debugfs_sta.c 32 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Copyright 2003-2005 Devicescape Software, Inc.
  4. * Copyright (c) 2006 Jiri Benc <[email protected]>
  5. * Copyright 2007 Johannes Berg <[email protected]>
  6. * Copyright 2013-2014 Intel Mobile Communications GmbH
  7. * Copyright(c) 2016 Intel Deutschland GmbH
  8. * Copyright (C) 2018 - 2021 Intel Corporation
  9. */
  10. #include <linux/debugfs.h>
  11. #include <linux/ieee80211.h>
  12. #include "ieee80211_i.h"
  13. #include "debugfs.h"
  14. #include "debugfs_sta.h"
  15. #include "sta_info.h"
  16. #include "driver-ops.h"
  17. /* sta attributtes */
  18. #define STA_READ(name, field, format_string) \
  19. static ssize_t sta_ ##name## _read(struct file *file, \
  20. char __user *userbuf, \
  21. size_t count, loff_t *ppos) \
  22. { \
  23. struct sta_info *sta = file->private_data; \
  24. return mac80211_format_buffer(userbuf, count, ppos, \
  25. format_string, sta->field); \
  26. }
  27. #define STA_READ_D(name, field) STA_READ(name, field, "%d\n")
  28. #define STA_OPS(name) \
  29. static const struct file_operations sta_ ##name## _ops = { \
  30. .read = sta_##name##_read, \
  31. .open = simple_open, \
  32. .llseek = generic_file_llseek, \
  33. }
  34. #define STA_OPS_RW(name) \
  35. static const struct file_operations sta_ ##name## _ops = { \
  36. .read = sta_##name##_read, \
  37. .write = sta_##name##_write, \
  38. .open = simple_open, \
  39. .llseek = generic_file_llseek, \
  40. }
  41. #define STA_FILE(name, field, format) \
  42. STA_READ_##format(name, field) \
  43. STA_OPS(name)
  44. STA_FILE(aid, sta.aid, D);
  45. static const char * const sta_flag_names[] = {
  46. #define FLAG(F) [WLAN_STA_##F] = #F
  47. FLAG(AUTH),
  48. FLAG(ASSOC),
  49. FLAG(PS_STA),
  50. FLAG(AUTHORIZED),
  51. FLAG(SHORT_PREAMBLE),
  52. FLAG(WDS),
  53. FLAG(CLEAR_PS_FILT),
  54. FLAG(MFP),
  55. FLAG(BLOCK_BA),
  56. FLAG(PS_DRIVER),
  57. FLAG(PSPOLL),
  58. FLAG(TDLS_PEER),
  59. FLAG(TDLS_PEER_AUTH),
  60. FLAG(TDLS_INITIATOR),
  61. FLAG(TDLS_CHAN_SWITCH),
  62. FLAG(TDLS_OFF_CHANNEL),
  63. FLAG(TDLS_WIDER_BW),
  64. FLAG(UAPSD),
  65. FLAG(SP),
  66. FLAG(4ADDR_EVENT),
  67. FLAG(INSERTED),
  68. FLAG(RATE_CONTROL),
  69. FLAG(TOFFSET_KNOWN),
  70. FLAG(MPSP_OWNER),
  71. FLAG(MPSP_RECIPIENT),
  72. FLAG(PS_DELIVER),
  73. FLAG(USES_ENCRYPTION),
  74. FLAG(DECAP_OFFLOAD),
  75. #undef FLAG
  76. };
  77. static ssize_t sta_flags_read(struct file *file, char __user *userbuf,
  78. size_t count, loff_t *ppos)
  79. {
  80. char buf[16 * NUM_WLAN_STA_FLAGS], *pos = buf;
  81. char *end = buf + sizeof(buf) - 1;
  82. struct sta_info *sta = file->private_data;
  83. unsigned int flg;
  84. BUILD_BUG_ON(ARRAY_SIZE(sta_flag_names) != NUM_WLAN_STA_FLAGS);
  85. for (flg = 0; flg < NUM_WLAN_STA_FLAGS; flg++) {
  86. if (test_sta_flag(sta, flg))
  87. pos += scnprintf(pos, end - pos, "%s\n",
  88. sta_flag_names[flg]);
  89. }
  90. return simple_read_from_buffer(userbuf, count, ppos, buf, strlen(buf));
  91. }
  92. STA_OPS(flags);
  93. static ssize_t sta_num_ps_buf_frames_read(struct file *file,
  94. char __user *userbuf,
  95. size_t count, loff_t *ppos)
  96. {
  97. struct sta_info *sta = file->private_data;
  98. char buf[17*IEEE80211_NUM_ACS], *p = buf;
  99. int ac;
  100. for (ac = 0; ac < IEEE80211_NUM_ACS; ac++)
  101. p += scnprintf(p, sizeof(buf)+buf-p, "AC%d: %d\n", ac,
  102. skb_queue_len(&sta->ps_tx_buf[ac]) +
  103. skb_queue_len(&sta->tx_filtered[ac]));
  104. return simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  105. }
  106. STA_OPS(num_ps_buf_frames);
  107. static ssize_t sta_last_seq_ctrl_read(struct file *file, char __user *userbuf,
  108. size_t count, loff_t *ppos)
  109. {
  110. char buf[15*IEEE80211_NUM_TIDS], *p = buf;
  111. int i;
  112. struct sta_info *sta = file->private_data;
  113. for (i = 0; i < IEEE80211_NUM_TIDS; i++)
  114. p += scnprintf(p, sizeof(buf)+buf-p, "%x ",
  115. le16_to_cpu(sta->last_seq_ctrl[i]));
  116. p += scnprintf(p, sizeof(buf)+buf-p, "\n");
  117. return simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  118. }
  119. STA_OPS(last_seq_ctrl);
  120. #define AQM_TXQ_ENTRY_LEN 130
  121. static ssize_t sta_aqm_read(struct file *file, char __user *userbuf,
  122. size_t count, loff_t *ppos)
  123. {
  124. struct sta_info *sta = file->private_data;
  125. struct ieee80211_local *local = sta->local;
  126. size_t bufsz = AQM_TXQ_ENTRY_LEN * (IEEE80211_NUM_TIDS + 2);
  127. char *buf = kzalloc(bufsz, GFP_KERNEL), *p = buf;
  128. struct txq_info *txqi;
  129. ssize_t rv;
  130. int i;
  131. if (!buf)
  132. return -ENOMEM;
  133. spin_lock_bh(&local->fq.lock);
  134. rcu_read_lock();
  135. p += scnprintf(p,
  136. bufsz + buf - p,
  137. "target %uus interval %uus ecn %s\n",
  138. codel_time_to_us(sta->cparams.target),
  139. codel_time_to_us(sta->cparams.interval),
  140. sta->cparams.ecn ? "yes" : "no");
  141. p += scnprintf(p,
  142. bufsz + buf - p,
  143. "tid ac backlog-bytes backlog-packets new-flows drops marks overlimit collisions tx-bytes tx-packets flags\n");
  144. for (i = 0; i < ARRAY_SIZE(sta->sta.txq); i++) {
  145. if (!sta->sta.txq[i])
  146. continue;
  147. txqi = to_txq_info(sta->sta.txq[i]);
  148. p += scnprintf(p, bufsz + buf - p,
  149. "%d %d %u %u %u %u %u %u %u %u %u 0x%lx(%s%s%s%s)\n",
  150. txqi->txq.tid,
  151. txqi->txq.ac,
  152. txqi->tin.backlog_bytes,
  153. txqi->tin.backlog_packets,
  154. txqi->tin.flows,
  155. txqi->cstats.drop_count,
  156. txqi->cstats.ecn_mark,
  157. txqi->tin.overlimit,
  158. txqi->tin.collisions,
  159. txqi->tin.tx_bytes,
  160. txqi->tin.tx_packets,
  161. txqi->flags,
  162. test_bit(IEEE80211_TXQ_STOP, &txqi->flags) ? "STOP" : "RUN",
  163. test_bit(IEEE80211_TXQ_AMPDU, &txqi->flags) ? " AMPDU" : "",
  164. test_bit(IEEE80211_TXQ_NO_AMSDU, &txqi->flags) ? " NO-AMSDU" : "",
  165. test_bit(IEEE80211_TXQ_DIRTY, &txqi->flags) ? " DIRTY" : "");
  166. }
  167. rcu_read_unlock();
  168. spin_unlock_bh(&local->fq.lock);
  169. rv = simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  170. kfree(buf);
  171. return rv;
  172. }
  173. STA_OPS(aqm);
  174. static ssize_t sta_airtime_read(struct file *file, char __user *userbuf,
  175. size_t count, loff_t *ppos)
  176. {
  177. struct sta_info *sta = file->private_data;
  178. struct ieee80211_local *local = sta->sdata->local;
  179. size_t bufsz = 400;
  180. char *buf = kzalloc(bufsz, GFP_KERNEL), *p = buf;
  181. u64 rx_airtime = 0, tx_airtime = 0;
  182. s32 deficit[IEEE80211_NUM_ACS];
  183. ssize_t rv;
  184. int ac;
  185. if (!buf)
  186. return -ENOMEM;
  187. for (ac = 0; ac < IEEE80211_NUM_ACS; ac++) {
  188. spin_lock_bh(&local->active_txq_lock[ac]);
  189. rx_airtime += sta->airtime[ac].rx_airtime;
  190. tx_airtime += sta->airtime[ac].tx_airtime;
  191. deficit[ac] = sta->airtime[ac].deficit;
  192. spin_unlock_bh(&local->active_txq_lock[ac]);
  193. }
  194. p += scnprintf(p, bufsz + buf - p,
  195. "RX: %llu us\nTX: %llu us\nWeight: %u\n"
  196. "Deficit: VO: %d us VI: %d us BE: %d us BK: %d us\n",
  197. rx_airtime, tx_airtime, sta->airtime_weight,
  198. deficit[0], deficit[1], deficit[2], deficit[3]);
  199. rv = simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  200. kfree(buf);
  201. return rv;
  202. }
  203. static ssize_t sta_airtime_write(struct file *file, const char __user *userbuf,
  204. size_t count, loff_t *ppos)
  205. {
  206. struct sta_info *sta = file->private_data;
  207. struct ieee80211_local *local = sta->sdata->local;
  208. int ac;
  209. for (ac = 0; ac < IEEE80211_NUM_ACS; ac++) {
  210. spin_lock_bh(&local->active_txq_lock[ac]);
  211. sta->airtime[ac].rx_airtime = 0;
  212. sta->airtime[ac].tx_airtime = 0;
  213. sta->airtime[ac].deficit = sta->airtime_weight;
  214. spin_unlock_bh(&local->active_txq_lock[ac]);
  215. }
  216. return count;
  217. }
  218. STA_OPS_RW(airtime);
  219. static ssize_t sta_aql_read(struct file *file, char __user *userbuf,
  220. size_t count, loff_t *ppos)
  221. {
  222. struct sta_info *sta = file->private_data;
  223. struct ieee80211_local *local = sta->sdata->local;
  224. size_t bufsz = 400;
  225. char *buf = kzalloc(bufsz, GFP_KERNEL), *p = buf;
  226. u32 q_depth[IEEE80211_NUM_ACS];
  227. u32 q_limit_l[IEEE80211_NUM_ACS], q_limit_h[IEEE80211_NUM_ACS];
  228. ssize_t rv;
  229. int ac;
  230. if (!buf)
  231. return -ENOMEM;
  232. for (ac = 0; ac < IEEE80211_NUM_ACS; ac++) {
  233. spin_lock_bh(&local->active_txq_lock[ac]);
  234. q_limit_l[ac] = sta->airtime[ac].aql_limit_low;
  235. q_limit_h[ac] = sta->airtime[ac].aql_limit_high;
  236. spin_unlock_bh(&local->active_txq_lock[ac]);
  237. q_depth[ac] = atomic_read(&sta->airtime[ac].aql_tx_pending);
  238. }
  239. p += scnprintf(p, bufsz + buf - p,
  240. "Q depth: VO: %u us VI: %u us BE: %u us BK: %u us\n"
  241. "Q limit[low/high]: VO: %u/%u VI: %u/%u BE: %u/%u BK: %u/%u\n",
  242. q_depth[0], q_depth[1], q_depth[2], q_depth[3],
  243. q_limit_l[0], q_limit_h[0], q_limit_l[1], q_limit_h[1],
  244. q_limit_l[2], q_limit_h[2], q_limit_l[3], q_limit_h[3]);
  245. rv = simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  246. kfree(buf);
  247. return rv;
  248. }
  249. static ssize_t sta_aql_write(struct file *file, const char __user *userbuf,
  250. size_t count, loff_t *ppos)
  251. {
  252. struct sta_info *sta = file->private_data;
  253. u32 ac, q_limit_l, q_limit_h;
  254. char _buf[100] = {}, *buf = _buf;
  255. if (count > sizeof(_buf))
  256. return -EINVAL;
  257. if (copy_from_user(buf, userbuf, count))
  258. return -EFAULT;
  259. buf[sizeof(_buf) - 1] = '\0';
  260. if (sscanf(buf, "limit %u %u %u", &ac, &q_limit_l, &q_limit_h)
  261. != 3)
  262. return -EINVAL;
  263. if (ac >= IEEE80211_NUM_ACS)
  264. return -EINVAL;
  265. sta->airtime[ac].aql_limit_low = q_limit_l;
  266. sta->airtime[ac].aql_limit_high = q_limit_h;
  267. return count;
  268. }
  269. STA_OPS_RW(aql);
  270. static ssize_t sta_agg_status_read(struct file *file, char __user *userbuf,
  271. size_t count, loff_t *ppos)
  272. {
  273. char *buf, *p;
  274. ssize_t bufsz = 71 + IEEE80211_NUM_TIDS * 40;
  275. int i;
  276. struct sta_info *sta = file->private_data;
  277. struct tid_ampdu_rx *tid_rx;
  278. struct tid_ampdu_tx *tid_tx;
  279. ssize_t ret;
  280. buf = kzalloc(bufsz, GFP_KERNEL);
  281. if (!buf)
  282. return -ENOMEM;
  283. p = buf;
  284. rcu_read_lock();
  285. p += scnprintf(p, bufsz + buf - p, "next dialog_token: %#02x\n",
  286. sta->ampdu_mlme.dialog_token_allocator + 1);
  287. p += scnprintf(p, bufsz + buf - p,
  288. "TID\t\tRX\tDTKN\tSSN\t\tTX\tDTKN\tpending\n");
  289. for (i = 0; i < IEEE80211_NUM_TIDS; i++) {
  290. bool tid_rx_valid;
  291. tid_rx = rcu_dereference(sta->ampdu_mlme.tid_rx[i]);
  292. tid_tx = rcu_dereference(sta->ampdu_mlme.tid_tx[i]);
  293. tid_rx_valid = test_bit(i, sta->ampdu_mlme.agg_session_valid);
  294. p += scnprintf(p, bufsz + buf - p, "%02d", i);
  295. p += scnprintf(p, bufsz + buf - p, "\t\t%x",
  296. tid_rx_valid);
  297. p += scnprintf(p, bufsz + buf - p, "\t%#.2x",
  298. tid_rx_valid ?
  299. sta->ampdu_mlme.tid_rx_token[i] : 0);
  300. p += scnprintf(p, bufsz + buf - p, "\t%#.3x",
  301. tid_rx ? tid_rx->ssn : 0);
  302. p += scnprintf(p, bufsz + buf - p, "\t\t%x", !!tid_tx);
  303. p += scnprintf(p, bufsz + buf - p, "\t%#.2x",
  304. tid_tx ? tid_tx->dialog_token : 0);
  305. p += scnprintf(p, bufsz + buf - p, "\t%03d",
  306. tid_tx ? skb_queue_len(&tid_tx->pending) : 0);
  307. p += scnprintf(p, bufsz + buf - p, "\n");
  308. }
  309. rcu_read_unlock();
  310. ret = simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  311. kfree(buf);
  312. return ret;
  313. }
  314. static ssize_t sta_agg_status_write(struct file *file, const char __user *userbuf,
  315. size_t count, loff_t *ppos)
  316. {
  317. char _buf[25] = {}, *buf = _buf;
  318. struct sta_info *sta = file->private_data;
  319. bool start, tx;
  320. unsigned long tid;
  321. char *pos;
  322. int ret, timeout = 5000;
  323. if (count > sizeof(_buf))
  324. return -EINVAL;
  325. if (copy_from_user(buf, userbuf, count))
  326. return -EFAULT;
  327. buf[sizeof(_buf) - 1] = '\0';
  328. pos = buf;
  329. buf = strsep(&pos, " ");
  330. if (!buf)
  331. return -EINVAL;
  332. if (!strcmp(buf, "tx"))
  333. tx = true;
  334. else if (!strcmp(buf, "rx"))
  335. tx = false;
  336. else
  337. return -EINVAL;
  338. buf = strsep(&pos, " ");
  339. if (!buf)
  340. return -EINVAL;
  341. if (!strcmp(buf, "start")) {
  342. start = true;
  343. if (!tx)
  344. return -EINVAL;
  345. } else if (!strcmp(buf, "stop")) {
  346. start = false;
  347. } else {
  348. return -EINVAL;
  349. }
  350. buf = strsep(&pos, " ");
  351. if (!buf)
  352. return -EINVAL;
  353. if (sscanf(buf, "timeout=%d", &timeout) == 1) {
  354. buf = strsep(&pos, " ");
  355. if (!buf || !tx || !start)
  356. return -EINVAL;
  357. }
  358. ret = kstrtoul(buf, 0, &tid);
  359. if (ret || tid >= IEEE80211_NUM_TIDS)
  360. return -EINVAL;
  361. if (tx) {
  362. if (start)
  363. ret = ieee80211_start_tx_ba_session(&sta->sta, tid,
  364. timeout);
  365. else
  366. ret = ieee80211_stop_tx_ba_session(&sta->sta, tid);
  367. } else {
  368. __ieee80211_stop_rx_ba_session(sta, tid, WLAN_BACK_RECIPIENT,
  369. 3, true);
  370. ret = 0;
  371. }
  372. return ret ?: count;
  373. }
  374. STA_OPS_RW(agg_status);
  375. static ssize_t sta_ht_capa_read(struct file *file, char __user *userbuf,
  376. size_t count, loff_t *ppos)
  377. {
  378. #define PRINT_HT_CAP(_cond, _str) \
  379. do { \
  380. if (_cond) \
  381. p += scnprintf(p, bufsz + buf - p, "\t" _str "\n"); \
  382. } while (0)
  383. char *buf, *p;
  384. int i;
  385. ssize_t bufsz = 512;
  386. struct sta_info *sta = file->private_data;
  387. struct ieee80211_sta_ht_cap *htc = &sta->sta.deflink.ht_cap;
  388. ssize_t ret;
  389. buf = kzalloc(bufsz, GFP_KERNEL);
  390. if (!buf)
  391. return -ENOMEM;
  392. p = buf;
  393. p += scnprintf(p, bufsz + buf - p, "ht %ssupported\n",
  394. htc->ht_supported ? "" : "not ");
  395. if (htc->ht_supported) {
  396. p += scnprintf(p, bufsz + buf - p, "cap: %#.4x\n", htc->cap);
  397. PRINT_HT_CAP((htc->cap & BIT(0)), "RX LDPC");
  398. PRINT_HT_CAP((htc->cap & BIT(1)), "HT20/HT40");
  399. PRINT_HT_CAP(!(htc->cap & BIT(1)), "HT20");
  400. PRINT_HT_CAP(((htc->cap >> 2) & 0x3) == 0, "Static SM Power Save");
  401. PRINT_HT_CAP(((htc->cap >> 2) & 0x3) == 1, "Dynamic SM Power Save");
  402. PRINT_HT_CAP(((htc->cap >> 2) & 0x3) == 3, "SM Power Save disabled");
  403. PRINT_HT_CAP((htc->cap & BIT(4)), "RX Greenfield");
  404. PRINT_HT_CAP((htc->cap & BIT(5)), "RX HT20 SGI");
  405. PRINT_HT_CAP((htc->cap & BIT(6)), "RX HT40 SGI");
  406. PRINT_HT_CAP((htc->cap & BIT(7)), "TX STBC");
  407. PRINT_HT_CAP(((htc->cap >> 8) & 0x3) == 0, "No RX STBC");
  408. PRINT_HT_CAP(((htc->cap >> 8) & 0x3) == 1, "RX STBC 1-stream");
  409. PRINT_HT_CAP(((htc->cap >> 8) & 0x3) == 2, "RX STBC 2-streams");
  410. PRINT_HT_CAP(((htc->cap >> 8) & 0x3) == 3, "RX STBC 3-streams");
  411. PRINT_HT_CAP((htc->cap & BIT(10)), "HT Delayed Block Ack");
  412. PRINT_HT_CAP(!(htc->cap & BIT(11)), "Max AMSDU length: "
  413. "3839 bytes");
  414. PRINT_HT_CAP((htc->cap & BIT(11)), "Max AMSDU length: "
  415. "7935 bytes");
  416. /*
  417. * For beacons and probe response this would mean the BSS
  418. * does or does not allow the usage of DSSS/CCK HT40.
  419. * Otherwise it means the STA does or does not use
  420. * DSSS/CCK HT40.
  421. */
  422. PRINT_HT_CAP((htc->cap & BIT(12)), "DSSS/CCK HT40");
  423. PRINT_HT_CAP(!(htc->cap & BIT(12)), "No DSSS/CCK HT40");
  424. /* BIT(13) is reserved */
  425. PRINT_HT_CAP((htc->cap & BIT(14)), "40 MHz Intolerant");
  426. PRINT_HT_CAP((htc->cap & BIT(15)), "L-SIG TXOP protection");
  427. p += scnprintf(p, bufsz + buf - p, "ampdu factor/density: %d/%d\n",
  428. htc->ampdu_factor, htc->ampdu_density);
  429. p += scnprintf(p, bufsz + buf - p, "MCS mask:");
  430. for (i = 0; i < IEEE80211_HT_MCS_MASK_LEN; i++)
  431. p += scnprintf(p, bufsz + buf - p, " %.2x",
  432. htc->mcs.rx_mask[i]);
  433. p += scnprintf(p, bufsz + buf - p, "\n");
  434. /* If not set this is meaningless */
  435. if (le16_to_cpu(htc->mcs.rx_highest)) {
  436. p += scnprintf(p, bufsz + buf - p,
  437. "MCS rx highest: %d Mbps\n",
  438. le16_to_cpu(htc->mcs.rx_highest));
  439. }
  440. p += scnprintf(p, bufsz + buf - p, "MCS tx params: %x\n",
  441. htc->mcs.tx_params);
  442. }
  443. ret = simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  444. kfree(buf);
  445. return ret;
  446. }
  447. STA_OPS(ht_capa);
  448. static ssize_t sta_vht_capa_read(struct file *file, char __user *userbuf,
  449. size_t count, loff_t *ppos)
  450. {
  451. char *buf, *p;
  452. struct sta_info *sta = file->private_data;
  453. struct ieee80211_sta_vht_cap *vhtc = &sta->sta.deflink.vht_cap;
  454. ssize_t ret;
  455. ssize_t bufsz = 512;
  456. buf = kzalloc(bufsz, GFP_KERNEL);
  457. if (!buf)
  458. return -ENOMEM;
  459. p = buf;
  460. p += scnprintf(p, bufsz + buf - p, "VHT %ssupported\n",
  461. vhtc->vht_supported ? "" : "not ");
  462. if (vhtc->vht_supported) {
  463. p += scnprintf(p, bufsz + buf - p, "cap: %#.8x\n",
  464. vhtc->cap);
  465. #define PFLAG(a, b) \
  466. do { \
  467. if (vhtc->cap & IEEE80211_VHT_CAP_ ## a) \
  468. p += scnprintf(p, bufsz + buf - p, \
  469. "\t\t%s\n", b); \
  470. } while (0)
  471. switch (vhtc->cap & 0x3) {
  472. case IEEE80211_VHT_CAP_MAX_MPDU_LENGTH_3895:
  473. p += scnprintf(p, bufsz + buf - p,
  474. "\t\tMAX-MPDU-3895\n");
  475. break;
  476. case IEEE80211_VHT_CAP_MAX_MPDU_LENGTH_7991:
  477. p += scnprintf(p, bufsz + buf - p,
  478. "\t\tMAX-MPDU-7991\n");
  479. break;
  480. case IEEE80211_VHT_CAP_MAX_MPDU_LENGTH_11454:
  481. p += scnprintf(p, bufsz + buf - p,
  482. "\t\tMAX-MPDU-11454\n");
  483. break;
  484. default:
  485. p += scnprintf(p, bufsz + buf - p,
  486. "\t\tMAX-MPDU-UNKNOWN\n");
  487. }
  488. switch (vhtc->cap & IEEE80211_VHT_CAP_SUPP_CHAN_WIDTH_MASK) {
  489. case 0:
  490. p += scnprintf(p, bufsz + buf - p,
  491. "\t\t80Mhz\n");
  492. break;
  493. case IEEE80211_VHT_CAP_SUPP_CHAN_WIDTH_160MHZ:
  494. p += scnprintf(p, bufsz + buf - p,
  495. "\t\t160Mhz\n");
  496. break;
  497. case IEEE80211_VHT_CAP_SUPP_CHAN_WIDTH_160_80PLUS80MHZ:
  498. p += scnprintf(p, bufsz + buf - p,
  499. "\t\t80+80Mhz\n");
  500. break;
  501. default:
  502. p += scnprintf(p, bufsz + buf - p,
  503. "\t\tUNKNOWN-MHZ: 0x%x\n",
  504. (vhtc->cap >> 2) & 0x3);
  505. }
  506. PFLAG(RXLDPC, "RXLDPC");
  507. PFLAG(SHORT_GI_80, "SHORT-GI-80");
  508. PFLAG(SHORT_GI_160, "SHORT-GI-160");
  509. PFLAG(TXSTBC, "TXSTBC");
  510. p += scnprintf(p, bufsz + buf - p,
  511. "\t\tRXSTBC_%d\n", (vhtc->cap >> 8) & 0x7);
  512. PFLAG(SU_BEAMFORMER_CAPABLE, "SU-BEAMFORMER-CAPABLE");
  513. PFLAG(SU_BEAMFORMEE_CAPABLE, "SU-BEAMFORMEE-CAPABLE");
  514. p += scnprintf(p, bufsz + buf - p,
  515. "\t\tBEAMFORMEE-STS: 0x%x\n",
  516. (vhtc->cap & IEEE80211_VHT_CAP_BEAMFORMEE_STS_MASK) >>
  517. IEEE80211_VHT_CAP_BEAMFORMEE_STS_SHIFT);
  518. p += scnprintf(p, bufsz + buf - p,
  519. "\t\tSOUNDING-DIMENSIONS: 0x%x\n",
  520. (vhtc->cap & IEEE80211_VHT_CAP_SOUNDING_DIMENSIONS_MASK)
  521. >> IEEE80211_VHT_CAP_SOUNDING_DIMENSIONS_SHIFT);
  522. PFLAG(MU_BEAMFORMER_CAPABLE, "MU-BEAMFORMER-CAPABLE");
  523. PFLAG(MU_BEAMFORMEE_CAPABLE, "MU-BEAMFORMEE-CAPABLE");
  524. PFLAG(VHT_TXOP_PS, "TXOP-PS");
  525. PFLAG(HTC_VHT, "HTC-VHT");
  526. p += scnprintf(p, bufsz + buf - p,
  527. "\t\tMPDU-LENGTH-EXPONENT: 0x%x\n",
  528. (vhtc->cap & IEEE80211_VHT_CAP_MAX_A_MPDU_LENGTH_EXPONENT_MASK) >>
  529. IEEE80211_VHT_CAP_MAX_A_MPDU_LENGTH_EXPONENT_SHIFT);
  530. PFLAG(VHT_LINK_ADAPTATION_VHT_UNSOL_MFB,
  531. "LINK-ADAPTATION-VHT-UNSOL-MFB");
  532. p += scnprintf(p, bufsz + buf - p,
  533. "\t\tLINK-ADAPTATION-VHT-MRQ-MFB: 0x%x\n",
  534. (vhtc->cap & IEEE80211_VHT_CAP_VHT_LINK_ADAPTATION_VHT_MRQ_MFB) >> 26);
  535. PFLAG(RX_ANTENNA_PATTERN, "RX-ANTENNA-PATTERN");
  536. PFLAG(TX_ANTENNA_PATTERN, "TX-ANTENNA-PATTERN");
  537. p += scnprintf(p, bufsz + buf - p, "RX MCS: %.4x\n",
  538. le16_to_cpu(vhtc->vht_mcs.rx_mcs_map));
  539. if (vhtc->vht_mcs.rx_highest)
  540. p += scnprintf(p, bufsz + buf - p,
  541. "MCS RX highest: %d Mbps\n",
  542. le16_to_cpu(vhtc->vht_mcs.rx_highest));
  543. p += scnprintf(p, bufsz + buf - p, "TX MCS: %.4x\n",
  544. le16_to_cpu(vhtc->vht_mcs.tx_mcs_map));
  545. if (vhtc->vht_mcs.tx_highest)
  546. p += scnprintf(p, bufsz + buf - p,
  547. "MCS TX highest: %d Mbps\n",
  548. le16_to_cpu(vhtc->vht_mcs.tx_highest));
  549. #undef PFLAG
  550. }
  551. ret = simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  552. kfree(buf);
  553. return ret;
  554. }
  555. STA_OPS(vht_capa);
  556. static ssize_t sta_he_capa_read(struct file *file, char __user *userbuf,
  557. size_t count, loff_t *ppos)
  558. {
  559. char *buf, *p;
  560. size_t buf_sz = PAGE_SIZE;
  561. struct sta_info *sta = file->private_data;
  562. struct ieee80211_sta_he_cap *hec = &sta->sta.deflink.he_cap;
  563. struct ieee80211_he_mcs_nss_supp *nss = &hec->he_mcs_nss_supp;
  564. u8 ppe_size;
  565. u8 *cap;
  566. int i;
  567. ssize_t ret;
  568. buf = kmalloc(buf_sz, GFP_KERNEL);
  569. if (!buf)
  570. return -ENOMEM;
  571. p = buf;
  572. p += scnprintf(p, buf_sz + buf - p, "HE %ssupported\n",
  573. hec->has_he ? "" : "not ");
  574. if (!hec->has_he)
  575. goto out;
  576. cap = hec->he_cap_elem.mac_cap_info;
  577. p += scnprintf(p, buf_sz + buf - p,
  578. "MAC-CAP: %#.2x %#.2x %#.2x %#.2x %#.2x %#.2x\n",
  579. cap[0], cap[1], cap[2], cap[3], cap[4], cap[5]);
  580. #define PRINT(fmt, ...) \
  581. p += scnprintf(p, buf_sz + buf - p, "\t\t" fmt "\n", \
  582. ##__VA_ARGS__)
  583. #define PFLAG(t, n, a, b) \
  584. do { \
  585. if (cap[n] & IEEE80211_HE_##t##_CAP##n##_##a) \
  586. PRINT("%s", b); \
  587. } while (0)
  588. #define PFLAG_RANGE(t, i, n, s, m, off, fmt) \
  589. do { \
  590. u8 msk = IEEE80211_HE_##t##_CAP##i##_##n##_MASK; \
  591. u8 idx = ((cap[i] & msk) >> (ffs(msk) - 1)) + off; \
  592. PRINT(fmt, (s << idx) + (m * idx)); \
  593. } while (0)
  594. #define PFLAG_RANGE_DEFAULT(t, i, n, s, m, off, fmt, a, b) \
  595. do { \
  596. if (cap[i] == IEEE80211_HE_##t ##_CAP##i##_##n##_##a) { \
  597. PRINT("%s", b); \
  598. break; \
  599. } \
  600. PFLAG_RANGE(t, i, n, s, m, off, fmt); \
  601. } while (0)
  602. PFLAG(MAC, 0, HTC_HE, "HTC-HE");
  603. PFLAG(MAC, 0, TWT_REQ, "TWT-REQ");
  604. PFLAG(MAC, 0, TWT_RES, "TWT-RES");
  605. PFLAG_RANGE_DEFAULT(MAC, 0, DYNAMIC_FRAG, 0, 1, 0,
  606. "DYNAMIC-FRAG-LEVEL-%d", NOT_SUPP, "NOT-SUPP");
  607. PFLAG_RANGE_DEFAULT(MAC, 0, MAX_NUM_FRAG_MSDU, 1, 0, 0,
  608. "MAX-NUM-FRAG-MSDU-%d", UNLIMITED, "UNLIMITED");
  609. PFLAG_RANGE_DEFAULT(MAC, 1, MIN_FRAG_SIZE, 128, 0, -1,
  610. "MIN-FRAG-SIZE-%d", UNLIMITED, "UNLIMITED");
  611. PFLAG_RANGE_DEFAULT(MAC, 1, TF_MAC_PAD_DUR, 0, 8, 0,
  612. "TF-MAC-PAD-DUR-%dUS", MASK, "UNKNOWN");
  613. PFLAG_RANGE(MAC, 1, MULTI_TID_AGG_RX_QOS, 0, 1, 1,
  614. "MULTI-TID-AGG-RX-QOS-%d");
  615. if (cap[0] & IEEE80211_HE_MAC_CAP0_HTC_HE) {
  616. switch (((cap[2] << 1) | (cap[1] >> 7)) & 0x3) {
  617. case 0:
  618. PRINT("LINK-ADAPTATION-NO-FEEDBACK");
  619. break;
  620. case 1:
  621. PRINT("LINK-ADAPTATION-RESERVED");
  622. break;
  623. case 2:
  624. PRINT("LINK-ADAPTATION-UNSOLICITED-FEEDBACK");
  625. break;
  626. case 3:
  627. PRINT("LINK-ADAPTATION-BOTH");
  628. break;
  629. }
  630. }
  631. PFLAG(MAC, 2, ALL_ACK, "ALL-ACK");
  632. PFLAG(MAC, 2, TRS, "TRS");
  633. PFLAG(MAC, 2, BSR, "BSR");
  634. PFLAG(MAC, 2, BCAST_TWT, "BCAST-TWT");
  635. PFLAG(MAC, 2, 32BIT_BA_BITMAP, "32BIT-BA-BITMAP");
  636. PFLAG(MAC, 2, MU_CASCADING, "MU-CASCADING");
  637. PFLAG(MAC, 2, ACK_EN, "ACK-EN");
  638. PFLAG(MAC, 3, OMI_CONTROL, "OMI-CONTROL");
  639. PFLAG(MAC, 3, OFDMA_RA, "OFDMA-RA");
  640. switch (cap[3] & IEEE80211_HE_MAC_CAP3_MAX_AMPDU_LEN_EXP_MASK) {
  641. case IEEE80211_HE_MAC_CAP3_MAX_AMPDU_LEN_EXP_EXT_0:
  642. PRINT("MAX-AMPDU-LEN-EXP-USE-EXT-0");
  643. break;
  644. case IEEE80211_HE_MAC_CAP3_MAX_AMPDU_LEN_EXP_EXT_1:
  645. PRINT("MAX-AMPDU-LEN-EXP-VHT-EXT-1");
  646. break;
  647. case IEEE80211_HE_MAC_CAP3_MAX_AMPDU_LEN_EXP_EXT_2:
  648. PRINT("MAX-AMPDU-LEN-EXP-VHT-EXT-2");
  649. break;
  650. case IEEE80211_HE_MAC_CAP3_MAX_AMPDU_LEN_EXP_EXT_3:
  651. PRINT("MAX-AMPDU-LEN-EXP-VHT-EXT-3");
  652. break;
  653. }
  654. PFLAG(MAC, 3, AMSDU_FRAG, "AMSDU-FRAG");
  655. PFLAG(MAC, 3, FLEX_TWT_SCHED, "FLEX-TWT-SCHED");
  656. PFLAG(MAC, 3, RX_CTRL_FRAME_TO_MULTIBSS, "RX-CTRL-FRAME-TO-MULTIBSS");
  657. PFLAG(MAC, 4, BSRP_BQRP_A_MPDU_AGG, "BSRP-BQRP-A-MPDU-AGG");
  658. PFLAG(MAC, 4, QTP, "QTP");
  659. PFLAG(MAC, 4, BQR, "BQR");
  660. PFLAG(MAC, 4, PSR_RESP, "PSR-RESP");
  661. PFLAG(MAC, 4, NDP_FB_REP, "NDP-FB-REP");
  662. PFLAG(MAC, 4, OPS, "OPS");
  663. PFLAG(MAC, 4, AMSDU_IN_AMPDU, "AMSDU-IN-AMPDU");
  664. PRINT("MULTI-TID-AGG-TX-QOS-%d", ((cap[5] << 1) | (cap[4] >> 7)) & 0x7);
  665. PFLAG(MAC, 5, SUBCHAN_SELECTIVE_TRANSMISSION,
  666. "SUBCHAN-SELECTIVE-TRANSMISSION");
  667. PFLAG(MAC, 5, UL_2x996_TONE_RU, "UL-2x996-TONE-RU");
  668. PFLAG(MAC, 5, OM_CTRL_UL_MU_DATA_DIS_RX, "OM-CTRL-UL-MU-DATA-DIS-RX");
  669. PFLAG(MAC, 5, HE_DYNAMIC_SM_PS, "HE-DYNAMIC-SM-PS");
  670. PFLAG(MAC, 5, PUNCTURED_SOUNDING, "PUNCTURED-SOUNDING");
  671. PFLAG(MAC, 5, HT_VHT_TRIG_FRAME_RX, "HT-VHT-TRIG-FRAME-RX");
  672. cap = hec->he_cap_elem.phy_cap_info;
  673. p += scnprintf(p, buf_sz + buf - p,
  674. "PHY CAP: %#.2x %#.2x %#.2x %#.2x %#.2x %#.2x %#.2x %#.2x %#.2x %#.2x %#.2x\n",
  675. cap[0], cap[1], cap[2], cap[3], cap[4], cap[5], cap[6],
  676. cap[7], cap[8], cap[9], cap[10]);
  677. PFLAG(PHY, 0, CHANNEL_WIDTH_SET_40MHZ_IN_2G,
  678. "CHANNEL-WIDTH-SET-40MHZ-IN-2G");
  679. PFLAG(PHY, 0, CHANNEL_WIDTH_SET_40MHZ_80MHZ_IN_5G,
  680. "CHANNEL-WIDTH-SET-40MHZ-80MHZ-IN-5G");
  681. PFLAG(PHY, 0, CHANNEL_WIDTH_SET_160MHZ_IN_5G,
  682. "CHANNEL-WIDTH-SET-160MHZ-IN-5G");
  683. PFLAG(PHY, 0, CHANNEL_WIDTH_SET_80PLUS80_MHZ_IN_5G,
  684. "CHANNEL-WIDTH-SET-80PLUS80-MHZ-IN-5G");
  685. PFLAG(PHY, 0, CHANNEL_WIDTH_SET_RU_MAPPING_IN_2G,
  686. "CHANNEL-WIDTH-SET-RU-MAPPING-IN-2G");
  687. PFLAG(PHY, 0, CHANNEL_WIDTH_SET_RU_MAPPING_IN_5G,
  688. "CHANNEL-WIDTH-SET-RU-MAPPING-IN-5G");
  689. switch (cap[1] & IEEE80211_HE_PHY_CAP1_PREAMBLE_PUNC_RX_MASK) {
  690. case IEEE80211_HE_PHY_CAP1_PREAMBLE_PUNC_RX_80MHZ_ONLY_SECOND_20MHZ:
  691. PRINT("PREAMBLE-PUNC-RX-80MHZ-ONLY-SECOND-20MHZ");
  692. break;
  693. case IEEE80211_HE_PHY_CAP1_PREAMBLE_PUNC_RX_80MHZ_ONLY_SECOND_40MHZ:
  694. PRINT("PREAMBLE-PUNC-RX-80MHZ-ONLY-SECOND-40MHZ");
  695. break;
  696. case IEEE80211_HE_PHY_CAP1_PREAMBLE_PUNC_RX_160MHZ_ONLY_SECOND_20MHZ:
  697. PRINT("PREAMBLE-PUNC-RX-160MHZ-ONLY-SECOND-20MHZ");
  698. break;
  699. case IEEE80211_HE_PHY_CAP1_PREAMBLE_PUNC_RX_160MHZ_ONLY_SECOND_40MHZ:
  700. PRINT("PREAMBLE-PUNC-RX-160MHZ-ONLY-SECOND-40MHZ");
  701. break;
  702. }
  703. PFLAG(PHY, 1, DEVICE_CLASS_A,
  704. "IEEE80211-HE-PHY-CAP1-DEVICE-CLASS-A");
  705. PFLAG(PHY, 1, LDPC_CODING_IN_PAYLOAD,
  706. "LDPC-CODING-IN-PAYLOAD");
  707. PFLAG(PHY, 1, HE_LTF_AND_GI_FOR_HE_PPDUS_0_8US,
  708. "HY-CAP1-HE-LTF-AND-GI-FOR-HE-PPDUS-0-8US");
  709. PRINT("MIDAMBLE-RX-MAX-NSTS-%d", ((cap[2] << 1) | (cap[1] >> 7)) & 0x3);
  710. PFLAG(PHY, 2, NDP_4x_LTF_AND_3_2US, "NDP-4X-LTF-AND-3-2US");
  711. PFLAG(PHY, 2, STBC_TX_UNDER_80MHZ, "STBC-TX-UNDER-80MHZ");
  712. PFLAG(PHY, 2, STBC_RX_UNDER_80MHZ, "STBC-RX-UNDER-80MHZ");
  713. PFLAG(PHY, 2, DOPPLER_TX, "DOPPLER-TX");
  714. PFLAG(PHY, 2, DOPPLER_RX, "DOPPLER-RX");
  715. PFLAG(PHY, 2, UL_MU_FULL_MU_MIMO, "UL-MU-FULL-MU-MIMO");
  716. PFLAG(PHY, 2, UL_MU_PARTIAL_MU_MIMO, "UL-MU-PARTIAL-MU-MIMO");
  717. switch (cap[3] & IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_TX_MASK) {
  718. case IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_TX_NO_DCM:
  719. PRINT("DCM-MAX-CONST-TX-NO-DCM");
  720. break;
  721. case IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_TX_BPSK:
  722. PRINT("DCM-MAX-CONST-TX-BPSK");
  723. break;
  724. case IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_TX_QPSK:
  725. PRINT("DCM-MAX-CONST-TX-QPSK");
  726. break;
  727. case IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_TX_16_QAM:
  728. PRINT("DCM-MAX-CONST-TX-16-QAM");
  729. break;
  730. }
  731. PFLAG(PHY, 3, DCM_MAX_TX_NSS_1, "DCM-MAX-TX-NSS-1");
  732. PFLAG(PHY, 3, DCM_MAX_TX_NSS_2, "DCM-MAX-TX-NSS-2");
  733. switch (cap[3] & IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_RX_MASK) {
  734. case IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_RX_NO_DCM:
  735. PRINT("DCM-MAX-CONST-RX-NO-DCM");
  736. break;
  737. case IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_RX_BPSK:
  738. PRINT("DCM-MAX-CONST-RX-BPSK");
  739. break;
  740. case IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_RX_QPSK:
  741. PRINT("DCM-MAX-CONST-RX-QPSK");
  742. break;
  743. case IEEE80211_HE_PHY_CAP3_DCM_MAX_CONST_RX_16_QAM:
  744. PRINT("DCM-MAX-CONST-RX-16-QAM");
  745. break;
  746. }
  747. PFLAG(PHY, 3, DCM_MAX_RX_NSS_1, "DCM-MAX-RX-NSS-1");
  748. PFLAG(PHY, 3, DCM_MAX_RX_NSS_2, "DCM-MAX-RX-NSS-2");
  749. PFLAG(PHY, 3, RX_PARTIAL_BW_SU_IN_20MHZ_MU,
  750. "RX-PARTIAL-BW-SU-IN-20MHZ-MU");
  751. PFLAG(PHY, 3, SU_BEAMFORMER, "SU-BEAMFORMER");
  752. PFLAG(PHY, 4, SU_BEAMFORMEE, "SU-BEAMFORMEE");
  753. PFLAG(PHY, 4, MU_BEAMFORMER, "MU-BEAMFORMER");
  754. PFLAG_RANGE(PHY, 4, BEAMFORMEE_MAX_STS_UNDER_80MHZ, 0, 1, 4,
  755. "BEAMFORMEE-MAX-STS-UNDER-%d");
  756. PFLAG_RANGE(PHY, 4, BEAMFORMEE_MAX_STS_ABOVE_80MHZ, 0, 1, 4,
  757. "BEAMFORMEE-MAX-STS-ABOVE-%d");
  758. PFLAG_RANGE(PHY, 5, BEAMFORMEE_NUM_SND_DIM_UNDER_80MHZ, 0, 1, 1,
  759. "NUM-SND-DIM-UNDER-80MHZ-%d");
  760. PFLAG_RANGE(PHY, 5, BEAMFORMEE_NUM_SND_DIM_ABOVE_80MHZ, 0, 1, 1,
  761. "NUM-SND-DIM-ABOVE-80MHZ-%d");
  762. PFLAG(PHY, 5, NG16_SU_FEEDBACK, "NG16-SU-FEEDBACK");
  763. PFLAG(PHY, 5, NG16_MU_FEEDBACK, "NG16-MU-FEEDBACK");
  764. PFLAG(PHY, 6, CODEBOOK_SIZE_42_SU, "CODEBOOK-SIZE-42-SU");
  765. PFLAG(PHY, 6, CODEBOOK_SIZE_75_MU, "CODEBOOK-SIZE-75-MU");
  766. PFLAG(PHY, 6, TRIG_SU_BEAMFORMING_FB, "TRIG-SU-BEAMFORMING-FB");
  767. PFLAG(PHY, 6, TRIG_MU_BEAMFORMING_PARTIAL_BW_FB,
  768. "MU-BEAMFORMING-PARTIAL-BW-FB");
  769. PFLAG(PHY, 6, TRIG_CQI_FB, "TRIG-CQI-FB");
  770. PFLAG(PHY, 6, PARTIAL_BW_EXT_RANGE, "PARTIAL-BW-EXT-RANGE");
  771. PFLAG(PHY, 6, PARTIAL_BANDWIDTH_DL_MUMIMO,
  772. "PARTIAL-BANDWIDTH-DL-MUMIMO");
  773. PFLAG(PHY, 6, PPE_THRESHOLD_PRESENT, "PPE-THRESHOLD-PRESENT");
  774. PFLAG(PHY, 7, PSR_BASED_SR, "PSR-BASED-SR");
  775. PFLAG(PHY, 7, POWER_BOOST_FACTOR_SUPP, "POWER-BOOST-FACTOR-SUPP");
  776. PFLAG(PHY, 7, HE_SU_MU_PPDU_4XLTF_AND_08_US_GI,
  777. "HE-SU-MU-PPDU-4XLTF-AND-08-US-GI");
  778. PFLAG_RANGE(PHY, 7, MAX_NC, 0, 1, 1, "MAX-NC-%d");
  779. PFLAG(PHY, 7, STBC_TX_ABOVE_80MHZ, "STBC-TX-ABOVE-80MHZ");
  780. PFLAG(PHY, 7, STBC_RX_ABOVE_80MHZ, "STBC-RX-ABOVE-80MHZ");
  781. PFLAG(PHY, 8, HE_ER_SU_PPDU_4XLTF_AND_08_US_GI,
  782. "HE-ER-SU-PPDU-4XLTF-AND-08-US-GI");
  783. PFLAG(PHY, 8, 20MHZ_IN_40MHZ_HE_PPDU_IN_2G,
  784. "20MHZ-IN-40MHZ-HE-PPDU-IN-2G");
  785. PFLAG(PHY, 8, 20MHZ_IN_160MHZ_HE_PPDU, "20MHZ-IN-160MHZ-HE-PPDU");
  786. PFLAG(PHY, 8, 80MHZ_IN_160MHZ_HE_PPDU, "80MHZ-IN-160MHZ-HE-PPDU");
  787. PFLAG(PHY, 8, HE_ER_SU_1XLTF_AND_08_US_GI,
  788. "HE-ER-SU-1XLTF-AND-08-US-GI");
  789. PFLAG(PHY, 8, MIDAMBLE_RX_TX_2X_AND_1XLTF,
  790. "MIDAMBLE-RX-TX-2X-AND-1XLTF");
  791. switch (cap[8] & IEEE80211_HE_PHY_CAP8_DCM_MAX_RU_MASK) {
  792. case IEEE80211_HE_PHY_CAP8_DCM_MAX_RU_242:
  793. PRINT("DCM-MAX-RU-242");
  794. break;
  795. case IEEE80211_HE_PHY_CAP8_DCM_MAX_RU_484:
  796. PRINT("DCM-MAX-RU-484");
  797. break;
  798. case IEEE80211_HE_PHY_CAP8_DCM_MAX_RU_996:
  799. PRINT("DCM-MAX-RU-996");
  800. break;
  801. case IEEE80211_HE_PHY_CAP8_DCM_MAX_RU_2x996:
  802. PRINT("DCM-MAX-RU-2x996");
  803. break;
  804. }
  805. PFLAG(PHY, 9, LONGER_THAN_16_SIGB_OFDM_SYM,
  806. "LONGER-THAN-16-SIGB-OFDM-SYM");
  807. PFLAG(PHY, 9, NON_TRIGGERED_CQI_FEEDBACK,
  808. "NON-TRIGGERED-CQI-FEEDBACK");
  809. PFLAG(PHY, 9, TX_1024_QAM_LESS_THAN_242_TONE_RU,
  810. "TX-1024-QAM-LESS-THAN-242-TONE-RU");
  811. PFLAG(PHY, 9, RX_1024_QAM_LESS_THAN_242_TONE_RU,
  812. "RX-1024-QAM-LESS-THAN-242-TONE-RU");
  813. PFLAG(PHY, 9, RX_FULL_BW_SU_USING_MU_WITH_COMP_SIGB,
  814. "RX-FULL-BW-SU-USING-MU-WITH-COMP-SIGB");
  815. PFLAG(PHY, 9, RX_FULL_BW_SU_USING_MU_WITH_NON_COMP_SIGB,
  816. "RX-FULL-BW-SU-USING-MU-WITH-NON-COMP-SIGB");
  817. switch (u8_get_bits(cap[9],
  818. IEEE80211_HE_PHY_CAP9_NOMINAL_PKT_PADDING_MASK)) {
  819. case IEEE80211_HE_PHY_CAP9_NOMINAL_PKT_PADDING_0US:
  820. PRINT("NOMINAL-PACKET-PADDING-0US");
  821. break;
  822. case IEEE80211_HE_PHY_CAP9_NOMINAL_PKT_PADDING_8US:
  823. PRINT("NOMINAL-PACKET-PADDING-8US");
  824. break;
  825. case IEEE80211_HE_PHY_CAP9_NOMINAL_PKT_PADDING_16US:
  826. PRINT("NOMINAL-PACKET-PADDING-16US");
  827. break;
  828. }
  829. #undef PFLAG_RANGE_DEFAULT
  830. #undef PFLAG_RANGE
  831. #undef PFLAG
  832. #define PRINT_NSS_SUPP(f, n) \
  833. do { \
  834. int _i; \
  835. u16 v = le16_to_cpu(nss->f); \
  836. p += scnprintf(p, buf_sz + buf - p, n ": %#.4x\n", v); \
  837. for (_i = 0; _i < 8; _i += 2) { \
  838. switch ((v >> _i) & 0x3) { \
  839. case 0: \
  840. PRINT(n "-%d-SUPPORT-0-7", _i / 2); \
  841. break; \
  842. case 1: \
  843. PRINT(n "-%d-SUPPORT-0-9", _i / 2); \
  844. break; \
  845. case 2: \
  846. PRINT(n "-%d-SUPPORT-0-11", _i / 2); \
  847. break; \
  848. case 3: \
  849. PRINT(n "-%d-NOT-SUPPORTED", _i / 2); \
  850. break; \
  851. } \
  852. } \
  853. } while (0)
  854. PRINT_NSS_SUPP(rx_mcs_80, "RX-MCS-80");
  855. PRINT_NSS_SUPP(tx_mcs_80, "TX-MCS-80");
  856. if (cap[0] & IEEE80211_HE_PHY_CAP0_CHANNEL_WIDTH_SET_160MHZ_IN_5G) {
  857. PRINT_NSS_SUPP(rx_mcs_160, "RX-MCS-160");
  858. PRINT_NSS_SUPP(tx_mcs_160, "TX-MCS-160");
  859. }
  860. if (cap[0] &
  861. IEEE80211_HE_PHY_CAP0_CHANNEL_WIDTH_SET_80PLUS80_MHZ_IN_5G) {
  862. PRINT_NSS_SUPP(rx_mcs_80p80, "RX-MCS-80P80");
  863. PRINT_NSS_SUPP(tx_mcs_80p80, "TX-MCS-80P80");
  864. }
  865. #undef PRINT_NSS_SUPP
  866. #undef PRINT
  867. if (!(cap[6] & IEEE80211_HE_PHY_CAP6_PPE_THRESHOLD_PRESENT))
  868. goto out;
  869. p += scnprintf(p, buf_sz + buf - p, "PPE-THRESHOLDS: %#.2x",
  870. hec->ppe_thres[0]);
  871. ppe_size = ieee80211_he_ppe_size(hec->ppe_thres[0], cap);
  872. for (i = 1; i < ppe_size; i++) {
  873. p += scnprintf(p, buf_sz + buf - p, " %#.2x",
  874. hec->ppe_thres[i]);
  875. }
  876. p += scnprintf(p, buf_sz + buf - p, "\n");
  877. out:
  878. ret = simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  879. kfree(buf);
  880. return ret;
  881. }
  882. STA_OPS(he_capa);
  883. #define DEBUGFS_ADD(name) \
  884. debugfs_create_file(#name, 0400, \
  885. sta->debugfs_dir, sta, &sta_ ##name## _ops)
  886. #define DEBUGFS_ADD_COUNTER(name, field) \
  887. debugfs_create_ulong(#name, 0400, sta->debugfs_dir, &sta->field);
  888. void ieee80211_sta_debugfs_add(struct sta_info *sta)
  889. {
  890. struct ieee80211_local *local = sta->local;
  891. struct ieee80211_sub_if_data *sdata = sta->sdata;
  892. struct dentry *stations_dir = sta->sdata->debugfs.subdir_stations;
  893. u8 mac[3*ETH_ALEN];
  894. if (!stations_dir)
  895. return;
  896. snprintf(mac, sizeof(mac), "%pM", sta->sta.addr);
  897. /*
  898. * This might fail due to a race condition:
  899. * When mac80211 unlinks a station, the debugfs entries
  900. * remain, but it is already possible to link a new
  901. * station with the same address which triggers adding
  902. * it to debugfs; therefore, if the old station isn't
  903. * destroyed quickly enough the old station's debugfs
  904. * dir might still be around.
  905. */
  906. sta->debugfs_dir = debugfs_create_dir(mac, stations_dir);
  907. DEBUGFS_ADD(flags);
  908. DEBUGFS_ADD(aid);
  909. DEBUGFS_ADD(num_ps_buf_frames);
  910. DEBUGFS_ADD(last_seq_ctrl);
  911. DEBUGFS_ADD(agg_status);
  912. DEBUGFS_ADD(ht_capa);
  913. DEBUGFS_ADD(vht_capa);
  914. DEBUGFS_ADD(he_capa);
  915. DEBUGFS_ADD_COUNTER(rx_duplicates, deflink.rx_stats.num_duplicates);
  916. DEBUGFS_ADD_COUNTER(rx_fragments, deflink.rx_stats.fragments);
  917. DEBUGFS_ADD_COUNTER(tx_filtered, deflink.status_stats.filtered);
  918. if (local->ops->wake_tx_queue) {
  919. DEBUGFS_ADD(aqm);
  920. DEBUGFS_ADD(airtime);
  921. }
  922. if (wiphy_ext_feature_isset(local->hw.wiphy,
  923. NL80211_EXT_FEATURE_AQL))
  924. DEBUGFS_ADD(aql);
  925. debugfs_create_xul("driver_buffered_tids", 0400, sta->debugfs_dir,
  926. &sta->driver_buffered_tids);
  927. drv_sta_add_debugfs(local, sdata, &sta->sta, sta->debugfs_dir);
  928. }
  929. void ieee80211_sta_debugfs_remove(struct sta_info *sta)
  930. {
  931. debugfs_remove_recursive(sta->debugfs_dir);
  932. sta->debugfs_dir = NULL;
  933. }