debugfs_sta.c 12 KB

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  1. /*
  2. * Copyright 2003-2005 Devicescape Software, Inc.
  3. * Copyright (c) 2006 Jiri Benc <jbenc@suse.cz>
  4. * Copyright 2007 Johannes Berg <johannes@sipsolutions.net>
  5. *
  6. * This program is free software; you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License version 2 as
  8. * published by the Free Software Foundation.
  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. /* sta attributtes */
  17. #define STA_READ(name, field, format_string) \
  18. static ssize_t sta_ ##name## _read(struct file *file, \
  19. char __user *userbuf, \
  20. size_t count, loff_t *ppos) \
  21. { \
  22. struct sta_info *sta = file->private_data; \
  23. return mac80211_format_buffer(userbuf, count, ppos, \
  24. format_string, sta->field); \
  25. }
  26. #define STA_READ_D(name, field) STA_READ(name, field, "%d\n")
  27. #define STA_READ_U(name, field) STA_READ(name, field, "%u\n")
  28. #define STA_READ_S(name, field) STA_READ(name, field, "%s\n")
  29. #define STA_OPS(name) \
  30. static const struct file_operations sta_ ##name## _ops = { \
  31. .read = sta_##name##_read, \
  32. .open = mac80211_open_file_generic, \
  33. .llseek = generic_file_llseek, \
  34. }
  35. #define STA_OPS_RW(name) \
  36. static const struct file_operations sta_ ##name## _ops = { \
  37. .read = sta_##name##_read, \
  38. .write = sta_##name##_write, \
  39. .open = mac80211_open_file_generic, \
  40. .llseek = generic_file_llseek, \
  41. }
  42. #define STA_FILE(name, field, format) \
  43. STA_READ_##format(name, field) \
  44. STA_OPS(name)
  45. STA_FILE(aid, sta.aid, D);
  46. STA_FILE(dev, sdata->name, S);
  47. STA_FILE(last_signal, last_signal, D);
  48. static ssize_t sta_flags_read(struct file *file, char __user *userbuf,
  49. size_t count, loff_t *ppos)
  50. {
  51. char buf[100];
  52. struct sta_info *sta = file->private_data;
  53. u32 staflags = get_sta_flags(sta);
  54. int res = scnprintf(buf, sizeof(buf), "%s%s%s%s%s%s%s%s%s",
  55. staflags & WLAN_STA_AUTH ? "AUTH\n" : "",
  56. staflags & WLAN_STA_ASSOC ? "ASSOC\n" : "",
  57. staflags & WLAN_STA_PS_STA ? "PS (sta)\n" : "",
  58. staflags & WLAN_STA_PS_DRIVER ? "PS (driver)\n" : "",
  59. staflags & WLAN_STA_AUTHORIZED ? "AUTHORIZED\n" : "",
  60. staflags & WLAN_STA_SHORT_PREAMBLE ? "SHORT PREAMBLE\n" : "",
  61. staflags & WLAN_STA_WME ? "WME\n" : "",
  62. staflags & WLAN_STA_WDS ? "WDS\n" : "",
  63. staflags & WLAN_STA_MFP ? "MFP\n" : "");
  64. return simple_read_from_buffer(userbuf, count, ppos, buf, res);
  65. }
  66. STA_OPS(flags);
  67. static ssize_t sta_num_ps_buf_frames_read(struct file *file,
  68. char __user *userbuf,
  69. size_t count, loff_t *ppos)
  70. {
  71. struct sta_info *sta = file->private_data;
  72. char buf[17*IEEE80211_NUM_ACS], *p = buf;
  73. int ac;
  74. for (ac = 0; ac < IEEE80211_NUM_ACS; ac++)
  75. p += scnprintf(p, sizeof(buf)+buf-p, "AC%d: %d\n", ac,
  76. skb_queue_len(&sta->ps_tx_buf[ac]) +
  77. skb_queue_len(&sta->tx_filtered[ac]));
  78. return simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  79. }
  80. STA_OPS(num_ps_buf_frames);
  81. static ssize_t sta_inactive_ms_read(struct file *file, char __user *userbuf,
  82. size_t count, loff_t *ppos)
  83. {
  84. struct sta_info *sta = file->private_data;
  85. return mac80211_format_buffer(userbuf, count, ppos, "%d\n",
  86. jiffies_to_msecs(jiffies - sta->last_rx));
  87. }
  88. STA_OPS(inactive_ms);
  89. static ssize_t sta_connected_time_read(struct file *file, char __user *userbuf,
  90. size_t count, loff_t *ppos)
  91. {
  92. struct sta_info *sta = file->private_data;
  93. struct timespec uptime;
  94. struct tm result;
  95. long connected_time_secs;
  96. char buf[100];
  97. int res;
  98. do_posix_clock_monotonic_gettime(&uptime);
  99. connected_time_secs = uptime.tv_sec - sta->last_connected;
  100. time_to_tm(connected_time_secs, 0, &result);
  101. result.tm_year -= 70;
  102. result.tm_mday -= 1;
  103. res = scnprintf(buf, sizeof(buf),
  104. "years - %ld\nmonths - %d\ndays - %d\nclock - %d:%d:%d\n\n",
  105. result.tm_year, result.tm_mon, result.tm_mday,
  106. result.tm_hour, result.tm_min, result.tm_sec);
  107. return simple_read_from_buffer(userbuf, count, ppos, buf, res);
  108. }
  109. STA_OPS(connected_time);
  110. static ssize_t sta_last_seq_ctrl_read(struct file *file, char __user *userbuf,
  111. size_t count, loff_t *ppos)
  112. {
  113. char buf[15*NUM_RX_DATA_QUEUES], *p = buf;
  114. int i;
  115. struct sta_info *sta = file->private_data;
  116. for (i = 0; i < NUM_RX_DATA_QUEUES; i++)
  117. p += scnprintf(p, sizeof(buf)+buf-p, "%x ",
  118. le16_to_cpu(sta->last_seq_ctrl[i]));
  119. p += scnprintf(p, sizeof(buf)+buf-p, "\n");
  120. return simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  121. }
  122. STA_OPS(last_seq_ctrl);
  123. static ssize_t sta_agg_status_read(struct file *file, char __user *userbuf,
  124. size_t count, loff_t *ppos)
  125. {
  126. char buf[71 + STA_TID_NUM * 40], *p = buf;
  127. int i;
  128. struct sta_info *sta = file->private_data;
  129. struct tid_ampdu_rx *tid_rx;
  130. struct tid_ampdu_tx *tid_tx;
  131. rcu_read_lock();
  132. p += scnprintf(p, sizeof(buf) + buf - p, "next dialog_token: %#02x\n",
  133. sta->ampdu_mlme.dialog_token_allocator + 1);
  134. p += scnprintf(p, sizeof(buf) + buf - p,
  135. "TID\t\tRX active\tDTKN\tSSN\t\tTX\tDTKN\tpending\n");
  136. for (i = 0; i < STA_TID_NUM; i++) {
  137. tid_rx = rcu_dereference(sta->ampdu_mlme.tid_rx[i]);
  138. tid_tx = rcu_dereference(sta->ampdu_mlme.tid_tx[i]);
  139. p += scnprintf(p, sizeof(buf) + buf - p, "%02d", i);
  140. p += scnprintf(p, sizeof(buf) + buf - p, "\t\t%x", !!tid_rx);
  141. p += scnprintf(p, sizeof(buf) + buf - p, "\t%#.2x",
  142. tid_rx ? tid_rx->dialog_token : 0);
  143. p += scnprintf(p, sizeof(buf) + buf - p, "\t%#.3x",
  144. tid_rx ? tid_rx->ssn : 0);
  145. p += scnprintf(p, sizeof(buf) + buf - p, "\t\t%x", !!tid_tx);
  146. p += scnprintf(p, sizeof(buf) + buf - p, "\t%#.2x",
  147. tid_tx ? tid_tx->dialog_token : 0);
  148. p += scnprintf(p, sizeof(buf) + buf - p, "\t%03d",
  149. tid_tx ? skb_queue_len(&tid_tx->pending) : 0);
  150. p += scnprintf(p, sizeof(buf) + buf - p, "\n");
  151. }
  152. rcu_read_unlock();
  153. return simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  154. }
  155. static ssize_t sta_agg_status_write(struct file *file, const char __user *userbuf,
  156. size_t count, loff_t *ppos)
  157. {
  158. char _buf[12], *buf = _buf;
  159. struct sta_info *sta = file->private_data;
  160. bool start, tx;
  161. unsigned long tid;
  162. int ret;
  163. if (count > sizeof(_buf))
  164. return -EINVAL;
  165. if (copy_from_user(buf, userbuf, count))
  166. return -EFAULT;
  167. buf[sizeof(_buf) - 1] = '\0';
  168. if (strncmp(buf, "tx ", 3) == 0) {
  169. buf += 3;
  170. tx = true;
  171. } else if (strncmp(buf, "rx ", 3) == 0) {
  172. buf += 3;
  173. tx = false;
  174. } else
  175. return -EINVAL;
  176. if (strncmp(buf, "start ", 6) == 0) {
  177. buf += 6;
  178. start = true;
  179. if (!tx)
  180. return -EINVAL;
  181. } else if (strncmp(buf, "stop ", 5) == 0) {
  182. buf += 5;
  183. start = false;
  184. } else
  185. return -EINVAL;
  186. tid = simple_strtoul(buf, NULL, 0);
  187. if (tid >= STA_TID_NUM)
  188. return -EINVAL;
  189. if (tx) {
  190. if (start)
  191. ret = ieee80211_start_tx_ba_session(&sta->sta, tid, 5000);
  192. else
  193. ret = ieee80211_stop_tx_ba_session(&sta->sta, tid);
  194. } else {
  195. __ieee80211_stop_rx_ba_session(sta, tid, WLAN_BACK_RECIPIENT,
  196. 3, true);
  197. ret = 0;
  198. }
  199. return ret ?: count;
  200. }
  201. STA_OPS_RW(agg_status);
  202. static ssize_t sta_ht_capa_read(struct file *file, char __user *userbuf,
  203. size_t count, loff_t *ppos)
  204. {
  205. #define PRINT_HT_CAP(_cond, _str) \
  206. do { \
  207. if (_cond) \
  208. p += scnprintf(p, sizeof(buf)+buf-p, "\t" _str "\n"); \
  209. } while (0)
  210. char buf[512], *p = buf;
  211. int i;
  212. struct sta_info *sta = file->private_data;
  213. struct ieee80211_sta_ht_cap *htc = &sta->sta.ht_cap;
  214. p += scnprintf(p, sizeof(buf) + buf - p, "ht %ssupported\n",
  215. htc->ht_supported ? "" : "not ");
  216. if (htc->ht_supported) {
  217. p += scnprintf(p, sizeof(buf)+buf-p, "cap: %#.4x\n", htc->cap);
  218. PRINT_HT_CAP((htc->cap & BIT(0)), "RX LDPC");
  219. PRINT_HT_CAP((htc->cap & BIT(1)), "HT20/HT40");
  220. PRINT_HT_CAP(!(htc->cap & BIT(1)), "HT20");
  221. PRINT_HT_CAP(((htc->cap >> 2) & 0x3) == 0, "Static SM Power Save");
  222. PRINT_HT_CAP(((htc->cap >> 2) & 0x3) == 1, "Dynamic SM Power Save");
  223. PRINT_HT_CAP(((htc->cap >> 2) & 0x3) == 3, "SM Power Save disabled");
  224. PRINT_HT_CAP((htc->cap & BIT(4)), "RX Greenfield");
  225. PRINT_HT_CAP((htc->cap & BIT(5)), "RX HT20 SGI");
  226. PRINT_HT_CAP((htc->cap & BIT(6)), "RX HT40 SGI");
  227. PRINT_HT_CAP((htc->cap & BIT(7)), "TX STBC");
  228. PRINT_HT_CAP(((htc->cap >> 8) & 0x3) == 0, "No RX STBC");
  229. PRINT_HT_CAP(((htc->cap >> 8) & 0x3) == 1, "RX STBC 1-stream");
  230. PRINT_HT_CAP(((htc->cap >> 8) & 0x3) == 2, "RX STBC 2-streams");
  231. PRINT_HT_CAP(((htc->cap >> 8) & 0x3) == 3, "RX STBC 3-streams");
  232. PRINT_HT_CAP((htc->cap & BIT(10)), "HT Delayed Block Ack");
  233. PRINT_HT_CAP((htc->cap & BIT(11)), "Max AMSDU length: "
  234. "3839 bytes");
  235. PRINT_HT_CAP(!(htc->cap & BIT(11)), "Max AMSDU length: "
  236. "7935 bytes");
  237. /*
  238. * For beacons and probe response this would mean the BSS
  239. * does or does not allow the usage of DSSS/CCK HT40.
  240. * Otherwise it means the STA does or does not use
  241. * DSSS/CCK HT40.
  242. */
  243. PRINT_HT_CAP((htc->cap & BIT(12)), "DSSS/CCK HT40");
  244. PRINT_HT_CAP(!(htc->cap & BIT(12)), "No DSSS/CCK HT40");
  245. /* BIT(13) is reserved */
  246. PRINT_HT_CAP((htc->cap & BIT(14)), "40 MHz Intolerant");
  247. PRINT_HT_CAP((htc->cap & BIT(15)), "L-SIG TXOP protection");
  248. p += scnprintf(p, sizeof(buf)+buf-p, "ampdu factor/density: %d/%d\n",
  249. htc->ampdu_factor, htc->ampdu_density);
  250. p += scnprintf(p, sizeof(buf)+buf-p, "MCS mask:");
  251. for (i = 0; i < IEEE80211_HT_MCS_MASK_LEN; i++)
  252. p += scnprintf(p, sizeof(buf)+buf-p, " %.2x",
  253. htc->mcs.rx_mask[i]);
  254. p += scnprintf(p, sizeof(buf)+buf-p, "\n");
  255. /* If not set this is meaningless */
  256. if (le16_to_cpu(htc->mcs.rx_highest)) {
  257. p += scnprintf(p, sizeof(buf)+buf-p,
  258. "MCS rx highest: %d Mbps\n",
  259. le16_to_cpu(htc->mcs.rx_highest));
  260. }
  261. p += scnprintf(p, sizeof(buf)+buf-p, "MCS tx params: %x\n",
  262. htc->mcs.tx_params);
  263. }
  264. return simple_read_from_buffer(userbuf, count, ppos, buf, p - buf);
  265. }
  266. STA_OPS(ht_capa);
  267. #define DEBUGFS_ADD(name) \
  268. debugfs_create_file(#name, 0400, \
  269. sta->debugfs.dir, sta, &sta_ ##name## _ops);
  270. #define DEBUGFS_ADD_COUNTER(name, field) \
  271. if (sizeof(sta->field) == sizeof(u32)) \
  272. debugfs_create_u32(#name, 0400, sta->debugfs.dir, \
  273. (u32 *) &sta->field); \
  274. else \
  275. debugfs_create_u64(#name, 0400, sta->debugfs.dir, \
  276. (u64 *) &sta->field);
  277. void ieee80211_sta_debugfs_add(struct sta_info *sta)
  278. {
  279. struct dentry *stations_dir = sta->sdata->debugfs.subdir_stations;
  280. u8 mac[3*ETH_ALEN];
  281. sta->debugfs.add_has_run = true;
  282. if (!stations_dir)
  283. return;
  284. snprintf(mac, sizeof(mac), "%pM", sta->sta.addr);
  285. /*
  286. * This might fail due to a race condition:
  287. * When mac80211 unlinks a station, the debugfs entries
  288. * remain, but it is already possible to link a new
  289. * station with the same address which triggers adding
  290. * it to debugfs; therefore, if the old station isn't
  291. * destroyed quickly enough the old station's debugfs
  292. * dir might still be around.
  293. */
  294. sta->debugfs.dir = debugfs_create_dir(mac, stations_dir);
  295. if (!sta->debugfs.dir)
  296. return;
  297. DEBUGFS_ADD(flags);
  298. DEBUGFS_ADD(num_ps_buf_frames);
  299. DEBUGFS_ADD(inactive_ms);
  300. DEBUGFS_ADD(connected_time);
  301. DEBUGFS_ADD(last_seq_ctrl);
  302. DEBUGFS_ADD(agg_status);
  303. DEBUGFS_ADD(dev);
  304. DEBUGFS_ADD(last_signal);
  305. DEBUGFS_ADD(ht_capa);
  306. DEBUGFS_ADD_COUNTER(rx_packets, rx_packets);
  307. DEBUGFS_ADD_COUNTER(tx_packets, tx_packets);
  308. DEBUGFS_ADD_COUNTER(rx_bytes, rx_bytes);
  309. DEBUGFS_ADD_COUNTER(tx_bytes, tx_bytes);
  310. DEBUGFS_ADD_COUNTER(rx_duplicates, num_duplicates);
  311. DEBUGFS_ADD_COUNTER(rx_fragments, rx_fragments);
  312. DEBUGFS_ADD_COUNTER(rx_dropped, rx_dropped);
  313. DEBUGFS_ADD_COUNTER(tx_fragments, tx_fragments);
  314. DEBUGFS_ADD_COUNTER(tx_filtered, tx_filtered_count);
  315. DEBUGFS_ADD_COUNTER(tx_retry_failed, tx_retry_failed);
  316. DEBUGFS_ADD_COUNTER(tx_retry_count, tx_retry_count);
  317. DEBUGFS_ADD_COUNTER(wep_weak_iv_count, wep_weak_iv_count);
  318. }
  319. void ieee80211_sta_debugfs_remove(struct sta_info *sta)
  320. {
  321. debugfs_remove_recursive(sta->debugfs.dir);
  322. sta->debugfs.dir = NULL;
  323. }