attr,
  155. const char *buf, size_t count)
  156. {
  157. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  158. int ret;
  159. if (WARN_ON(dev->bus != &fsl_mc_bus_type))
  160. return -EINVAL;
  161. ret = driver_set_override(dev, &mc_dev->driver_override, buf, count);
  162. if (ret)
  163. return ret;
  164. return count;
  165. }
  166. static ssize_t driver_override_show(struct device *dev,
  167. struct device_attribute *attr, char *buf)
  168. {
  169. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  170. return snprintf(buf, PAGE_SIZE, "%s\n", mc_dev->driver_override);
  171. }
  172. static DEVICE_ATTR_RW(driver_override);
  173. static struct attribute *fsl_mc_dev_attrs[] = {
  174. &dev_attr_modalias.attr,
  175. &dev_attr_driver_override.attr,
  176. NULL,
  177. };
  178. ATTRIBUTE_GROUPS(fsl_mc_dev);
  179. static int scan_fsl_mc_bus(struct device *dev, void *data)
  180. {
  181. struct fsl_mc_device *root_mc_dev;
  182. struct fsl_mc_bus *root_mc_bus;
  183. if (!fsl_mc_is_root_dprc(dev))
  184. goto exit;
  185. root_mc_dev = to_fsl_mc_device(dev);
  186. root_mc_bus = to_fsl_mc_bus(root_mc_dev);
  187. mutex_lock(&root_mc_bus->scan_mutex);
  188. dprc_scan_objects(root_mc_dev, false);
  189. mutex_unlock(&root_mc_bus->scan_mutex);
  190. exit:
  191. return 0;
  192. }
  193. static ssize_t rescan_store(struct bus_type *bus,
  194. const char *buf, size_t count)
  195. {
  196. unsigned long val;
  197. if (kstrtoul(buf, 0, &val) < 0)
  198. return -EINVAL;
  199. if (val)
  200. bus_for_each_dev(bus, NULL, NULL, scan_fsl_mc_bus);
  201. return count;
  202. }
  203. static BUS_ATTR_WO(rescan);
  204. static int fsl_mc_bus_set_autorescan(struct device *dev, void *data)
  205. {
  206. struct fsl_mc_device *root_mc_dev;
  207. unsigned long val;
  208. char *buf = data;
  209. if (!fsl_mc_is_root_dprc(dev))
  210. goto exit;
  211. root_mc_dev = to_fsl_mc_device(dev);
  212. if (kstrtoul(buf, 0, &val) < 0)
  213. return -EINVAL;
  214. if (val)
  215. enable_dprc_irq(root_mc_dev);
  216. else
  217. disable_dprc_irq(root_mc_dev);
  218. exit:
  219. return 0;
  220. }
  221. static int fsl_mc_bus_get_autorescan(struct device *dev, void *data)
  222. {
  223. struct fsl_mc_device *root_mc_dev;
  224. char *buf = data;
  225. if (!fsl_mc_is_root_dprc(dev))
  226. goto exit;
  227. root_mc_dev = to_fsl_mc_device(dev);
  228. sprintf(buf, "%d\n", get_dprc_irq_state(root_mc_dev));
  229. exit:
  230. return 0;
  231. }
  232. static ssize_t autorescan_store(struct bus_type *bus,
  233. const char *buf, size_t count)
  234. {
  235. bus_for_each_dev(bus, NULL, (void *)buf, fsl_mc_bus_set_autorescan);
  236. return count;
  237. }
  238. static ssize_t autorescan_show(struct bus_type *bus, char *buf)
  239. {
  240. bus_for_each_dev(bus, NULL, (void *)buf, fsl_mc_bus_get_autorescan);
  241. return strlen(buf);
  242. }
  243. static BUS_ATTR_RW(autorescan);
  244. static struct attribute *fsl_mc_bus_attrs[] = {
  245. &bus_attr_rescan.attr,
  246. &bus_attr_autorescan.attr,
  247. NULL,
  248. };
  249. ATTRIBUTE_GROUPS(fsl_mc_bus);
  250. struct bus_type fsl_mc_bus_type = {
  251. .name = "fsl-mc",
  252. .match = fsl_mc_bus_match,
  253. .uevent = fsl_mc_bus_uevent,
  254. .dma_configure = fsl_mc_dma_configure,
  255. .dma_cleanup = fsl_mc_dma_cleanup,
  256. .dev_groups = fsl_mc_dev_groups,
  257. .bus_groups = fsl_mc_bus_groups,
  258. };
  259. EXPORT_SYMBOL_GPL(fsl_mc_bus_type);
  260. struct device_type fsl_mc_bus_dprc_type = {
  261. .name = "fsl_mc_bus_dprc"
  262. };
  263. EXPORT_SYMBOL_GPL(fsl_mc_bus_dprc_type);
  264. struct device_type fsl_mc_bus_dpni_type = {
  265. .name = "fsl_mc_bus_dpni"
  266. };
  267. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpni_type);
  268. struct device_type fsl_mc_bus_dpio_type = {
  269. .name = "fsl_mc_bus_dpio"
  270. };
  271. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpio_type);
  272. struct device_type fsl_mc_bus_dpsw_type = {
  273. .name = "fsl_mc_bus_dpsw"
  274. };
  275. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpsw_type);
  276. struct device_type fsl_mc_bus_dpbp_type = {
  277. .name = "fsl_mc_bus_dpbp"
  278. };
  279. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpbp_type);
  280. struct device_type fsl_mc_bus_dpcon_type = {
  281. .name = "fsl_mc_bus_dpcon"
  282. };
  283. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpcon_type);
  284. struct device_type fsl_mc_bus_dpmcp_type = {
  285. .name = "fsl_mc_bus_dpmcp"
  286. };
  287. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpmcp_type);
  288. struct device_type fsl_mc_bus_dpmac_type = {
  289. .name = "fsl_mc_bus_dpmac"
  290. };
  291. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpmac_type);
  292. struct device_type fsl_mc_bus_dprtc_type = {
  293. .name = "fsl_mc_bus_dprtc"
  294. };
  295. EXPORT_SYMBOL_GPL(fsl_mc_bus_dprtc_type);
  296. struct device_type fsl_mc_bus_dpseci_type = {
  297. .name = "fsl_mc_bus_dpseci"
  298. };
  299. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpseci_type);
  300. struct device_type fsl_mc_bus_dpdmux_type = {
  301. .name = "fsl_mc_bus_dpdmux"
  302. };
  303. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpdmux_type);
  304. struct device_type fsl_mc_bus_dpdcei_type = {
  305. .name = "fsl_mc_bus_dpdcei"
  306. };
  307. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpdcei_type);
  308. struct device_type fsl_mc_bus_dpaiop_type = {
  309. .name = "fsl_mc_bus_dpaiop"
  310. };
  311. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpaiop_type);
  312. struct device_type fsl_mc_bus_dpci_type = {
  313. .name = "fsl_mc_bus_dpci"
  314. };
  315. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpci_type);
  316. struct device_type fsl_mc_bus_dpdmai_type = {
  317. .name = "fsl_mc_bus_dpdmai"
  318. };
  319. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpdmai_type);
  320. struct device_type fsl_mc_bus_dpdbg_type = {
  321. .name = "fsl_mc_bus_dpdbg"
  322. };
  323. EXPORT_SYMBOL_GPL(fsl_mc_bus_dpdbg_type);
  324. static struct device_type *fsl_mc_get_device_type(const char *type)
  325. {
  326. static const struct {
  327. struct device_type *dev_type;
  328. const char *type;
  329. } dev_types[] = {
  330. { &fsl_mc_bus_dprc_type, "dprc" },
  331. { &fsl_mc_bus_dpni_type, "dpni" },
  332. { &fsl_mc_bus_dpio_type, "dpio" },
  333. { &fsl_mc_bus_dpsw_type, "dpsw" },
  334. { &fsl_mc_bus_dpbp_type, "dpbp" },
  335. { &fsl_mc_bus_dpcon_type, "dpcon" },
  336. { &fsl_mc_bus_dpmcp_type, "dpmcp" },
  337. { &fsl_mc_bus_dpmac_type, "dpmac" },
  338. { &fsl_mc_bus_dprtc_type, "dprtc" },
  339. { &fsl_mc_bus_dpseci_type, "dpseci" },
  340. { &fsl_mc_bus_dpdmux_type, "dpdmux" },
  341. { &fsl_mc_bus_dpdcei_type, "dpdcei" },
  342. { &fsl_mc_bus_dpaiop_type, "dpaiop" },
  343. { &fsl_mc_bus_dpci_type, "dpci" },
  344. { &fsl_mc_bus_dpdmai_type, "dpdmai" },
  345. { &fsl_mc_bus_dpdbg_type, "dpdbg" },
  346. { NULL, NULL }
  347. };
  348. int i;
  349. for (i = 0; dev_types[i].dev_type; i++)
  350. if (!strcmp(dev_types[i].type, type))
  351. return dev_types[i].dev_type;
  352. return NULL;
  353. }
  354. static int fsl_mc_driver_probe(struct device *dev)
  355. {
  356. struct fsl_mc_driver *mc_drv;
  357. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  358. int error;
  359. mc_drv = to_fsl_mc_driver(dev->driver);
  360. error = mc_drv->probe(mc_dev);
  361. if (error < 0) {
  362. if (error != -EPROBE_DEFER)
  363. dev_err(dev, "%s failed: %d\n", __func__, error);
  364. return error;
  365. }
  366. return 0;
  367. }
  368. static int fsl_mc_driver_remove(struct device *dev)
  369. {
  370. struct fsl_mc_driver *mc_drv = to_fsl_mc_driver(dev->driver);
  371. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  372. int error;
  373. error = mc_drv->remove(mc_dev);
  374. if (error < 0) {
  375. dev_err(dev, "%s failed: %d\n", __func__, error);
  376. return error;
  377. }
  378. return 0;
  379. }
  380. static void fsl_mc_driver_shutdown(struct device *dev)
  381. {
  382. struct fsl_mc_driver *mc_drv = to_fsl_mc_driver(dev->driver);
  383. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  384. mc_drv->shutdown(mc_dev);
  385. }
  386. /*
  387. * __fsl_mc_driver_register - registers a child device driver with the
  388. * MC bus
  389. *
  390. * This function is implicitly invoked from the registration function of
  391. * fsl_mc device drivers, which is generated by the
  392. * module_fsl_mc_driver() macro.
  393. */
  394. int __fsl_mc_driver_register(struct fsl_mc_driver *mc_driver,
  395. struct module *owner)
  396. {
  397. int error;
  398. mc_driver->driver.owner = owner;
  399. mc_driver->driver.bus = &fsl_mc_bus_type;
  400. if (mc_driver->probe)
  401. mc_driver->driver.probe = fsl_mc_driver_probe;
  402. if (mc_driver->remove)
  403. mc_driver->driver.remove = fsl_mc_driver_remove;
  404. if (mc_driver->shutdown)
  405. mc_driver->driver.shutdown = fsl_mc_driver_shutdown;
  406. error = driver_register(&mc_driver->driver);
  407. if (error < 0) {
  408. pr_err("driver_register() failed for %s: %d\n",
  409. mc_driver->driver.name, error);
  410. return error;
  411. }
  412. return 0;
  413. }
  414. EXPORT_SYMBOL_GPL(__fsl_mc_driver_register);
  415. /*
  416. * fsl_mc_driver_unregister - unregisters a device driver from the
  417. * MC bus
  418. */
  419. void fsl_mc_driver_unregister(struct fsl_mc_driver *mc_driver)
  420. {
  421. driver_unregister(&mc_driver->driver);
  422. }
  423. EXPORT_SYMBOL_GPL(fsl_mc_driver_unregister);
  424. /**
  425. * mc_get_version() - Retrieves the Management Complex firmware
  426. * version information
  427. * @mc_io: Pointer to opaque I/O object
  428. * @cmd_flags: Command flags; one or more of 'MC_CMD_FLAG_'
  429. * @mc_ver_info: Returned version information structure
  430. *
  431. * Return: '0' on Success; Error code otherwise.
  432. */
  433. static int mc_get_version(struct fsl_mc_io *mc_io,
  434. u32 cmd_flags,
  435. struct fsl_mc_version *mc_ver_info)
  436. {
  437. struct fsl_mc_command cmd = { 0 };
  438. struct dpmng_rsp_get_version *rsp_params;
  439. int err;
  440. /* prepare command */
  441. cmd.header = mc_encode_cmd_header(DPMNG_CMDID_GET_VERSION,
  442. cmd_flags,
  443. 0);
  444. /* send command to mc*/
  445. err = mc_send_command(mc_io, &cmd);
  446. if (err)
  447. return err;
  448. /* retrieve response parameters */
  449. rsp_params = (struct dpmng_rsp_get_version *)cmd.params;
  450. mc_ver_info->revision = le32_to_cpu(rsp_params->revision);
  451. mc_ver_info->major = le32_to_cpu(rsp_params->version_major);
  452. mc_ver_info->minor = le32_to_cpu(rsp_params->version_minor);
  453. return 0;
  454. }
  455. /**
  456. * fsl_mc_get_version - function to retrieve the MC f/w version information
  457. *
  458. * Return: mc version when called after fsl-mc-bus probe; NULL otherwise.
  459. */
  460. struct fsl_mc_version *fsl_mc_get_version(void)
  461. {
  462. if (mc_version.major)
  463. return &mc_version;
  464. return NULL;
  465. }
  466. EXPORT_SYMBOL_GPL(fsl_mc_get_version);
  467. /*
  468. * fsl_mc_get_root_dprc - function to traverse to the root dprc
  469. */
  470. void fsl_mc_get_root_dprc(struct device *dev,
  471. struct device **root_dprc_dev)
  472. {
  473. if (!dev) {
  474. *root_dprc_dev = NULL;
  475. } else if (!dev_is_fsl_mc(dev)) {
  476. *root_dprc_dev = NULL;
  477. } else {
  478. *root_dprc_dev = dev;
  479. while (dev_is_fsl_mc((*root_dprc_dev)->parent))
  480. *root_dprc_dev = (*root_dprc_dev)->parent;
  481. }
  482. }
  483. static int get_dprc_attr(struct fsl_mc_io *mc_io,
  484. int container_id, struct dprc_attributes *attr)
  485. {
  486. u16 dprc_handle;
  487. int error;
  488. error = dprc_open(mc_io, 0, container_id, &dprc_handle);
  489. if (error < 0) {
  490. dev_err(mc_io->dev, "dprc_open() failed: %d\n", error);
  491. return error;
  492. }
  493. memset(attr, 0, sizeof(struct dprc_attributes));
  494. error = dprc_get_attributes(mc_io, 0, dprc_handle, attr);
  495. if (error < 0) {
  496. dev_err(mc_io->dev, "dprc_get_attributes() failed: %d\n",
  497. error);
  498. goto common_cleanup;
  499. }
  500. error = 0;
  501. common_cleanup:
  502. (void)dprc_close(mc_io, 0, dprc_handle);
  503. return error;
  504. }
  505. static int get_dprc_icid(struct fsl_mc_io *mc_io,
  506. int container_id, u32 *icid)
  507. {
  508. struct dprc_attributes attr;
  509. int error;
  510. error = get_dprc_attr(mc_io, container_id, &attr);
  511. if (error == 0)
  512. *icid = attr.icid;
  513. return error;
  514. }
  515. static int translate_mc_addr(struct fsl_mc_device *mc_dev,
  516. enum dprc_region_type mc_region_type,
  517. u64 mc_offset, phys_addr_t *phys_addr)
  518. {
  519. int i;
  520. struct device *root_dprc_dev;
  521. struct fsl_mc *mc;
  522. fsl_mc_get_root_dprc(&mc_dev->dev, &root_dprc_dev);
  523. mc = dev_get_drvdata(root_dprc_dev->parent);
  524. if (mc->num_translation_ranges == 0) {
  525. /*
  526. * Do identity mapping:
  527. */
  528. *phys_addr = mc_offset;
  529. return 0;
  530. }
  531. for (i = 0; i < mc->num_translation_ranges; i++) {
  532. struct fsl_mc_addr_translation_range *range =
  533. &mc->translation_ranges[i];
  534. if (mc_region_type == range->mc_region_type &&
  535. mc_offset >= range->start_mc_offset &&
  536. mc_offset < range->end_mc_offset) {
  537. *phys_addr = range->start_phys_addr +
  538. (mc_offset - range->start_mc_offset);
  539. return 0;
  540. }
  541. }
  542. return -EFAULT;
  543. }
  544. static int fsl_mc_device_get_mmio_regions(struct fsl_mc_device *mc_dev,
  545. struct fsl_mc_device *mc_bus_dev)
  546. {
  547. int i;
  548. int error;
  549. struct resource *regions;
  550. struct fsl_mc_obj_desc *obj_desc = &mc_dev->obj_desc;
  551. struct device *parent_dev = mc_dev->dev.parent;
  552. enum dprc_region_type mc_region_type;
  553. if (is_fsl_mc_bus_dprc(mc_dev) ||
  554. is_fsl_mc_bus_dpmcp(mc_dev)) {
  555. mc_region_type = DPRC_REGION_TYPE_MC_PORTAL;
  556. } else if (is_fsl_mc_bus_dpio(mc_dev)) {
  557. mc_region_type = DPRC_REGION_TYPE_QBMAN_PORTAL;
  558. } else {
  559. /*
  560. * This function should not have been called for this MC object
  561. * type, as this object type is not supposed to have MMIO
  562. * regions
  563. */
  564. return -EINVAL;
  565. }
  566. regions = kmalloc_array(obj_desc->region_count,
  567. sizeof(regions[0]), GFP_KERNEL);
  568. if (!regions)
  569. return -ENOMEM;
  570. for (i = 0; i < obj_desc->region_count; i++) {
  571. struct dprc_region_desc region_desc;
  572. error = dprc_get_obj_region(mc_bus_dev->mc_io,
  573. 0,
  574. mc_bus_dev->mc_handle,
  575. obj_desc->type,
  576. obj_desc->id, i, &region_desc);
  577. if (error < 0) {
  578. dev_err(parent_dev,
  579. "dprc_get_obj_region() failed: %d\n", error);
  580. goto error_cleanup_regions;
  581. }
  582. /*
  583. * Older MC only returned region offset and no base address
  584. * If base address is in the region_desc use it otherwise
  585. * revert to old mechanism
  586. */
  587. if (region_desc.base_address) {
  588. regions[i].start = region_desc.base_address +
  589. region_desc.base_offset;
  590. } else {
  591. error = translate_mc_addr(mc_dev, mc_region_type,
  592. region_desc.base_offset,
  593. &regions[i].start);
  594. /*
  595. * Some versions of the MC firmware wrongly report
  596. * 0 for register base address of the DPMCP associated
  597. * with child DPRC objects thus rendering them unusable.
  598. * This is particularly troublesome in ACPI boot
  599. * scenarios where the legacy way of extracting this
  600. * base address from the device tree does not apply.
  601. * Given that DPMCPs share the same base address,
  602. * workaround this by using the base address extracted
  603. * from the root DPRC container.
  604. */
  605. if (is_fsl_mc_bus_dprc(mc_dev) &&
  606. regions[i].start == region_desc.base_offset)
  607. regions[i].start += mc_portal_base_phys_addr;
  608. }
  609. if (error < 0) {
  610. dev_err(parent_dev,
  611. "Invalid MC offset: %#x (for %s.%d\'s region %d)\n",
  612. region_desc.base_offset,
  613. obj_desc->type, obj_desc->id, i);
  614. goto error_cleanup_regions;
  615. }
  616. regions[i].end = regions[i].start + region_desc.size - 1;
  617. regions[i].name = "fsl-mc object MMIO region";
  618. regions[i].flags = region_desc.flags & IORESOURCE_BITS;
  619. regions[i].flags |= IORESOURCE_MEM;
  620. }
  621. mc_dev->regions = regions;
  622. return 0;
  623. error_cleanup_regions:
  624. kfree(regions);
  625. return error;
  626. }
  627. /*
  628. * fsl_mc_is_root_dprc - function to check if a given device is a root dprc
  629. */
  630. bool fsl_mc_is_root_dprc(struct device *dev)
  631. {
  632. struct device *root_dprc_dev;
  633. fsl_mc_get_root_dprc(dev, &root_dprc_dev);
  634. if (!root_dprc_dev)
  635. return false;
  636. return dev == root_dprc_dev;
  637. }
  638. static void fsl_mc_device_release(struct device *dev)
  639. {
  640. struct fsl_mc_device *mc_dev = to_fsl_mc_device(dev);
  641. kfree(mc_dev->regions);
  642. if (is_fsl_mc_bus_dprc(mc_dev))
  643. kfree(to_fsl_mc_bus(mc_dev));
  644. else
  645. kfree(mc_dev);
  646. }
  647. /*
  648. * Add a newly discovered fsl-mc device to be visible in Linux
  649. */
  650. int fsl_mc_device_add(struct fsl_mc_obj_desc *obj_desc,
  651. struct fsl_mc_io *mc_io,
  652. struct device *parent_dev,
  653. struct fsl_mc_device **new_mc_dev)
  654. {
  655. int error;
  656. struct fsl_mc_device *mc_dev = NULL;
  657. struct fsl_mc_bus *mc_bus = NULL;
  658. struct fsl_mc_device *parent_mc_dev;
  659. if (dev_is_fsl_mc(parent_dev))
  660. parent_mc_dev = to_fsl_mc_device(parent_dev);
  661. else
  662. parent_mc_dev = NULL;
  663. if (strcmp(obj_desc->type, "dprc") == 0) {
  664. /*
  665. * Allocate an MC bus device object:
  666. */
  667. mc_bus = kzalloc(sizeof(*mc_bus), GFP_KERNEL);
  668. if (!mc_bus)
  669. return -ENOMEM;
  670. mutex_init(&mc_bus->scan_mutex);
  671. mc_dev = &mc_bus->mc_dev;
  672. } else {
  673. /*
  674. * Allocate a regular fsl_mc_device object:
  675. */
  676. mc_dev = kzalloc(sizeof(*mc_dev), GFP_KERNEL);
  677. if (!mc_dev)
  678. return -ENOMEM;
  679. }
  680. mc_dev->obj_desc = *obj_desc;
  681. mc_dev->mc_io = mc_io;
  682. device_initialize(&mc_dev->dev);
  683. mc_dev->dev.parent = parent_dev;
  684. mc_dev->dev.bus = &fsl_mc_bus_type;
  685. mc_dev->dev.release = fsl_mc_device_release;
  686. mc_dev->dev.type = fsl_mc_get_device_type(obj_desc->type);
  687. if (!mc_dev->dev.type) {
  688. error = -ENODEV;
  689. dev_err(parent_dev, "unknown device type %s\n", obj_desc->type);
  690. goto error_cleanup_dev;
  691. }
  692. dev_set_name(&mc_dev->dev, "%s.%d", obj_desc->type, obj_desc->id);
  693. if (strcmp(obj_desc->type, "dprc") == 0) {
  694. struct fsl_mc_io *mc_io2;
  695. mc_dev->flags |= FSL_MC_IS_DPRC;
  696. /*
  697. * To get the DPRC's ICID, we need to open the DPRC
  698. * in get_dprc_icid(). For child DPRCs, we do so using the
  699. * parent DPRC's MC portal instead of the child DPRC's MC
  700. * portal, in case the child DPRC is already opened with
  701. * its own portal (e.g., the DPRC used by AIOP).
  702. *
  703. * NOTE: There cannot be more than one active open for a
  704. * given MC object, using the same MC portal.
  705. */
  706. if (parent_mc_dev) {
  707. /*
  708. * device being added is a child DPRC device
  709. */
  710. mc_io2 = parent_mc_dev->mc_io;
  711. } else {
  712. /*
  713. * device being added is the root DPRC device
  714. */
  715. if (!mc_io) {
  716. error = -EINVAL;
  717. goto error_cleanup_dev;
  718. }
  719. mc_io2 = mc_io;
  720. }
  721. error = get_dprc_icid(mc_io2, obj_desc->id, &mc_dev->icid);
  722. if (error < 0)
  723. goto error_cleanup_dev;
  724. } else {
  725. /*
  726. * A non-DPRC object has to be a child of a DPRC, use the
  727. * parent's ICID and interrupt domain.
  728. */
  729. mc_dev->icid = parent_mc_dev->icid;
  730. mc_dev->dma_mask = FSL_MC_DEFAULT_DMA_MASK;
  731. mc_dev->dev.dma_mask = &mc_dev->dma_mask;
  732. mc_dev->dev.coherent_dma_mask = mc_dev->dma_mask;
  733. dev_set_msi_domain(&mc_dev->dev,
  734. dev_get_msi_domain(&parent_mc_dev->dev));
  735. }
  736. /*
  737. * Get MMIO regions for the device from the MC:
  738. *
  739. * NOTE: the root DPRC is a special case as its MMIO region is
  740. * obtained from the device tree
  741. */
  742. if (parent_mc_dev && obj_desc->region_count != 0) {
  743. error = fsl_mc_device_get_mmio_regions(mc_dev,
  744. parent_mc_dev);
  745. if (error < 0)
  746. goto error_cleanup_dev;
  747. }
  748. /*
  749. * The device-specific probe callback will get invoked by device_add()
  750. */
  751. error = device_add(&mc_dev->dev);
  752. if (error < 0) {
  753. dev_err(parent_dev,
  754. "device_add() failed for device %s: %d\n",
  755. dev_name(&mc_dev->dev), error);
  756. goto error_cleanup_dev;
  757. }
  758. dev_dbg(parent_dev, "added %s\n", dev_name(&mc_dev->dev));
  759. *new_mc_dev = mc_dev;
  760. return 0;
  761. error_cleanup_dev:
  762. kfree(mc_dev->regions);
  763. kfree(mc_bus);
  764. kfree(mc_dev);
  765. return error;
  766. }
  767. EXPORT_SYMBOL_GPL(fsl_mc_device_add);
  768. static struct notifier_block fsl_mc_nb;
  769. /**
  770. * fsl_mc_device_remove - Remove an fsl-mc device from being visible to
  771. * Linux
  772. *
  773. * @mc_dev: Pointer to an fsl-mc device
  774. */
  775. void fsl_mc_device_remove(struct fsl_mc_device *mc_dev)
  776. {
  777. kfree(mc_dev->driver_override);
  778. mc_dev->driver_override = NULL;
  779. /*
  780. * The device-specific remove callback will get invoked by device_del()
  781. */
  782. device_del(&mc_dev->dev);
  783. put_device(&mc_dev->dev);
  784. }
  785. EXPORT_SYMBOL_GPL(fsl_mc_device_remove);
  786. struct fsl_mc_device *fsl_mc_get_endpoint(struct fsl_mc_device *mc_dev,
  787. u16 if_id)
  788. {
  789. struct fsl_mc_device *mc_bus_dev, *endpoint;
  790. struct fsl_mc_obj_desc endpoint_desc = {{ 0 }};
  791. struct dprc_endpoint endpoint1 = {{ 0 }};
  792. struct dprc_endpoint endpoint2 = {{ 0 }};
  793. int state, err;
  794. mc_bus_dev = to_fsl_mc_device(mc_dev->dev.parent);
  795. strcpy(endpoint1.type, mc_dev->obj_desc.type);
  796. endpoint1.id = mc_dev->obj_desc.id;
  797. endpoint1.if_id = if_id;
  798. err = dprc_get_connection(mc_bus_dev->mc_io, 0,
  799. mc_bus_dev->mc_handle,
  800. &endpoint1, &endpoint2,
  801. &state);
  802. if (err == -ENOTCONN || state == -1)
  803. return ERR_PTR(-ENOTCONN);
  804. if (err < 0) {
  805. dev_err(&mc_bus_dev->dev, "dprc_get_connection() = %d\n", err);
  806. return ERR_PTR(err);
  807. }
  808. strcpy(endpoint_desc.type, endpoint2.type);
  809. endpoint_desc.id = endpoint2.id;
  810. endpoint = fsl_mc_device_lookup(&endpoint_desc, mc_bus_dev);
  811. /*
  812. * We know that the device has an endpoint because we verified by
  813. * interrogating the firmware. This is the case when the device was not
  814. * yet discovered by the fsl-mc bus, thus the lookup returned NULL.
  815. * Force a rescan of the devices in this container and retry the lookup.
  816. */
  817. if (!endpoint) {
  818. struct fsl_mc_bus *mc_bus = to_fsl_mc_bus(mc_bus_dev);
  819. if (mutex_trylock(&mc_bus->scan_mutex)) {
  820. err = dprc_scan_objects(mc_bus_dev, true);
  821. mutex_unlock(&mc_bus->scan_mutex);
  822. }
  823. if (err < 0)
  824. return ERR_PTR(err);
  825. }
  826. endpoint = fsl_mc_device_lookup(&endpoint_desc, mc_bus_dev);
  827. /*
  828. * This means that the endpoint might reside in a different isolation
  829. * context (DPRC/container). Not much to do, so return a permssion
  830. * error.
  831. */
  832. if (!endpoint)
  833. return ERR_PTR(-EPERM);
  834. return endpoint;
  835. }
  836. EXPORT_SYMBOL_GPL(fsl_mc_get_endpoint);
  837. static int parse_mc_ranges(struct device *dev,
  838. int *paddr_cells,
  839. int *mc_addr_cells,
  840. int *mc_size_cells,
  841. const __be32 **ranges_start)
  842. {
  843. const __be32 *prop;
  844. int range_tuple_cell_count;
  845. int ranges_len;
  846. int tuple_len;
  847. struct device_node *mc_node = dev->of_node;
  848. *ranges_start = of_get_property(mc_node, "ranges", &ranges_len);
  849. if (!(*ranges_start) || !ranges_len) {
  850. dev_warn(dev,
  851. "missing or empty ranges property for device tree node '%pOFn'\n",
  852. mc_node);
  853. return 0;
  854. }
  855. *paddr_cells = of_n_addr_cells(mc_node);
  856. prop = of_get_property(mc_node, "#address-cells", NULL);
  857. if (prop)
  858. *mc_addr_cells = be32_to_cpup(prop);
  859. else
  860. *mc_addr_cells = *paddr_cells;
  861. prop = of_get_property(mc_node, "#size-cells", NULL);
  862. if (prop)
  863. *mc_size_cells = be32_to_cpup(prop);
  864. else
  865. *mc_size_cells = of_n_size_cells(mc_node);
  866. range_tuple_cell_count = *paddr_cells + *mc_addr_cells +
  867. *mc_size_cells;
  868. tuple_len = range_tuple_cell_count * sizeof(__be32);
  869. if (ranges_len % tuple_len != 0) {
  870. dev_err(dev, "malformed ranges property '%pOFn'\n", mc_node);
  871. return -EINVAL;
  872. }
  873. return ranges_len / tuple_len;
  874. }
  875. static int get_mc_addr_translation_ranges(struct device *dev,
  876. struct fsl_mc_addr_translation_range
  877. **ranges,
  878. u8 *num_ranges)
  879. {
  880. int ret;
  881. int paddr_cells;
  882. int mc_addr_cells;
  883. int mc_size_cells;
  884. int i;
  885. const __be32 *ranges_start;
  886. const __be32 *cell;
  887. ret = parse_mc_ranges(dev,
  888. &paddr_cells,
  889. &mc_addr_cells,
  890. &mc_size_cells,
  891. &ranges_start);
  892. if (ret < 0)
  893. return ret;
  894. *num_ranges = ret;
  895. if (!ret) {
  896. /*
  897. * Missing or empty ranges property ("ranges;") for the
  898. * 'fsl,qoriq-mc' node. In this case, identity mapping
  899. * will be used.
  900. */
  901. *ranges = NULL;
  902. return 0;
  903. }
  904. *ranges = devm_kcalloc(dev, *num_ranges,
  905. sizeof(struct fsl_mc_addr_translation_range),
  906. GFP_KERNEL);
  907. if (!(*ranges))
  908. return -ENOMEM;
  909. cell = ranges_start;
  910. for (i = 0; i < *num_ranges; ++i) {
  911. struct fsl_mc_addr_translation_range *range = &(*ranges)[i];
  912. range->mc_region_type = of_read_number(cell, 1);
  913. range->start_mc_offset = of_read_number(cell + 1,
  914. mc_addr_cells - 1);
  915. cell += mc_addr_cells;
  916. range->start_phys_addr = of_read_number(cell, paddr_cells);
  917. cell += paddr_cells;
  918. range->end_mc_offset = range->start_mc_offset +
  919. of_read_number(cell, mc_size_cells);
  920. cell += mc_size_cells;
  921. }
  922. return 0;
  923. }
  924. /*
  925. * fsl_mc_bus_probe - callback invoked when the root MC bus is being
  926. * added
  927. */
  928. static int fsl_mc_bus_probe(struct platform_device *pdev)
  929. {
  930. struct fsl_mc_obj_desc obj_desc;
  931. int error;
  932. struct fsl_mc *mc;
  933. struct fsl_mc_device *mc_bus_dev = NULL;
  934. struct fsl_mc_io *mc_io = NULL;
  935. int container_id;
  936. phys_addr_t mc_portal_phys_addr;
  937. u32 mc_portal_size, mc_stream_id;
  938. struct resource *plat_res;
  939. mc = devm_kzalloc(&pdev->dev, sizeof(*mc), GFP_KERNEL);
  940. if (!mc)
  941. return -ENOMEM;
  942. platform_set_drvdata(pdev, mc);
  943. plat_res = platform_get_resource(pdev, IORESOURCE_MEM, 1);
  944. if (plat_res) {
  945. mc->fsl_mc_regs = devm_ioremap_resource(&pdev->dev, plat_res);
  946. if (IS_ERR(mc->fsl_mc_regs))
  947. return PTR_ERR(mc->fsl_mc_regs);
  948. }
  949. if (mc->fsl_mc_regs) {
  950. if (IS_ENABLED(CONFIG_ACPI) && !dev_of_node(&pdev->dev)) {
  951. mc_stream_id = readl(mc->fsl_mc_regs + FSL_MC_FAPR);
  952. /*
  953. * HW ORs the PL and BMT bit, places the result in bit
  954. * 14 of the StreamID and ORs in the ICID. Calculate it
  955. * accordingly.
  956. */
  957. mc_stream_id = (mc_stream_id & 0xffff) |
  958. ((mc_stream_id & (MC_FAPR_PL | MC_FAPR_BMT)) ?
  959. BIT(14) : 0);
  960. error = acpi_dma_configure_id(&pdev->dev,
  961. DEV_DMA_COHERENT,
  962. &mc_stream_id);
  963. if (error == -EPROBE_DEFER)
  964. return error;
  965. if (error)
  966. dev_warn(&pdev->dev,
  967. "failed to configure dma: %d.\n",
  968. error);
  969. }
  970. /*
  971. * Some bootloaders pause the MC firmware before booting the
  972. * kernel so that MC will not cause faults as soon as the
  973. * SMMU probes due to the fact that there's no configuration
  974. * in place for MC.
  975. * At this point MC should have all its SMMU setup done so make
  976. * sure it is resumed.
  977. */
  978. writel(readl(mc->fsl_mc_regs + FSL_MC_GCR1) &
  979. (~(GCR1_P1_STOP | GCR1_P2_STOP)),
  980. mc->fsl_mc_regs + FSL_MC_GCR1);
  981. }
  982. /*
  983. * Get physical address of MC portal for the root DPRC:
  984. */
  985. plat_res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
  986. mc_portal_phys_addr = plat_res->start;
  987. mc_portal_size = resource_size(plat_res);
  988. mc_portal_base_phys_addr = mc_portal_phys_addr & ~0x3ffffff;
  989. error = fsl_create_mc_io(&pdev->dev, mc_portal_phys_addr,
  990. mc_portal_size, NULL,
  991. FSL_MC_IO_ATOMIC_CONTEXT_PORTAL, &mc_io);
  992. if (error < 0)
  993. return error;
  994. error = mc_get_version(mc_io, 0, &mc_version);
  995. if (error != 0) {
  996. dev_err(&pdev->dev,
  997. "mc_get_version() failed with error %d\n", error);
  998. goto error_cleanup_mc_io;
  999. }
  1000. dev_info(&pdev->dev, "MC firmware version: %u.%u.%u\n",
  1001. mc_version.major, mc_version.minor, mc_version.revision);
  1002. if (dev_of_node(&pdev->dev)) {
  1003. error = get_mc_addr_translation_ranges(&pdev->dev,
  1004. &mc->translation_ranges,
  1005. &mc->num_translation_ranges);
  1006. if (error < 0)
  1007. goto error_cleanup_mc_io;
  1008. }
  1009. error = dprc_get_container_id(mc_io, 0, &container_id);
  1010. if (error < 0) {
  1011. dev_err(&pdev->dev,
  1012. "dprc_get_container_id() failed: %d\n", error);
  1013. goto error_cleanup_mc_io;
  1014. }
  1015. memset(&obj_desc, 0, sizeof(struct fsl_mc_obj_desc));
  1016. error = dprc_get_api_version(mc_io, 0,
  1017. &obj_desc.ver_major,
  1018. &obj_desc.ver_minor);
  1019. if (error < 0)
  1020. goto error_cleanup_mc_io;
  1021. obj_desc.vendor = FSL_MC_VENDOR_FREESCALE;
  1022. strcpy(obj_desc.type, "dprc");
  1023. obj_desc.id = container_id;
  1024. obj_desc.irq_count = 1;
  1025. obj_desc.region_count = 0;
  1026. error = fsl_mc_device_add(&obj_desc, mc_io, &pdev->dev, &mc_bus_dev);
  1027. if (error < 0)
  1028. goto error_cleanup_mc_io;
  1029. mc->root_mc_bus_dev = mc_bus_dev;
  1030. mc_bus_dev->dev.fwnode = pdev->dev.fwnode;
  1031. return 0;
  1032. error_cleanup_mc_io:
  1033. fsl_destroy_mc_io(mc_io);
  1034. return error;
  1035. }
  1036. /*
  1037. * fsl_mc_bus_remove - callback invoked when the root MC bus is being
  1038. * removed
  1039. */
  1040. static int fsl_mc_bus_remove(struct platform_device *pdev)
  1041. {
  1042. struct fsl_mc *mc = platform_get_drvdata(pdev);
  1043. struct fsl_mc_io *mc_io;
  1044. if (!fsl_mc_is_root_dprc(&mc->root_mc_bus_dev->dev))
  1045. return -EINVAL;
  1046. mc_io = mc->root_mc_bus_dev->mc_io;
  1047. fsl_mc_device_remove(mc->root_mc_bus_dev);
  1048. fsl_destroy_mc_io(mc_io);
  1049. bus_unregister_notifier(&fsl_mc_bus_type, &fsl_mc_nb);
  1050. if (mc->fsl_mc_regs) {
  1051. /*
  1052. * Pause the MC firmware so that it doesn't crash in certain
  1053. * scenarios, such as kexec.
  1054. */
  1055. writel(readl(mc->fsl_mc_regs + FSL_MC_GCR1) |
  1056. (GCR1_P1_STOP | GCR1_P2_STOP),
  1057. mc->fsl_mc_regs + FSL_MC_GCR1);
  1058. }
  1059. return 0;
  1060. }
  1061. static void fsl_mc_bus_shutdown(struct platform_device *pdev)
  1062. {
  1063. fsl_mc_bus_remove(pdev);
  1064. }
  1065. static const struct of_device_id fsl_mc_bus_match_table[] = {
  1066. {.compatible = "fsl,qoriq-mc",},
  1067. {},
  1068. };
  1069. MODULE_DEVICE_TABLE(of, fsl_mc_bus_match_table);
  1070. static const struct acpi_device_id fsl_mc_bus_acpi_match_table[] = {
  1071. {"NXP0008", 0 },
  1072. { }
  1073. };
  1074. MODULE_DEVICE_TABLE(acpi, fsl_mc_bus_acpi_match_table);
  1075. static struct platform_driver fsl_mc_bus_driver = {
  1076. .driver = {
  1077. .name = "fsl_mc_bus",
  1078. .pm = NULL,
  1079. .of_match_table = fsl_mc_bus_match_table,
  1080. .acpi_match_table = fsl_mc_bus_acpi_match_table,
  1081. },
  1082. .probe = fsl_mc_bus_probe,
  1083. .remove = fsl_mc_bus_remove,
  1084. .shutdown = fsl_mc_bus_shutdown,
  1085. };
  1086. static int fsl_mc_bus_notifier(struct notifier_block *nb,
  1087. unsigned long action, void *data)
  1088. {
  1089. struct device *dev = data;
  1090. struct resource *res;
  1091. void __iomem *fsl_mc_regs;
  1092. if (action != BUS_NOTIFY_ADD_DEVICE)
  1093. return 0;
  1094. if (!of_match_device(fsl_mc_bus_match_table, dev) &&
  1095. !acpi_match_device(fsl_mc_bus_acpi_match_table, dev))
  1096. return 0;
  1097. res = platform_get_resource(to_platform_device(dev), IORESOURCE_MEM, 1);
  1098. if (!res)
  1099. return 0;
  1100. fsl_mc_regs = ioremap(res->start, resource_size(res));
  1101. if (!fsl_mc_regs)
  1102. return 0;
  1103. /*
  1104. * Make sure that the MC firmware is paused before the IOMMU setup for
  1105. * it is done or otherwise the firmware will crash right after the SMMU
  1106. * gets probed and enabled.
  1107. */
  1108. writel(readl(fsl_mc_regs + FSL_MC_GCR1) | (GCR1_P1_STOP | GCR1_P2_STOP),
  1109. fsl_mc_regs + FSL_MC_GCR1);
  1110. iounmap(fsl_mc_regs);
  1111. return 0;
  1112. }
  1113. static struct notifier_block fsl_mc_nb = {
  1114. .notifier_call = fsl_mc_bus_notifier,
  1115. };
  1116. static int __init fsl_mc_bus_driver_init(void)
  1117. {
  1118. int error;
  1119. error = bus_register(&fsl_mc_bus_type);
  1120. if (error < 0) {
  1121. pr_err("bus type registration failed: %d\n", error);
  1122. goto error_cleanup_cache;
  1123. }
  1124. error = platform_driver_register(&fsl_mc_bus_driver);
  1125. if (error < 0) {
  1126. pr_err("platform_driver_register() failed: %d\n", error);
  1127. goto error_cleanup_bus;
  1128. }
  1129. error = dprc_driver_init();
  1130. if (error < 0)
  1131. goto error_cleanup_driver;
  1132. error = fsl_mc_allocator_driver_init();
  1133. if (error < 0)
  1134. goto error_cleanup_dprc_driver;
  1135. return bus_register_notifier(&platform_bus_type, &fsl_mc_nb);
  1136. error_cleanup_dprc_driver:
  1137. dprc_driver_exit();
  1138. error_cleanup_driver:
  1139. platform_driver_unregister(&fsl_mc_bus_driver);
  1140. error_cleanup_bus:
  1141. bus_unregister(&fsl_mc_bus_type);
  1142. error_cleanup_cache:
  1143. return error;
  1144. }
  1145. postcore_initcall(fsl_mc_bus_driver_init);