osdep_service.c 63 KB

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  1. /******************************************************************************
  2. *
  3. * Copyright(c) 2007 - 2017 Realtek Corporation.
  4. *
  5. * This program is free software; you can redistribute it and/or modify it
  6. * under the terms of version 2 of the GNU General Public License as
  7. * published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it will be useful, but WITHOUT
  10. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  11. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  12. * more details.
  13. *
  14. *****************************************************************************/
  15. #define _OSDEP_SERVICE_C_
  16. #include <drv_types.h>
  17. #define RT_TAG '1178'
  18. #ifdef DBG_MEMORY_LEAK
  19. #ifdef PLATFORM_LINUX
  20. atomic_t _malloc_cnt = ATOMIC_INIT(0);
  21. atomic_t _malloc_size = ATOMIC_INIT(0);
  22. #ifndef KERNEL_DS
  23. #define KERNEL_DS MAKE_MM_SEG(-1UL) // <----- 0xffffffffffffffff
  24. #endif
  25. #endif
  26. #endif /* DBG_MEMORY_LEAK */
  27. #if defined(PLATFORM_LINUX)
  28. /*
  29. * Translate the OS dependent @param error_code to OS independent RTW_STATUS_CODE
  30. * @return: one of RTW_STATUS_CODE
  31. */
  32. inline int RTW_STATUS_CODE(int error_code)
  33. {
  34. if (error_code >= 0)
  35. return _SUCCESS;
  36. switch (error_code) {
  37. /* case -ETIMEDOUT: */
  38. /* return RTW_STATUS_TIMEDOUT; */
  39. default:
  40. return _FAIL;
  41. }
  42. }
  43. #else
  44. inline int RTW_STATUS_CODE(int error_code)
  45. {
  46. return error_code;
  47. }
  48. #endif
  49. u32 rtw_atoi(u8 *s)
  50. {
  51. int num = 0, flag = 0;
  52. int i;
  53. for (i = 0; i <= strlen(s); i++) {
  54. if (s[i] >= '0' && s[i] <= '9')
  55. num = num * 10 + s[i] - '0';
  56. else if (s[0] == '-' && i == 0)
  57. flag = 1;
  58. else
  59. break;
  60. }
  61. if (flag == 1)
  62. num = num * -1;
  63. return num;
  64. }
  65. inline void *_rtw_vmalloc(u32 sz)
  66. {
  67. void *pbuf;
  68. #ifdef PLATFORM_LINUX
  69. pbuf = vmalloc(sz);
  70. #endif
  71. #ifdef PLATFORM_FREEBSD
  72. pbuf = malloc(sz, M_DEVBUF, M_NOWAIT);
  73. #endif
  74. #ifdef PLATFORM_WINDOWS
  75. NdisAllocateMemoryWithTag(&pbuf, sz, RT_TAG);
  76. #endif
  77. #ifdef DBG_MEMORY_LEAK
  78. #ifdef PLATFORM_LINUX
  79. if (pbuf != NULL) {
  80. atomic_inc(&_malloc_cnt);
  81. atomic_add(sz, &_malloc_size);
  82. }
  83. #endif
  84. #endif /* DBG_MEMORY_LEAK */
  85. return pbuf;
  86. }
  87. inline void *_rtw_zvmalloc(u32 sz)
  88. {
  89. void *pbuf;
  90. #ifdef PLATFORM_LINUX
  91. pbuf = _rtw_vmalloc(sz);
  92. if (pbuf != NULL)
  93. memset(pbuf, 0, sz);
  94. #endif
  95. #ifdef PLATFORM_FREEBSD
  96. pbuf = malloc(sz, M_DEVBUF, M_ZERO | M_NOWAIT);
  97. #endif
  98. #ifdef PLATFORM_WINDOWS
  99. NdisAllocateMemoryWithTag(&pbuf, sz, RT_TAG);
  100. if (pbuf != NULL)
  101. NdisFillMemory(pbuf, sz, 0);
  102. #endif
  103. return pbuf;
  104. }
  105. inline void _rtw_vmfree(void *pbuf, u32 sz)
  106. {
  107. #ifdef PLATFORM_LINUX
  108. vfree(pbuf);
  109. #endif
  110. #ifdef PLATFORM_FREEBSD
  111. free(pbuf, M_DEVBUF);
  112. #endif
  113. #ifdef PLATFORM_WINDOWS
  114. NdisFreeMemory(pbuf, sz, 0);
  115. #endif
  116. #ifdef DBG_MEMORY_LEAK
  117. #ifdef PLATFORM_LINUX
  118. atomic_dec(&_malloc_cnt);
  119. atomic_sub(sz, &_malloc_size);
  120. #endif
  121. #endif /* DBG_MEMORY_LEAK */
  122. }
  123. void *_rtw_malloc(u32 sz)
  124. {
  125. void *pbuf = NULL;
  126. #ifdef PLATFORM_LINUX
  127. #ifdef RTK_DMP_PLATFORM
  128. if (sz > 0x4000)
  129. pbuf = dvr_malloc(sz);
  130. else
  131. #endif
  132. pbuf = kmalloc(sz, in_interrupt() ? GFP_ATOMIC : GFP_KERNEL);
  133. #endif
  134. #ifdef PLATFORM_FREEBSD
  135. pbuf = malloc(sz, M_DEVBUF, M_NOWAIT);
  136. #endif
  137. #ifdef PLATFORM_WINDOWS
  138. NdisAllocateMemoryWithTag(&pbuf, sz, RT_TAG);
  139. #endif
  140. #ifdef DBG_MEMORY_LEAK
  141. #ifdef PLATFORM_LINUX
  142. if (pbuf != NULL) {
  143. atomic_inc(&_malloc_cnt);
  144. atomic_add(sz, &_malloc_size);
  145. }
  146. #endif
  147. #endif /* DBG_MEMORY_LEAK */
  148. return pbuf;
  149. }
  150. void *_rtw_zmalloc(u32 sz)
  151. {
  152. #ifdef PLATFORM_FREEBSD
  153. return malloc(sz, M_DEVBUF, M_ZERO | M_NOWAIT);
  154. #else /* PLATFORM_FREEBSD */
  155. void *pbuf = _rtw_malloc(sz);
  156. if (pbuf != NULL) {
  157. #ifdef PLATFORM_LINUX
  158. memset(pbuf, 0, sz);
  159. #endif
  160. #ifdef PLATFORM_WINDOWS
  161. NdisFillMemory(pbuf, sz, 0);
  162. #endif
  163. }
  164. return pbuf;
  165. #endif /* PLATFORM_FREEBSD */
  166. }
  167. void _rtw_mfree(void *pbuf, u32 sz)
  168. {
  169. #ifdef PLATFORM_LINUX
  170. #ifdef RTK_DMP_PLATFORM
  171. if (sz > 0x4000)
  172. dvr_free(pbuf);
  173. else
  174. #endif
  175. kfree(pbuf);
  176. #endif
  177. #ifdef PLATFORM_FREEBSD
  178. free(pbuf, M_DEVBUF);
  179. #endif
  180. #ifdef PLATFORM_WINDOWS
  181. NdisFreeMemory(pbuf, sz, 0);
  182. #endif
  183. #ifdef DBG_MEMORY_LEAK
  184. #ifdef PLATFORM_LINUX
  185. atomic_dec(&_malloc_cnt);
  186. atomic_sub(sz, &_malloc_size);
  187. #endif
  188. #endif /* DBG_MEMORY_LEAK */
  189. }
  190. #ifdef PLATFORM_FREEBSD
  191. /* review again */
  192. struct sk_buff *dev_alloc_skb(unsigned int size)
  193. {
  194. struct sk_buff *skb = NULL;
  195. u8 *data = NULL;
  196. /* skb = _rtw_zmalloc(sizeof(struct sk_buff)); */ /* for skb->len, etc. */
  197. skb = _rtw_malloc(sizeof(struct sk_buff));
  198. if (!skb)
  199. goto out;
  200. data = _rtw_malloc(size);
  201. if (!data)
  202. goto nodata;
  203. skb->head = (unsigned char *)data;
  204. skb->data = (unsigned char *)data;
  205. skb->tail = (unsigned char *)data;
  206. skb->end = (unsigned char *)data + size;
  207. skb->len = 0;
  208. /* printf("%s()-%d: skb=%p, skb->head = %p\n", __FUNCTION__, __LINE__, skb, skb->head); */
  209. out:
  210. return skb;
  211. nodata:
  212. _rtw_mfree(skb, sizeof(struct sk_buff));
  213. skb = NULL;
  214. goto out;
  215. }
  216. void dev_kfree_skb_any(struct sk_buff *skb)
  217. {
  218. /* printf("%s()-%d: skb->head = %p\n", __FUNCTION__, __LINE__, skb->head); */
  219. if (skb->head)
  220. _rtw_mfree(skb->head, 0);
  221. /* printf("%s()-%d: skb = %p\n", __FUNCTION__, __LINE__, skb); */
  222. if (skb)
  223. _rtw_mfree(skb, 0);
  224. }
  225. struct sk_buff *skb_clone(const struct sk_buff *skb)
  226. {
  227. return NULL;
  228. }
  229. #endif /* PLATFORM_FREEBSD */
  230. inline struct sk_buff *_rtw_skb_alloc(u32 sz)
  231. {
  232. #ifdef PLATFORM_LINUX
  233. return __dev_alloc_skb(sz, in_interrupt() ? GFP_ATOMIC : GFP_KERNEL);
  234. #endif /* PLATFORM_LINUX */
  235. #ifdef PLATFORM_FREEBSD
  236. return dev_alloc_skb(sz);
  237. #endif /* PLATFORM_FREEBSD */
  238. }
  239. inline void _rtw_skb_free(struct sk_buff *skb)
  240. {
  241. dev_kfree_skb_any(skb);
  242. }
  243. inline struct sk_buff *_rtw_skb_copy(const struct sk_buff *skb)
  244. {
  245. #ifdef PLATFORM_LINUX
  246. return skb_copy(skb, in_interrupt() ? GFP_ATOMIC : GFP_KERNEL);
  247. #endif /* PLATFORM_LINUX */
  248. #ifdef PLATFORM_FREEBSD
  249. return NULL;
  250. #endif /* PLATFORM_FREEBSD */
  251. }
  252. inline struct sk_buff *_rtw_skb_clone(struct sk_buff *skb)
  253. {
  254. #ifdef PLATFORM_LINUX
  255. return skb_clone(skb, in_interrupt() ? GFP_ATOMIC : GFP_KERNEL);
  256. #endif /* PLATFORM_LINUX */
  257. #ifdef PLATFORM_FREEBSD
  258. return skb_clone(skb);
  259. #endif /* PLATFORM_FREEBSD */
  260. }
  261. inline struct sk_buff *_rtw_pskb_copy(struct sk_buff *skb)
  262. {
  263. #ifdef PLATFORM_LINUX
  264. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 36))
  265. return pskb_copy(skb, in_interrupt() ? GFP_ATOMIC : GFP_KERNEL);
  266. #else
  267. return skb_clone(skb, in_interrupt() ? GFP_ATOMIC : GFP_KERNEL);
  268. #endif
  269. #endif /* PLATFORM_LINUX */
  270. #ifdef PLATFORM_FREEBSD
  271. return NULL;
  272. #endif /* PLATFORM_FREEBSD */
  273. }
  274. inline int _rtw_netif_rx(_nic_hdl ndev, struct sk_buff *skb)
  275. {
  276. #if defined(PLATFORM_LINUX)
  277. skb->dev = ndev;
  278. return netif_rx(skb);
  279. #elif defined(PLATFORM_FREEBSD)
  280. return (*ndev->if_input)(ndev, skb);
  281. #else
  282. rtw_warn_on(1);
  283. return -1;
  284. #endif
  285. }
  286. #ifdef CONFIG_RTW_NAPI
  287. inline int _rtw_netif_receive_skb(_nic_hdl ndev, struct sk_buff *skb)
  288. {
  289. #if defined(PLATFORM_LINUX)
  290. skb->dev = ndev;
  291. return netif_receive_skb(skb);
  292. #else
  293. rtw_warn_on(1);
  294. return -1;
  295. #endif
  296. }
  297. #ifdef CONFIG_RTW_GRO
  298. inline gro_result_t _rtw_napi_gro_receive(struct napi_struct *napi, struct sk_buff *skb)
  299. {
  300. #if defined(PLATFORM_LINUX)
  301. return napi_gro_receive(napi, skb);
  302. #else
  303. rtw_warn_on(1);
  304. return -1;
  305. #endif
  306. }
  307. #endif /* CONFIG_RTW_GRO */
  308. #endif /* CONFIG_RTW_NAPI */
  309. void _rtw_skb_queue_purge(struct sk_buff_head *list)
  310. {
  311. struct sk_buff *skb;
  312. while ((skb = skb_dequeue(list)) != NULL)
  313. _rtw_skb_free(skb);
  314. }
  315. #ifdef CONFIG_USB_HCI
  316. inline void *_rtw_usb_buffer_alloc(struct usb_device *dev, size_t size, dma_addr_t *dma)
  317. {
  318. #ifdef PLATFORM_LINUX
  319. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 35))
  320. return usb_alloc_coherent(dev, size, (in_interrupt() ? GFP_ATOMIC : GFP_KERNEL), dma);
  321. #else
  322. return usb_buffer_alloc(dev, size, (in_interrupt() ? GFP_ATOMIC : GFP_KERNEL), dma);
  323. #endif
  324. #endif /* PLATFORM_LINUX */
  325. #ifdef PLATFORM_FREEBSD
  326. return malloc(size, M_USBDEV, M_NOWAIT | M_ZERO);
  327. #endif /* PLATFORM_FREEBSD */
  328. }
  329. inline void _rtw_usb_buffer_free(struct usb_device *dev, size_t size, void *addr, dma_addr_t dma)
  330. {
  331. #ifdef PLATFORM_LINUX
  332. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 35))
  333. usb_free_coherent(dev, size, addr, dma);
  334. #else
  335. usb_buffer_free(dev, size, addr, dma);
  336. #endif
  337. #endif /* PLATFORM_LINUX */
  338. #ifdef PLATFORM_FREEBSD
  339. free(addr, M_USBDEV);
  340. #endif /* PLATFORM_FREEBSD */
  341. }
  342. #endif /* CONFIG_USB_HCI */
  343. #if defined(DBG_MEM_ALLOC)
  344. struct rtw_mem_stat {
  345. ATOMIC_T alloc; /* the memory bytes we allocate currently */
  346. ATOMIC_T peak; /* the peak memory bytes we allocate */
  347. ATOMIC_T alloc_cnt; /* the alloc count for alloc currently */
  348. ATOMIC_T alloc_err_cnt; /* the error times we fail to allocate memory */
  349. };
  350. struct rtw_mem_stat rtw_mem_type_stat[mstat_tf_idx(MSTAT_TYPE_MAX)];
  351. #ifdef RTW_MEM_FUNC_STAT
  352. struct rtw_mem_stat rtw_mem_func_stat[mstat_ff_idx(MSTAT_FUNC_MAX)];
  353. #endif
  354. char *MSTAT_TYPE_str[] = {
  355. "VIR",
  356. "PHY",
  357. "SKB",
  358. "USB",
  359. };
  360. #ifdef RTW_MEM_FUNC_STAT
  361. char *MSTAT_FUNC_str[] = {
  362. "UNSP",
  363. "IO",
  364. "TXIO",
  365. "RXIO",
  366. "TX",
  367. "RX",
  368. };
  369. #endif
  370. void rtw_mstat_dump(void *sel)
  371. {
  372. int i;
  373. int value_t[4][mstat_tf_idx(MSTAT_TYPE_MAX)];
  374. #ifdef RTW_MEM_FUNC_STAT
  375. int value_f[4][mstat_ff_idx(MSTAT_FUNC_MAX)];
  376. #endif
  377. int vir_alloc, vir_peak, vir_alloc_err, phy_alloc, phy_peak, phy_alloc_err;
  378. int tx_alloc, tx_peak, tx_alloc_err, rx_alloc, rx_peak, rx_alloc_err;
  379. for (i = 0; i < mstat_tf_idx(MSTAT_TYPE_MAX); i++) {
  380. value_t[0][i] = ATOMIC_READ(&(rtw_mem_type_stat[i].alloc));
  381. value_t[1][i] = ATOMIC_READ(&(rtw_mem_type_stat[i].peak));
  382. value_t[2][i] = ATOMIC_READ(&(rtw_mem_type_stat[i].alloc_cnt));
  383. value_t[3][i] = ATOMIC_READ(&(rtw_mem_type_stat[i].alloc_err_cnt));
  384. }
  385. #ifdef RTW_MEM_FUNC_STAT
  386. for (i = 0; i < mstat_ff_idx(MSTAT_FUNC_MAX); i++) {
  387. value_f[0][i] = ATOMIC_READ(&(rtw_mem_func_stat[i].alloc));
  388. value_f[1][i] = ATOMIC_READ(&(rtw_mem_func_stat[i].peak));
  389. value_f[2][i] = ATOMIC_READ(&(rtw_mem_func_stat[i].alloc_cnt));
  390. value_f[3][i] = ATOMIC_READ(&(rtw_mem_func_stat[i].alloc_err_cnt));
  391. }
  392. #endif
  393. RTW_PRINT_SEL(sel, "===================== MSTAT =====================\n");
  394. RTW_PRINT_SEL(sel, "%4s %10s %10s %10s %10s\n", "TAG", "alloc", "peak", "aloc_cnt", "err_cnt");
  395. RTW_PRINT_SEL(sel, "-------------------------------------------------\n");
  396. for (i = 0; i < mstat_tf_idx(MSTAT_TYPE_MAX); i++)
  397. RTW_PRINT_SEL(sel, "%4s %10d %10d %10d %10d\n", MSTAT_TYPE_str[i], value_t[0][i], value_t[1][i], value_t[2][i], value_t[3][i]);
  398. #ifdef RTW_MEM_FUNC_STAT
  399. RTW_PRINT_SEL(sel, "-------------------------------------------------\n");
  400. for (i = 0; i < mstat_ff_idx(MSTAT_FUNC_MAX); i++)
  401. RTW_PRINT_SEL(sel, "%4s %10d %10d %10d %10d\n", MSTAT_FUNC_str[i], value_f[0][i], value_f[1][i], value_f[2][i], value_f[3][i]);
  402. #endif
  403. }
  404. void rtw_mstat_update(const enum mstat_f flags, const MSTAT_STATUS status, u32 sz)
  405. {
  406. static systime update_time = 0;
  407. int peak, alloc;
  408. int i;
  409. /* initialization */
  410. if (!update_time) {
  411. for (i = 0; i < mstat_tf_idx(MSTAT_TYPE_MAX); i++) {
  412. ATOMIC_SET(&(rtw_mem_type_stat[i].alloc), 0);
  413. ATOMIC_SET(&(rtw_mem_type_stat[i].peak), 0);
  414. ATOMIC_SET(&(rtw_mem_type_stat[i].alloc_cnt), 0);
  415. ATOMIC_SET(&(rtw_mem_type_stat[i].alloc_err_cnt), 0);
  416. }
  417. #ifdef RTW_MEM_FUNC_STAT
  418. for (i = 0; i < mstat_ff_idx(MSTAT_FUNC_MAX); i++) {
  419. ATOMIC_SET(&(rtw_mem_func_stat[i].alloc), 0);
  420. ATOMIC_SET(&(rtw_mem_func_stat[i].peak), 0);
  421. ATOMIC_SET(&(rtw_mem_func_stat[i].alloc_cnt), 0);
  422. ATOMIC_SET(&(rtw_mem_func_stat[i].alloc_err_cnt), 0);
  423. }
  424. #endif
  425. }
  426. switch (status) {
  427. case MSTAT_ALLOC_SUCCESS:
  428. ATOMIC_INC(&(rtw_mem_type_stat[mstat_tf_idx(flags)].alloc_cnt));
  429. alloc = ATOMIC_ADD_RETURN(&(rtw_mem_type_stat[mstat_tf_idx(flags)].alloc), sz);
  430. peak = ATOMIC_READ(&(rtw_mem_type_stat[mstat_tf_idx(flags)].peak));
  431. if (peak < alloc)
  432. ATOMIC_SET(&(rtw_mem_type_stat[mstat_tf_idx(flags)].peak), alloc);
  433. #ifdef RTW_MEM_FUNC_STAT
  434. ATOMIC_INC(&(rtw_mem_func_stat[mstat_ff_idx(flags)].alloc_cnt));
  435. alloc = ATOMIC_ADD_RETURN(&(rtw_mem_func_stat[mstat_ff_idx(flags)].alloc), sz);
  436. peak = ATOMIC_READ(&(rtw_mem_func_stat[mstat_ff_idx(flags)].peak));
  437. if (peak < alloc)
  438. ATOMIC_SET(&(rtw_mem_func_stat[mstat_ff_idx(flags)].peak), alloc);
  439. #endif
  440. break;
  441. case MSTAT_ALLOC_FAIL:
  442. ATOMIC_INC(&(rtw_mem_type_stat[mstat_tf_idx(flags)].alloc_err_cnt));
  443. #ifdef RTW_MEM_FUNC_STAT
  444. ATOMIC_INC(&(rtw_mem_func_stat[mstat_ff_idx(flags)].alloc_err_cnt));
  445. #endif
  446. break;
  447. case MSTAT_FREE:
  448. ATOMIC_DEC(&(rtw_mem_type_stat[mstat_tf_idx(flags)].alloc_cnt));
  449. ATOMIC_SUB(&(rtw_mem_type_stat[mstat_tf_idx(flags)].alloc), sz);
  450. #ifdef RTW_MEM_FUNC_STAT
  451. ATOMIC_DEC(&(rtw_mem_func_stat[mstat_ff_idx(flags)].alloc_cnt));
  452. ATOMIC_SUB(&(rtw_mem_func_stat[mstat_ff_idx(flags)].alloc), sz);
  453. #endif
  454. break;
  455. };
  456. /* if (rtw_get_passing_time_ms(update_time) > 5000) { */
  457. /* rtw_mstat_dump(RTW_DBGDUMP); */
  458. update_time = rtw_get_current_time();
  459. /* } */
  460. }
  461. #ifndef SIZE_MAX
  462. #define SIZE_MAX (~(size_t)0)
  463. #endif
  464. struct mstat_sniff_rule {
  465. enum mstat_f flags;
  466. size_t lb;
  467. size_t hb;
  468. };
  469. struct mstat_sniff_rule mstat_sniff_rules[] = {
  470. {MSTAT_TYPE_PHY, 4097, SIZE_MAX},
  471. };
  472. int mstat_sniff_rule_num = sizeof(mstat_sniff_rules) / sizeof(struct mstat_sniff_rule);
  473. bool match_mstat_sniff_rules(const enum mstat_f flags, const size_t size)
  474. {
  475. int i;
  476. for (i = 0; i < mstat_sniff_rule_num; i++) {
  477. if (mstat_sniff_rules[i].flags == flags
  478. && mstat_sniff_rules[i].lb <= size
  479. && mstat_sniff_rules[i].hb >= size)
  480. return _TRUE;
  481. }
  482. return _FALSE;
  483. }
  484. inline void *dbg_rtw_vmalloc(u32 sz, const enum mstat_f flags, const char *func, const int line)
  485. {
  486. void *p;
  487. if (match_mstat_sniff_rules(flags, sz))
  488. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d)\n", func, line, __FUNCTION__, (sz));
  489. p = _rtw_vmalloc((sz));
  490. rtw_mstat_update(
  491. flags
  492. , p ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  493. , sz
  494. );
  495. return p;
  496. }
  497. inline void *dbg_rtw_zvmalloc(u32 sz, const enum mstat_f flags, const char *func, const int line)
  498. {
  499. void *p;
  500. if (match_mstat_sniff_rules(flags, sz))
  501. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d)\n", func, line, __FUNCTION__, (sz));
  502. p = _rtw_zvmalloc((sz));
  503. rtw_mstat_update(
  504. flags
  505. , p ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  506. , sz
  507. );
  508. return p;
  509. }
  510. inline void dbg_rtw_vmfree(void *pbuf, u32 sz, const enum mstat_f flags, const char *func, const int line)
  511. {
  512. if (match_mstat_sniff_rules(flags, sz))
  513. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d)\n", func, line, __FUNCTION__, (sz));
  514. _rtw_vmfree((pbuf), (sz));
  515. rtw_mstat_update(
  516. flags
  517. , MSTAT_FREE
  518. , sz
  519. );
  520. }
  521. inline void *dbg_rtw_malloc(u32 sz, const enum mstat_f flags, const char *func, const int line)
  522. {
  523. void *p;
  524. if (match_mstat_sniff_rules(flags, sz))
  525. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d)\n", func, line, __FUNCTION__, (sz));
  526. p = _rtw_malloc((sz));
  527. rtw_mstat_update(
  528. flags
  529. , p ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  530. , sz
  531. );
  532. return p;
  533. }
  534. inline void *dbg_rtw_zmalloc(u32 sz, const enum mstat_f flags, const char *func, const int line)
  535. {
  536. void *p;
  537. if (match_mstat_sniff_rules(flags, sz))
  538. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d)\n", func, line, __FUNCTION__, (sz));
  539. p = _rtw_zmalloc((sz));
  540. rtw_mstat_update(
  541. flags
  542. , p ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  543. , sz
  544. );
  545. return p;
  546. }
  547. inline void dbg_rtw_mfree(void *pbuf, u32 sz, const enum mstat_f flags, const char *func, const int line)
  548. {
  549. if (match_mstat_sniff_rules(flags, sz))
  550. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d)\n", func, line, __FUNCTION__, (sz));
  551. _rtw_mfree((pbuf), (sz));
  552. rtw_mstat_update(
  553. flags
  554. , MSTAT_FREE
  555. , sz
  556. );
  557. }
  558. inline struct sk_buff *dbg_rtw_skb_alloc(unsigned int size, const enum mstat_f flags, const char *func, int line)
  559. {
  560. struct sk_buff *skb;
  561. unsigned int truesize = 0;
  562. skb = _rtw_skb_alloc(size);
  563. if (skb)
  564. truesize = skb->truesize;
  565. if (!skb || truesize < size || match_mstat_sniff_rules(flags, truesize))
  566. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%d), skb:%p, truesize=%u\n", func, line, __FUNCTION__, size, skb, truesize);
  567. rtw_mstat_update(
  568. flags
  569. , skb ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  570. , truesize
  571. );
  572. return skb;
  573. }
  574. inline void dbg_rtw_skb_free(struct sk_buff *skb, const enum mstat_f flags, const char *func, int line)
  575. {
  576. unsigned int truesize = skb->truesize;
  577. if (match_mstat_sniff_rules(flags, truesize))
  578. RTW_INFO("DBG_MEM_ALLOC %s:%d %s, truesize=%u\n", func, line, __FUNCTION__, truesize);
  579. _rtw_skb_free(skb);
  580. rtw_mstat_update(
  581. flags
  582. , MSTAT_FREE
  583. , truesize
  584. );
  585. }
  586. inline struct sk_buff *dbg_rtw_skb_copy(const struct sk_buff *skb, const enum mstat_f flags, const char *func, const int line)
  587. {
  588. struct sk_buff *skb_cp;
  589. unsigned int truesize = skb->truesize;
  590. unsigned int cp_truesize = 0;
  591. skb_cp = _rtw_skb_copy(skb);
  592. if (skb_cp)
  593. cp_truesize = skb_cp->truesize;
  594. if (!skb_cp || cp_truesize < truesize || match_mstat_sniff_rules(flags, cp_truesize))
  595. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%u), skb_cp:%p, cp_truesize=%u\n", func, line, __FUNCTION__, truesize, skb_cp, cp_truesize);
  596. rtw_mstat_update(
  597. flags
  598. , skb_cp ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  599. , cp_truesize
  600. );
  601. return skb_cp;
  602. }
  603. inline struct sk_buff *dbg_rtw_skb_clone(struct sk_buff *skb, const enum mstat_f flags, const char *func, const int line)
  604. {
  605. struct sk_buff *skb_cl;
  606. unsigned int truesize = skb->truesize;
  607. unsigned int cl_truesize = 0;
  608. skb_cl = _rtw_skb_clone(skb);
  609. if (skb_cl)
  610. cl_truesize = skb_cl->truesize;
  611. if (!skb_cl || cl_truesize < truesize || match_mstat_sniff_rules(flags, cl_truesize))
  612. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%u), skb_cl:%p, cl_truesize=%u\n", func, line, __FUNCTION__, truesize, skb_cl, cl_truesize);
  613. rtw_mstat_update(
  614. flags
  615. , skb_cl ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  616. , cl_truesize
  617. );
  618. return skb_cl;
  619. }
  620. inline int dbg_rtw_netif_rx(_nic_hdl ndev, struct sk_buff *skb, const enum mstat_f flags, const char *func, int line)
  621. {
  622. int ret;
  623. unsigned int truesize = skb->truesize;
  624. if (match_mstat_sniff_rules(flags, truesize))
  625. RTW_INFO("DBG_MEM_ALLOC %s:%d %s, truesize=%u\n", func, line, __FUNCTION__, truesize);
  626. ret = _rtw_netif_rx(ndev, skb);
  627. rtw_mstat_update(
  628. flags
  629. , MSTAT_FREE
  630. , truesize
  631. );
  632. return ret;
  633. }
  634. #ifdef CONFIG_RTW_NAPI
  635. inline int dbg_rtw_netif_receive_skb(_nic_hdl ndev, struct sk_buff *skb, const enum mstat_f flags, const char *func, int line)
  636. {
  637. int ret;
  638. unsigned int truesize = skb->truesize;
  639. if (match_mstat_sniff_rules(flags, truesize))
  640. RTW_INFO("DBG_MEM_ALLOC %s:%d %s, truesize=%u\n", func, line, __FUNCTION__, truesize);
  641. ret = _rtw_netif_receive_skb(ndev, skb);
  642. rtw_mstat_update(
  643. flags
  644. , MSTAT_FREE
  645. , truesize
  646. );
  647. return ret;
  648. }
  649. #ifdef CONFIG_RTW_GRO
  650. inline gro_result_t dbg_rtw_napi_gro_receive(struct napi_struct *napi, struct sk_buff *skb, const enum mstat_f flags, const char *func, int line)
  651. {
  652. int ret;
  653. unsigned int truesize = skb->truesize;
  654. if (match_mstat_sniff_rules(flags, truesize))
  655. RTW_INFO("DBG_MEM_ALLOC %s:%d %s, truesize=%u\n", func, line, __FUNCTION__, truesize);
  656. ret = _rtw_napi_gro_receive(napi, skb);
  657. rtw_mstat_update(
  658. flags
  659. , MSTAT_FREE
  660. , truesize
  661. );
  662. return ret;
  663. }
  664. #endif /* CONFIG_RTW_GRO */
  665. #endif /* CONFIG_RTW_NAPI */
  666. inline void dbg_rtw_skb_queue_purge(struct sk_buff_head *list, enum mstat_f flags, const char *func, int line)
  667. {
  668. struct sk_buff *skb;
  669. while ((skb = skb_dequeue(list)) != NULL)
  670. dbg_rtw_skb_free(skb, flags, func, line);
  671. }
  672. #ifdef CONFIG_USB_HCI
  673. inline void *dbg_rtw_usb_buffer_alloc(struct usb_device *dev, size_t size, dma_addr_t *dma, const enum mstat_f flags, const char *func, int line)
  674. {
  675. void *p;
  676. if (match_mstat_sniff_rules(flags, size))
  677. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%zu)\n", func, line, __FUNCTION__, size);
  678. p = _rtw_usb_buffer_alloc(dev, size, dma);
  679. rtw_mstat_update(
  680. flags
  681. , p ? MSTAT_ALLOC_SUCCESS : MSTAT_ALLOC_FAIL
  682. , size
  683. );
  684. return p;
  685. }
  686. inline void dbg_rtw_usb_buffer_free(struct usb_device *dev, size_t size, void *addr, dma_addr_t dma, const enum mstat_f flags, const char *func, int line)
  687. {
  688. if (match_mstat_sniff_rules(flags, size))
  689. RTW_INFO("DBG_MEM_ALLOC %s:%d %s(%zu)\n", func, line, __FUNCTION__, size);
  690. _rtw_usb_buffer_free(dev, size, addr, dma);
  691. rtw_mstat_update(
  692. flags
  693. , MSTAT_FREE
  694. , size
  695. );
  696. }
  697. #endif /* CONFIG_USB_HCI */
  698. #endif /* defined(DBG_MEM_ALLOC) */
  699. void *rtw_malloc2d(int h, int w, size_t size)
  700. {
  701. int j;
  702. void **a = (void **) rtw_zmalloc(h * sizeof(void *) + h * w * size);
  703. if (a == NULL) {
  704. RTW_INFO("%s: alloc memory fail!\n", __FUNCTION__);
  705. return NULL;
  706. }
  707. for (j = 0; j < h; j++)
  708. a[j] = ((char *)(a + h)) + j * w * size;
  709. return a;
  710. }
  711. void rtw_mfree2d(void *pbuf, int h, int w, int size)
  712. {
  713. rtw_mfree((u8 *)pbuf, h * sizeof(void *) + w * h * size);
  714. }
  715. inline void rtw_os_pkt_free(_pkt *pkt)
  716. {
  717. #if defined(PLATFORM_LINUX)
  718. rtw_skb_free(pkt);
  719. #elif defined(PLATFORM_FREEBSD)
  720. m_freem(pkt);
  721. #else
  722. #error "TBD\n"
  723. #endif
  724. }
  725. inline _pkt *rtw_os_pkt_copy(_pkt *pkt)
  726. {
  727. #if defined(PLATFORM_LINUX)
  728. return rtw_skb_copy(pkt);
  729. #elif defined(PLATFORM_FREEBSD)
  730. return m_dup(pkt, M_NOWAIT);
  731. #else
  732. #error "TBD\n"
  733. #endif
  734. }
  735. inline void *rtw_os_pkt_data(_pkt *pkt)
  736. {
  737. #if defined(PLATFORM_LINUX)
  738. return pkt->data;
  739. #elif defined(PLATFORM_FREEBSD)
  740. return pkt->m_data;
  741. #else
  742. #error "TBD\n"
  743. #endif
  744. }
  745. inline u32 rtw_os_pkt_len(_pkt *pkt)
  746. {
  747. #if defined(PLATFORM_LINUX)
  748. return pkt->len;
  749. #elif defined(PLATFORM_FREEBSD)
  750. return pkt->m_pkthdr.len;
  751. #else
  752. #error "TBD\n"
  753. #endif
  754. }
  755. void _rtw_memcpy(void *dst, const void *src, u32 sz)
  756. {
  757. #if defined(PLATFORM_LINUX) || defined (PLATFORM_FREEBSD)
  758. memcpy(dst, src, sz);
  759. #endif
  760. #ifdef PLATFORM_WINDOWS
  761. NdisMoveMemory(dst, src, sz);
  762. #endif
  763. }
  764. inline void _rtw_memmove(void *dst, const void *src, u32 sz)
  765. {
  766. #if defined(PLATFORM_LINUX)
  767. memmove(dst, src, sz);
  768. #else
  769. #error "TBD\n"
  770. #endif
  771. }
  772. int _rtw_memcmp(const void *dst, const void *src, u32 sz)
  773. {
  774. #if defined(PLATFORM_LINUX) || defined (PLATFORM_FREEBSD)
  775. /* under Linux/GNU/GLibc, the return value of memcmp for two same mem. chunk is 0 */
  776. if (!(memcmp(dst, src, sz)))
  777. return _TRUE;
  778. else
  779. return _FALSE;
  780. #endif
  781. #ifdef PLATFORM_WINDOWS
  782. /* under Windows, the return value of NdisEqualMemory for two same mem. chunk is 1 */
  783. if (NdisEqualMemory(dst, src, sz))
  784. return _TRUE;
  785. else
  786. return _FALSE;
  787. #endif
  788. }
  789. void _rtw_memset(void *pbuf, int c, u32 sz)
  790. {
  791. #if defined(PLATFORM_LINUX) || defined (PLATFORM_FREEBSD)
  792. memset(pbuf, c, sz);
  793. #endif
  794. #ifdef PLATFORM_WINDOWS
  795. #if 0
  796. NdisZeroMemory(pbuf, sz);
  797. if (c != 0)
  798. memset(pbuf, c, sz);
  799. #else
  800. NdisFillMemory(pbuf, sz, c);
  801. #endif
  802. #endif
  803. }
  804. #ifdef PLATFORM_FREEBSD
  805. static inline void __list_add(_list *pnew, _list *pprev, _list *pnext)
  806. {
  807. pnext->prev = pnew;
  808. pnew->next = pnext;
  809. pnew->prev = pprev;
  810. pprev->next = pnew;
  811. }
  812. #endif /* PLATFORM_FREEBSD */
  813. void _rtw_init_listhead(_list *list)
  814. {
  815. #ifdef PLATFORM_LINUX
  816. INIT_LIST_HEAD(list);
  817. #endif
  818. #ifdef PLATFORM_FREEBSD
  819. list->next = list;
  820. list->prev = list;
  821. #endif
  822. #ifdef PLATFORM_WINDOWS
  823. NdisInitializeListHead(list);
  824. #endif
  825. }
  826. /*
  827. For the following list_xxx operations,
  828. caller must guarantee the atomic context.
  829. Otherwise, there will be racing condition.
  830. */
  831. u32 rtw_is_list_empty(_list *phead)
  832. {
  833. #ifdef PLATFORM_LINUX
  834. if (list_empty(phead))
  835. return _TRUE;
  836. else
  837. return _FALSE;
  838. #endif
  839. #ifdef PLATFORM_FREEBSD
  840. if (phead->next == phead)
  841. return _TRUE;
  842. else
  843. return _FALSE;
  844. #endif
  845. #ifdef PLATFORM_WINDOWS
  846. if (IsListEmpty(phead))
  847. return _TRUE;
  848. else
  849. return _FALSE;
  850. #endif
  851. }
  852. void rtw_list_insert_head(_list *plist, _list *phead)
  853. {
  854. #ifdef PLATFORM_LINUX
  855. list_add(plist, phead);
  856. #endif
  857. #ifdef PLATFORM_FREEBSD
  858. __list_add(plist, phead, phead->next);
  859. #endif
  860. #ifdef PLATFORM_WINDOWS
  861. InsertHeadList(phead, plist);
  862. #endif
  863. }
  864. void rtw_list_insert_tail(_list *plist, _list *phead)
  865. {
  866. #ifdef PLATFORM_LINUX
  867. list_add_tail(plist, phead);
  868. #endif
  869. #ifdef PLATFORM_FREEBSD
  870. __list_add(plist, phead->prev, phead);
  871. #endif
  872. #ifdef PLATFORM_WINDOWS
  873. InsertTailList(phead, plist);
  874. #endif
  875. }
  876. inline void rtw_list_splice(_list *list, _list *head)
  877. {
  878. #ifdef PLATFORM_LINUX
  879. list_splice(list, head);
  880. #else
  881. #error "TBD\n"
  882. #endif
  883. }
  884. inline void rtw_list_splice_init(_list *list, _list *head)
  885. {
  886. #ifdef PLATFORM_LINUX
  887. list_splice_init(list, head);
  888. #else
  889. #error "TBD\n"
  890. #endif
  891. }
  892. inline void rtw_list_splice_tail(_list *list, _list *head)
  893. {
  894. #ifdef PLATFORM_LINUX
  895. #if (LINUX_VERSION_CODE < KERNEL_VERSION(2, 6, 27))
  896. if (!list_empty(list))
  897. __list_splice(list, head);
  898. #else
  899. list_splice_tail(list, head);
  900. #endif
  901. #else
  902. #error "TBD\n"
  903. #endif
  904. }
  905. inline void rtw_hlist_head_init(rtw_hlist_head *h)
  906. {
  907. #ifdef PLATFORM_LINUX
  908. INIT_HLIST_HEAD(h);
  909. #else
  910. #error "TBD\n"
  911. #endif
  912. }
  913. inline void rtw_hlist_add_head(rtw_hlist_node *n, rtw_hlist_head *h)
  914. {
  915. #ifdef PLATFORM_LINUX
  916. hlist_add_head(n, h);
  917. #else
  918. #error "TBD\n"
  919. #endif
  920. }
  921. inline void rtw_hlist_del(rtw_hlist_node *n)
  922. {
  923. #ifdef PLATFORM_LINUX
  924. hlist_del(n);
  925. #else
  926. #error "TBD\n"
  927. #endif
  928. }
  929. inline void rtw_hlist_add_head_rcu(rtw_hlist_node *n, rtw_hlist_head *h)
  930. {
  931. #ifdef PLATFORM_LINUX
  932. hlist_add_head_rcu(n, h);
  933. #else
  934. #error "TBD\n"
  935. #endif
  936. }
  937. inline void rtw_hlist_del_rcu(rtw_hlist_node *n)
  938. {
  939. #ifdef PLATFORM_LINUX
  940. hlist_del_rcu(n);
  941. #else
  942. #error "TBD\n"
  943. #endif
  944. }
  945. void rtw_init_timer(_timer *ptimer, void *padapter, void *pfunc, void *ctx)
  946. {
  947. _adapter *adapter = (_adapter *)padapter;
  948. #ifdef PLATFORM_LINUX
  949. _init_timer(ptimer, adapter->pnetdev, pfunc, ctx);
  950. #endif
  951. #ifdef PLATFORM_FREEBSD
  952. _init_timer(ptimer, adapter->pifp, pfunc, ctx);
  953. #endif
  954. #ifdef PLATFORM_WINDOWS
  955. _init_timer(ptimer, adapter->hndis_adapter, pfunc, ctx);
  956. #endif
  957. }
  958. /*
  959. Caller must check if the list is empty before calling rtw_list_delete
  960. */
  961. void _rtw_init_sema(_sema *sema, int init_val)
  962. {
  963. #ifdef PLATFORM_LINUX
  964. sema_init(sema, init_val);
  965. #endif
  966. #ifdef PLATFORM_FREEBSD
  967. sema_init(sema, init_val, "rtw_drv");
  968. #endif
  969. #ifdef PLATFORM_OS_XP
  970. KeInitializeSemaphore(sema, init_val, SEMA_UPBND); /* count=0; */
  971. #endif
  972. #ifdef PLATFORM_OS_CE
  973. if (*sema == NULL)
  974. *sema = CreateSemaphore(NULL, init_val, SEMA_UPBND, NULL);
  975. #endif
  976. }
  977. void _rtw_free_sema(_sema *sema)
  978. {
  979. #ifdef PLATFORM_FREEBSD
  980. sema_destroy(sema);
  981. #endif
  982. #ifdef PLATFORM_OS_CE
  983. CloseHandle(*sema);
  984. #endif
  985. }
  986. void _rtw_up_sema(_sema *sema)
  987. {
  988. #ifdef PLATFORM_LINUX
  989. up(sema);
  990. #endif
  991. #ifdef PLATFORM_FREEBSD
  992. sema_post(sema);
  993. #endif
  994. #ifdef PLATFORM_OS_XP
  995. KeReleaseSemaphore(sema, IO_NETWORK_INCREMENT, 1, FALSE);
  996. #endif
  997. #ifdef PLATFORM_OS_CE
  998. ReleaseSemaphore(*sema, 1, NULL);
  999. #endif
  1000. }
  1001. u32 _rtw_down_sema(_sema *sema)
  1002. {
  1003. #ifdef PLATFORM_LINUX
  1004. if (down_interruptible(sema))
  1005. return _FAIL;
  1006. else
  1007. return _SUCCESS;
  1008. #endif
  1009. #ifdef PLATFORM_FREEBSD
  1010. sema_wait(sema);
  1011. return _SUCCESS;
  1012. #endif
  1013. #ifdef PLATFORM_OS_XP
  1014. if (STATUS_SUCCESS == KeWaitForSingleObject(sema, Executive, KernelMode, TRUE, NULL))
  1015. return _SUCCESS;
  1016. else
  1017. return _FAIL;
  1018. #endif
  1019. #ifdef PLATFORM_OS_CE
  1020. if (WAIT_OBJECT_0 == WaitForSingleObject(*sema, INFINITE))
  1021. return _SUCCESS;
  1022. else
  1023. return _FAIL;
  1024. #endif
  1025. }
  1026. inline void thread_exit(_completion *comp)
  1027. {
  1028. #ifdef PLATFORM_LINUX
  1029. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(5, 17, 0))
  1030. kthread_complete_and_exit(comp, 0);
  1031. #else
  1032. complete_and_exit(comp, 0);
  1033. #endif
  1034. #endif
  1035. #ifdef PLATFORM_FREEBSD
  1036. printf("%s", "RTKTHREAD_exit");
  1037. #endif
  1038. #ifdef PLATFORM_OS_CE
  1039. ExitThread(STATUS_SUCCESS);
  1040. #endif
  1041. #ifdef PLATFORM_OS_XP
  1042. PsTerminateSystemThread(STATUS_SUCCESS);
  1043. #endif
  1044. }
  1045. inline void _rtw_init_completion(_completion *comp)
  1046. {
  1047. #ifdef PLATFORM_LINUX
  1048. init_completion(comp);
  1049. #endif
  1050. }
  1051. inline void _rtw_wait_for_comp_timeout(_completion *comp)
  1052. {
  1053. #ifdef PLATFORM_LINUX
  1054. wait_for_completion_timeout(comp, msecs_to_jiffies(3000));
  1055. #endif
  1056. }
  1057. inline void _rtw_wait_for_comp(_completion *comp)
  1058. {
  1059. #ifdef PLATFORM_LINUX
  1060. wait_for_completion(comp);
  1061. #endif
  1062. }
  1063. void _rtw_mutex_init(_mutex *pmutex)
  1064. {
  1065. #ifdef PLATFORM_LINUX
  1066. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 37))
  1067. mutex_init(pmutex);
  1068. #else
  1069. init_MUTEX(pmutex);
  1070. #endif
  1071. #endif
  1072. #ifdef PLATFORM_FREEBSD
  1073. mtx_init(pmutex, "", NULL, MTX_DEF | MTX_RECURSE);
  1074. #endif
  1075. #ifdef PLATFORM_OS_XP
  1076. KeInitializeMutex(pmutex, 0);
  1077. #endif
  1078. #ifdef PLATFORM_OS_CE
  1079. *pmutex = CreateMutex(NULL, _FALSE, NULL);
  1080. #endif
  1081. }
  1082. void _rtw_mutex_free(_mutex *pmutex);
  1083. void _rtw_mutex_free(_mutex *pmutex)
  1084. {
  1085. #ifdef PLATFORM_LINUX
  1086. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 37))
  1087. mutex_destroy(pmutex);
  1088. #else
  1089. #endif
  1090. #ifdef PLATFORM_FREEBSD
  1091. sema_destroy(pmutex);
  1092. #endif
  1093. #endif
  1094. #ifdef PLATFORM_OS_XP
  1095. #endif
  1096. #ifdef PLATFORM_OS_CE
  1097. #endif
  1098. }
  1099. void _rtw_spinlock_init(_lock *plock)
  1100. {
  1101. #ifdef PLATFORM_LINUX
  1102. spin_lock_init(plock);
  1103. #endif
  1104. #ifdef PLATFORM_FREEBSD
  1105. mtx_init(plock, "", NULL, MTX_DEF | MTX_RECURSE);
  1106. #endif
  1107. #ifdef PLATFORM_WINDOWS
  1108. NdisAllocateSpinLock(plock);
  1109. #endif
  1110. }
  1111. void _rtw_spinlock_free(_lock *plock)
  1112. {
  1113. #ifdef PLATFORM_FREEBSD
  1114. mtx_destroy(plock);
  1115. #endif
  1116. #ifdef PLATFORM_WINDOWS
  1117. NdisFreeSpinLock(plock);
  1118. #endif
  1119. }
  1120. #ifdef PLATFORM_FREEBSD
  1121. extern PADAPTER prtw_lock;
  1122. void rtw_mtx_lock(_lock *plock)
  1123. {
  1124. if (prtw_lock)
  1125. mtx_lock(&prtw_lock->glock);
  1126. else
  1127. printf("%s prtw_lock==NULL", __FUNCTION__);
  1128. }
  1129. void rtw_mtx_unlock(_lock *plock)
  1130. {
  1131. if (prtw_lock)
  1132. mtx_unlock(&prtw_lock->glock);
  1133. else
  1134. printf("%s prtw_lock==NULL", __FUNCTION__);
  1135. }
  1136. #endif /* PLATFORM_FREEBSD */
  1137. void _rtw_spinlock(_lock *plock)
  1138. {
  1139. #ifdef PLATFORM_LINUX
  1140. spin_lock(plock);
  1141. #endif
  1142. #ifdef PLATFORM_FREEBSD
  1143. mtx_lock(plock);
  1144. #endif
  1145. #ifdef PLATFORM_WINDOWS
  1146. NdisAcquireSpinLock(plock);
  1147. #endif
  1148. }
  1149. void _rtw_spinunlock(_lock *plock)
  1150. {
  1151. #ifdef PLATFORM_LINUX
  1152. spin_unlock(plock);
  1153. #endif
  1154. #ifdef PLATFORM_FREEBSD
  1155. mtx_unlock(plock);
  1156. #endif
  1157. #ifdef PLATFORM_WINDOWS
  1158. NdisReleaseSpinLock(plock);
  1159. #endif
  1160. }
  1161. void _rtw_spinlock_ex(_lock *plock)
  1162. {
  1163. #ifdef PLATFORM_LINUX
  1164. spin_lock(plock);
  1165. #endif
  1166. #ifdef PLATFORM_FREEBSD
  1167. mtx_lock(plock);
  1168. #endif
  1169. #ifdef PLATFORM_WINDOWS
  1170. NdisDprAcquireSpinLock(plock);
  1171. #endif
  1172. }
  1173. void _rtw_spinunlock_ex(_lock *plock)
  1174. {
  1175. #ifdef PLATFORM_LINUX
  1176. spin_unlock(plock);
  1177. #endif
  1178. #ifdef PLATFORM_FREEBSD
  1179. mtx_unlock(plock);
  1180. #endif
  1181. #ifdef PLATFORM_WINDOWS
  1182. NdisDprReleaseSpinLock(plock);
  1183. #endif
  1184. }
  1185. void _rtw_init_queue(_queue *pqueue)
  1186. {
  1187. _rtw_init_listhead(&(pqueue->queue));
  1188. _rtw_spinlock_init(&(pqueue->lock));
  1189. }
  1190. void _rtw_deinit_queue(_queue *pqueue)
  1191. {
  1192. _rtw_spinlock_free(&(pqueue->lock));
  1193. }
  1194. u32 _rtw_queue_empty(_queue *pqueue)
  1195. {
  1196. return rtw_is_list_empty(&(pqueue->queue));
  1197. }
  1198. u32 rtw_end_of_queue_search(_list *head, _list *plist)
  1199. {
  1200. if (head == plist)
  1201. return _TRUE;
  1202. else
  1203. return _FALSE;
  1204. }
  1205. systime _rtw_get_current_time(void)
  1206. {
  1207. #ifdef PLATFORM_LINUX
  1208. return jiffies;
  1209. #endif
  1210. #ifdef PLATFORM_FREEBSD
  1211. struct timeval tvp;
  1212. getmicrotime(&tvp);
  1213. return tvp.tv_sec;
  1214. #endif
  1215. #ifdef PLATFORM_WINDOWS
  1216. LARGE_INTEGER SystemTime;
  1217. NdisGetCurrentSystemTime(&SystemTime);
  1218. return SystemTime.LowPart;/* count of 100-nanosecond intervals */
  1219. #endif
  1220. }
  1221. inline u32 _rtw_systime_to_ms(systime stime)
  1222. {
  1223. #ifdef PLATFORM_LINUX
  1224. return jiffies_to_msecs(stime);
  1225. #endif
  1226. #ifdef PLATFORM_FREEBSD
  1227. return stime * 1000;
  1228. #endif
  1229. #ifdef PLATFORM_WINDOWS
  1230. return stime / 10000 ;
  1231. #endif
  1232. }
  1233. inline systime _rtw_ms_to_systime(u32 ms)
  1234. {
  1235. #ifdef PLATFORM_LINUX
  1236. return msecs_to_jiffies(ms);
  1237. #endif
  1238. #ifdef PLATFORM_FREEBSD
  1239. return ms / 1000;
  1240. #endif
  1241. #ifdef PLATFORM_WINDOWS
  1242. return ms * 10000 ;
  1243. #endif
  1244. }
  1245. inline systime _rtw_us_to_systime(u32 us)
  1246. {
  1247. #ifdef PLATFORM_LINUX
  1248. return usecs_to_jiffies(us);
  1249. #else
  1250. #error "TBD\n"
  1251. #endif
  1252. }
  1253. /* the input parameter start use the same unit as returned by rtw_get_current_time */
  1254. inline s32 _rtw_get_passing_time_ms(systime start)
  1255. {
  1256. return _rtw_systime_to_ms(_rtw_get_current_time() - start);
  1257. }
  1258. inline s32 _rtw_get_remaining_time_ms(systime end)
  1259. {
  1260. return _rtw_systime_to_ms(end - _rtw_get_current_time());
  1261. }
  1262. inline s32 _rtw_get_time_interval_ms(systime start, systime end)
  1263. {
  1264. return _rtw_systime_to_ms(end - start);
  1265. }
  1266. inline bool _rtw_time_after(systime a, systime b)
  1267. {
  1268. #ifdef PLATFORM_LINUX
  1269. return time_after(a, b);
  1270. #else
  1271. #error "TBD\n"
  1272. #endif
  1273. }
  1274. void rtw_sleep_schedulable(int ms)
  1275. {
  1276. #ifdef PLATFORM_LINUX
  1277. u32 delta;
  1278. delta = (ms * HZ) / 1000; /* (ms) */
  1279. if (delta == 0) {
  1280. delta = 1;/* 1 ms */
  1281. }
  1282. set_current_state(TASK_INTERRUPTIBLE);
  1283. if (schedule_timeout(delta) != 0)
  1284. return ;
  1285. return;
  1286. #endif
  1287. #ifdef PLATFORM_FREEBSD
  1288. DELAY(ms * 1000);
  1289. return ;
  1290. #endif
  1291. #ifdef PLATFORM_WINDOWS
  1292. NdisMSleep(ms * 1000); /* (us)*1000=(ms) */
  1293. #endif
  1294. }
  1295. void rtw_msleep_os(int ms)
  1296. {
  1297. #ifdef PLATFORM_LINUX
  1298. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 36))
  1299. if (ms < 20) {
  1300. unsigned long us = ms * 1000UL;
  1301. usleep_range(us, us + 1000UL);
  1302. } else
  1303. #endif
  1304. msleep((unsigned int)ms);
  1305. #endif
  1306. #ifdef PLATFORM_FREEBSD
  1307. /* Delay for delay microseconds */
  1308. DELAY(ms * 1000);
  1309. return ;
  1310. #endif
  1311. #ifdef PLATFORM_WINDOWS
  1312. NdisMSleep(ms * 1000); /* (us)*1000=(ms) */
  1313. #endif
  1314. }
  1315. void rtw_usleep_os(int us)
  1316. {
  1317. #ifdef PLATFORM_LINUX
  1318. /* msleep((unsigned int)us); */
  1319. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 36))
  1320. usleep_range(us, us + 1);
  1321. #else
  1322. if (1 < (us / 1000))
  1323. msleep(1);
  1324. else
  1325. msleep((us / 1000) + 1);
  1326. #endif
  1327. #endif
  1328. #ifdef PLATFORM_FREEBSD
  1329. /* Delay for delay microseconds */
  1330. DELAY(us);
  1331. return ;
  1332. #endif
  1333. #ifdef PLATFORM_WINDOWS
  1334. NdisMSleep(us); /* (us) */
  1335. #endif
  1336. }
  1337. #ifdef DBG_DELAY_OS
  1338. void _rtw_mdelay_os(int ms, const char *func, const int line)
  1339. {
  1340. #if 0
  1341. if (ms > 10)
  1342. RTW_INFO("%s:%d %s(%d)\n", func, line, __FUNCTION__, ms);
  1343. rtw_msleep_os(ms);
  1344. return;
  1345. #endif
  1346. RTW_INFO("%s:%d %s(%d)\n", func, line, __FUNCTION__, ms);
  1347. #if defined(PLATFORM_LINUX)
  1348. mdelay((unsigned long)ms);
  1349. #elif defined(PLATFORM_WINDOWS)
  1350. NdisStallExecution(ms * 1000); /* (us)*1000=(ms) */
  1351. #endif
  1352. }
  1353. void _rtw_udelay_os(int us, const char *func, const int line)
  1354. {
  1355. #if 0
  1356. if (us > 1000) {
  1357. RTW_INFO("%s:%d %s(%d)\n", func, line, __FUNCTION__, us);
  1358. rtw_usleep_os(us);
  1359. return;
  1360. }
  1361. #endif
  1362. RTW_INFO("%s:%d %s(%d)\n", func, line, __FUNCTION__, us);
  1363. #if defined(PLATFORM_LINUX)
  1364. udelay((unsigned long)us);
  1365. #elif defined(PLATFORM_WINDOWS)
  1366. NdisStallExecution(us); /* (us) */
  1367. #endif
  1368. }
  1369. #else
  1370. void rtw_mdelay_os(int ms)
  1371. {
  1372. #ifdef PLATFORM_LINUX
  1373. mdelay((unsigned long)ms);
  1374. #endif
  1375. #ifdef PLATFORM_FREEBSD
  1376. DELAY(ms * 1000);
  1377. return ;
  1378. #endif
  1379. #ifdef PLATFORM_WINDOWS
  1380. NdisStallExecution(ms * 1000); /* (us)*1000=(ms) */
  1381. #endif
  1382. }
  1383. void rtw_udelay_os(int us)
  1384. {
  1385. #ifdef PLATFORM_LINUX
  1386. udelay((unsigned long)us);
  1387. #endif
  1388. #ifdef PLATFORM_FREEBSD
  1389. /* Delay for delay microseconds */
  1390. DELAY(us);
  1391. return ;
  1392. #endif
  1393. #ifdef PLATFORM_WINDOWS
  1394. NdisStallExecution(us); /* (us) */
  1395. #endif
  1396. }
  1397. #endif
  1398. void rtw_yield_os(void)
  1399. {
  1400. #ifdef PLATFORM_LINUX
  1401. yield();
  1402. #endif
  1403. #ifdef PLATFORM_FREEBSD
  1404. yield();
  1405. #endif
  1406. #ifdef PLATFORM_WINDOWS
  1407. SwitchToThread();
  1408. #endif
  1409. }
  1410. bool rtw_macaddr_is_larger(const u8 *a, const u8 *b)
  1411. {
  1412. u32 va, vb;
  1413. va = be32_to_cpu(*((u32 *)a));
  1414. vb = be32_to_cpu(*((u32 *)b));
  1415. if (va > vb)
  1416. return 1;
  1417. else if (va < vb)
  1418. return 0;
  1419. return be16_to_cpu(*((u16 *)(a + 4))) > be16_to_cpu(*((u16 *)(b + 4)));
  1420. }
  1421. #define RTW_SUSPEND_LOCK_NAME "rtw_wifi"
  1422. #define RTW_SUSPEND_TRAFFIC_LOCK_NAME "rtw_wifi_traffic"
  1423. #define RTW_SUSPEND_RESUME_LOCK_NAME "rtw_wifi_resume"
  1424. #ifdef CONFIG_WAKELOCK
  1425. static struct wake_lock rtw_suspend_lock;
  1426. static struct wake_lock rtw_suspend_traffic_lock;
  1427. static struct wake_lock rtw_suspend_resume_lock;
  1428. #elif defined(CONFIG_ANDROID_POWER)
  1429. static android_suspend_lock_t rtw_suspend_lock = {
  1430. .name = RTW_SUSPEND_LOCK_NAME
  1431. };
  1432. static android_suspend_lock_t rtw_suspend_traffic_lock = {
  1433. .name = RTW_SUSPEND_TRAFFIC_LOCK_NAME
  1434. };
  1435. static android_suspend_lock_t rtw_suspend_resume_lock = {
  1436. .name = RTW_SUSPEND_RESUME_LOCK_NAME
  1437. };
  1438. #endif
  1439. inline void rtw_suspend_lock_init(void)
  1440. {
  1441. #ifdef CONFIG_WAKELOCK
  1442. wake_lock_init(&rtw_suspend_lock, WAKE_LOCK_SUSPEND, RTW_SUSPEND_LOCK_NAME);
  1443. wake_lock_init(&rtw_suspend_traffic_lock, WAKE_LOCK_SUSPEND, RTW_SUSPEND_TRAFFIC_LOCK_NAME);
  1444. wake_lock_init(&rtw_suspend_resume_lock, WAKE_LOCK_SUSPEND, RTW_SUSPEND_RESUME_LOCK_NAME);
  1445. #elif defined(CONFIG_ANDROID_POWER)
  1446. android_init_suspend_lock(&rtw_suspend_lock);
  1447. android_init_suspend_lock(&rtw_suspend_traffic_lock);
  1448. android_init_suspend_lock(&rtw_suspend_resume_lock);
  1449. #endif
  1450. }
  1451. inline void rtw_suspend_lock_uninit(void)
  1452. {
  1453. #ifdef CONFIG_WAKELOCK
  1454. wake_lock_destroy(&rtw_suspend_lock);
  1455. wake_lock_destroy(&rtw_suspend_traffic_lock);
  1456. wake_lock_destroy(&rtw_suspend_resume_lock);
  1457. #elif defined(CONFIG_ANDROID_POWER)
  1458. android_uninit_suspend_lock(&rtw_suspend_lock);
  1459. android_uninit_suspend_lock(&rtw_suspend_traffic_lock);
  1460. android_uninit_suspend_lock(&rtw_suspend_resume_lock);
  1461. #endif
  1462. }
  1463. inline void rtw_lock_suspend(void)
  1464. {
  1465. #ifdef CONFIG_WAKELOCK
  1466. wake_lock(&rtw_suspend_lock);
  1467. #elif defined(CONFIG_ANDROID_POWER)
  1468. android_lock_suspend(&rtw_suspend_lock);
  1469. #endif
  1470. #if defined(CONFIG_WAKELOCK) || defined(CONFIG_ANDROID_POWER)
  1471. /* RTW_INFO("####%s: suspend_lock_count:%d####\n", __FUNCTION__, rtw_suspend_lock.stat.count); */
  1472. #endif
  1473. }
  1474. inline void rtw_unlock_suspend(void)
  1475. {
  1476. #ifdef CONFIG_WAKELOCK
  1477. wake_unlock(&rtw_suspend_lock);
  1478. #elif defined(CONFIG_ANDROID_POWER)
  1479. android_unlock_suspend(&rtw_suspend_lock);
  1480. #endif
  1481. #if defined(CONFIG_WAKELOCK) || defined(CONFIG_ANDROID_POWER)
  1482. /* RTW_INFO("####%s: suspend_lock_count:%d####\n", __FUNCTION__, rtw_suspend_lock.stat.count); */
  1483. #endif
  1484. }
  1485. inline void rtw_resume_lock_suspend(void)
  1486. {
  1487. #ifdef CONFIG_WAKELOCK
  1488. wake_lock(&rtw_suspend_resume_lock);
  1489. #elif defined(CONFIG_ANDROID_POWER)
  1490. android_lock_suspend(&rtw_suspend_resume_lock);
  1491. #endif
  1492. #if defined(CONFIG_WAKELOCK) || defined(CONFIG_ANDROID_POWER)
  1493. /* RTW_INFO("####%s: suspend_lock_count:%d####\n", __FUNCTION__, rtw_suspend_lock.stat.count); */
  1494. #endif
  1495. }
  1496. inline void rtw_resume_unlock_suspend(void)
  1497. {
  1498. #ifdef CONFIG_WAKELOCK
  1499. wake_unlock(&rtw_suspend_resume_lock);
  1500. #elif defined(CONFIG_ANDROID_POWER)
  1501. android_unlock_suspend(&rtw_suspend_resume_lock);
  1502. #endif
  1503. #if defined(CONFIG_WAKELOCK) || defined(CONFIG_ANDROID_POWER)
  1504. /* RTW_INFO("####%s: suspend_lock_count:%d####\n", __FUNCTION__, rtw_suspend_lock.stat.count); */
  1505. #endif
  1506. }
  1507. inline void rtw_lock_suspend_timeout(u32 timeout_ms)
  1508. {
  1509. #ifdef CONFIG_WAKELOCK
  1510. wake_lock_timeout(&rtw_suspend_lock, rtw_ms_to_systime(timeout_ms));
  1511. #elif defined(CONFIG_ANDROID_POWER)
  1512. android_lock_suspend_auto_expire(&rtw_suspend_lock, rtw_ms_to_systime(timeout_ms));
  1513. #endif
  1514. }
  1515. inline void rtw_lock_traffic_suspend_timeout(u32 timeout_ms)
  1516. {
  1517. #ifdef CONFIG_WAKELOCK
  1518. wake_lock_timeout(&rtw_suspend_traffic_lock, rtw_ms_to_systime(timeout_ms));
  1519. #elif defined(CONFIG_ANDROID_POWER)
  1520. android_lock_suspend_auto_expire(&rtw_suspend_traffic_lock, rtw_ms_to_systime(timeout_ms));
  1521. #endif
  1522. /* RTW_INFO("traffic lock timeout:%d\n", timeout_ms); */
  1523. }
  1524. inline void rtw_set_bit(int nr, unsigned long *addr)
  1525. {
  1526. #ifdef PLATFORM_LINUX
  1527. set_bit(nr, addr);
  1528. #else
  1529. #error "TBD\n";
  1530. #endif
  1531. }
  1532. inline void rtw_clear_bit(int nr, unsigned long *addr)
  1533. {
  1534. #ifdef PLATFORM_LINUX
  1535. clear_bit(nr, addr);
  1536. #else
  1537. #error "TBD\n";
  1538. #endif
  1539. }
  1540. inline int rtw_test_and_clear_bit(int nr, unsigned long *addr)
  1541. {
  1542. #ifdef PLATFORM_LINUX
  1543. return test_and_clear_bit(nr, addr);
  1544. #else
  1545. #error "TBD\n";
  1546. #endif
  1547. }
  1548. inline void ATOMIC_SET(ATOMIC_T *v, int i)
  1549. {
  1550. #ifdef PLATFORM_LINUX
  1551. atomic_set(v, i);
  1552. #elif defined(PLATFORM_WINDOWS)
  1553. *v = i; /* other choice???? */
  1554. #elif defined(PLATFORM_FREEBSD)
  1555. atomic_set_int(v, i);
  1556. #endif
  1557. }
  1558. inline int ATOMIC_READ(ATOMIC_T *v)
  1559. {
  1560. #ifdef PLATFORM_LINUX
  1561. return atomic_read(v);
  1562. #elif defined(PLATFORM_WINDOWS)
  1563. return *v; /* other choice???? */
  1564. #elif defined(PLATFORM_FREEBSD)
  1565. return atomic_load_acq_32(v);
  1566. #endif
  1567. }
  1568. inline void ATOMIC_ADD(ATOMIC_T *v, int i)
  1569. {
  1570. #ifdef PLATFORM_LINUX
  1571. atomic_add(i, v);
  1572. #elif defined(PLATFORM_WINDOWS)
  1573. InterlockedAdd(v, i);
  1574. #elif defined(PLATFORM_FREEBSD)
  1575. atomic_add_int(v, i);
  1576. #endif
  1577. }
  1578. inline void ATOMIC_SUB(ATOMIC_T *v, int i)
  1579. {
  1580. #ifdef PLATFORM_LINUX
  1581. atomic_sub(i, v);
  1582. #elif defined(PLATFORM_WINDOWS)
  1583. InterlockedAdd(v, -i);
  1584. #elif defined(PLATFORM_FREEBSD)
  1585. atomic_subtract_int(v, i);
  1586. #endif
  1587. }
  1588. inline void ATOMIC_INC(ATOMIC_T *v)
  1589. {
  1590. #ifdef PLATFORM_LINUX
  1591. atomic_inc(v);
  1592. #elif defined(PLATFORM_WINDOWS)
  1593. InterlockedIncrement(v);
  1594. #elif defined(PLATFORM_FREEBSD)
  1595. atomic_add_int(v, 1);
  1596. #endif
  1597. }
  1598. inline void ATOMIC_DEC(ATOMIC_T *v)
  1599. {
  1600. #ifdef PLATFORM_LINUX
  1601. atomic_dec(v);
  1602. #elif defined(PLATFORM_WINDOWS)
  1603. InterlockedDecrement(v);
  1604. #elif defined(PLATFORM_FREEBSD)
  1605. atomic_subtract_int(v, 1);
  1606. #endif
  1607. }
  1608. inline int ATOMIC_ADD_RETURN(ATOMIC_T *v, int i)
  1609. {
  1610. #ifdef PLATFORM_LINUX
  1611. return atomic_add_return(i, v);
  1612. #elif defined(PLATFORM_WINDOWS)
  1613. return InterlockedAdd(v, i);
  1614. #elif defined(PLATFORM_FREEBSD)
  1615. atomic_add_int(v, i);
  1616. return atomic_load_acq_32(v);
  1617. #endif
  1618. }
  1619. inline int ATOMIC_SUB_RETURN(ATOMIC_T *v, int i)
  1620. {
  1621. #ifdef PLATFORM_LINUX
  1622. return atomic_sub_return(i, v);
  1623. #elif defined(PLATFORM_WINDOWS)
  1624. return InterlockedAdd(v, -i);
  1625. #elif defined(PLATFORM_FREEBSD)
  1626. atomic_subtract_int(v, i);
  1627. return atomic_load_acq_32(v);
  1628. #endif
  1629. }
  1630. inline int ATOMIC_INC_RETURN(ATOMIC_T *v)
  1631. {
  1632. #ifdef PLATFORM_LINUX
  1633. return atomic_inc_return(v);
  1634. #elif defined(PLATFORM_WINDOWS)
  1635. return InterlockedIncrement(v);
  1636. #elif defined(PLATFORM_FREEBSD)
  1637. atomic_add_int(v, 1);
  1638. return atomic_load_acq_32(v);
  1639. #endif
  1640. }
  1641. inline int ATOMIC_DEC_RETURN(ATOMIC_T *v)
  1642. {
  1643. #ifdef PLATFORM_LINUX
  1644. return atomic_dec_return(v);
  1645. #elif defined(PLATFORM_WINDOWS)
  1646. return InterlockedDecrement(v);
  1647. #elif defined(PLATFORM_FREEBSD)
  1648. atomic_subtract_int(v, 1);
  1649. return atomic_load_acq_32(v);
  1650. #endif
  1651. }
  1652. inline bool ATOMIC_INC_UNLESS(ATOMIC_T *v, int u)
  1653. {
  1654. #ifdef PLATFORM_LINUX
  1655. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 15))
  1656. return atomic_add_unless(v, 1, u);
  1657. #else
  1658. /* only make sure not exceed after this function */
  1659. if (ATOMIC_INC_RETURN(v) > u) {
  1660. ATOMIC_DEC(v);
  1661. return 0;
  1662. }
  1663. return 1;
  1664. #endif
  1665. #else
  1666. #error "TBD\n"
  1667. #endif
  1668. }
  1669. #ifdef PLATFORM_LINUX
  1670. /*
  1671. * Open a file with the specific @param path, @param flag, @param mode
  1672. * @param fpp the pointer of struct file pointer to get struct file pointer while file opening is success
  1673. * @param path the path of the file to open
  1674. * @param flag file operation flags, please refer to linux document
  1675. * @param mode please refer to linux document
  1676. * @return Linux specific error code
  1677. */
  1678. static int openFile(struct file **fpp, const char *path, int flag, int mode)
  1679. {
  1680. struct file *fp;
  1681. fp = filp_open(path, flag, mode);
  1682. if (IS_ERR(fp)) {
  1683. *fpp = NULL;
  1684. return PTR_ERR(fp);
  1685. } else {
  1686. *fpp = fp;
  1687. return 0;
  1688. }
  1689. }
  1690. /*
  1691. * Close the file with the specific @param fp
  1692. * @param fp the pointer of struct file to close
  1693. * @return always 0
  1694. */
  1695. static int closeFile(struct file *fp)
  1696. {
  1697. filp_close(fp, NULL);
  1698. return 0;
  1699. }
  1700. static int readFile(struct file *fp, char *buf, int len)
  1701. {
  1702. int rlen = 0, sum = 0;
  1703. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(4, 1, 0))
  1704. if (!(fp->f_mode & FMODE_CAN_READ))
  1705. #else
  1706. if (!fp->f_op || !fp->f_op->read)
  1707. #endif
  1708. return -EPERM;
  1709. while (sum < len) {
  1710. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(4, 14, 0))
  1711. rlen = kernel_read(fp, buf + sum, len - sum, &fp->f_pos);
  1712. #elif (LINUX_VERSION_CODE >= KERNEL_VERSION(4, 1, 0))
  1713. rlen = __vfs_read(fp, buf + sum, len - sum, &fp->f_pos);
  1714. #else
  1715. rlen = fp->f_op->read(fp, buf + sum, len - sum, &fp->f_pos);
  1716. #endif
  1717. if (rlen > 0)
  1718. sum += rlen;
  1719. else if (0 != rlen)
  1720. return rlen;
  1721. else
  1722. break;
  1723. }
  1724. return sum;
  1725. }
  1726. static int writeFile(struct file *fp, char *buf, int len)
  1727. {
  1728. int wlen = 0, sum = 0;
  1729. if (!fp->f_op || !fp->f_op->write)
  1730. return -EPERM;
  1731. while (sum < len) {
  1732. wlen = fp->f_op->write(fp, buf + sum, len - sum, &fp->f_pos);
  1733. if (wlen > 0)
  1734. sum += wlen;
  1735. else if (0 != wlen)
  1736. return wlen;
  1737. else
  1738. break;
  1739. }
  1740. return sum;
  1741. }
  1742. /*
  1743. * Test if the specifi @param path is a file and readable
  1744. * If readable, @param sz is got
  1745. * @param path the path of the file to test
  1746. * @return Linux specific error code
  1747. */
  1748. static int isFileReadable(const char *path, u32 *sz)
  1749. {
  1750. struct file *fp;
  1751. int ret = 0;
  1752. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1753. mm_segment_t oldfs;
  1754. #endif
  1755. char buf;
  1756. fp = filp_open(path, O_RDONLY, 0);
  1757. if (IS_ERR(fp))
  1758. ret = PTR_ERR(fp);
  1759. else {
  1760. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 10, 0))
  1761. oldfs = get_fs();
  1762. set_fs(KERNEL_DS);
  1763. #elif (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1764. oldfs = force_uaccess_begin();;
  1765. #endif
  1766. if (1 != readFile(fp, &buf, 1))
  1767. ret = PTR_ERR(fp);
  1768. if (ret == 0 && sz) {
  1769. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 19, 0))
  1770. *sz = i_size_read(fp->f_path.dentry->d_inode);
  1771. #else
  1772. *sz = i_size_read(fp->f_dentry->d_inode);
  1773. #endif
  1774. }
  1775. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 10, 0))
  1776. set_fs(oldfs);
  1777. #elif (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1778. force_uaccess_end(oldfs);
  1779. #endif
  1780. filp_close(fp, NULL);
  1781. }
  1782. return ret;
  1783. }
  1784. /*
  1785. * Open the file with @param path and retrive the file content into memory starting from @param buf for @param sz at most
  1786. * @param path the path of the file to open and read
  1787. * @param buf the starting address of the buffer to store file content
  1788. * @param sz how many bytes to read at most
  1789. * @return the byte we've read, or Linux specific error code
  1790. */
  1791. static int retriveFromFile(const char *path, u8 *buf, u32 sz)
  1792. {
  1793. int ret = -1;
  1794. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1795. mm_segment_t oldfs;
  1796. #endif
  1797. struct file *fp;
  1798. if (path && buf) {
  1799. ret = openFile(&fp, path, O_RDONLY, 0);
  1800. if (0 == ret) {
  1801. RTW_INFO("%s openFile path:%s fp=%p\n", __FUNCTION__, path , fp);
  1802. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 10, 0))
  1803. oldfs = get_fs();
  1804. set_fs(KERNEL_DS);
  1805. #elif (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1806. oldfs = force_uaccess_begin();
  1807. #endif
  1808. ret = readFile(fp, buf, sz);
  1809. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 10, 0))
  1810. set_fs(oldfs);
  1811. #elif (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1812. force_uaccess_end(oldfs);
  1813. #endif
  1814. closeFile(fp);
  1815. RTW_INFO("%s readFile, ret:%d\n", __FUNCTION__, ret);
  1816. } else
  1817. RTW_INFO("%s openFile path:%s Fail, ret:%d\n", __FUNCTION__, path, ret);
  1818. } else {
  1819. RTW_INFO("%s NULL pointer\n", __FUNCTION__);
  1820. ret = -EINVAL;
  1821. }
  1822. return ret;
  1823. }
  1824. /*
  1825. * Open the file with @param path and wirte @param sz byte of data starting from @param buf into the file
  1826. * @param path the path of the file to open and write
  1827. * @param buf the starting address of the data to write into file
  1828. * @param sz how many bytes to write at most
  1829. * @return the byte we've written, or Linux specific error code
  1830. */
  1831. static int storeToFile(const char *path, u8 *buf, u32 sz)
  1832. {
  1833. int ret = 0;
  1834. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1835. mm_segment_t oldfs;
  1836. #endif
  1837. struct file *fp;
  1838. if (path && buf) {
  1839. ret = openFile(&fp, path, O_CREAT | O_WRONLY, 0666);
  1840. if (0 == ret) {
  1841. RTW_INFO("%s openFile path:%s fp=%p\n", __FUNCTION__, path , fp);
  1842. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 10, 0))
  1843. oldfs = get_fs();
  1844. set_fs(KERNEL_DS);
  1845. #elif (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1846. oldfs = force_uaccess_begin();
  1847. #endif
  1848. ret = writeFile(fp, buf, sz);
  1849. #if (LINUX_VERSION_CODE < KERNEL_VERSION(5, 10, 0))
  1850. set_fs(oldfs);
  1851. #elif (LINUX_VERSION_CODE < KERNEL_VERSION(5, 18, 0))
  1852. force_uaccess_end(oldfs);
  1853. #endif
  1854. closeFile(fp);
  1855. RTW_INFO("%s writeFile, ret:%d\n", __FUNCTION__, ret);
  1856. } else
  1857. RTW_INFO("%s openFile path:%s Fail, ret:%d\n", __FUNCTION__, path, ret);
  1858. } else {
  1859. RTW_INFO("%s NULL pointer\n", __FUNCTION__);
  1860. ret = -EINVAL;
  1861. }
  1862. return ret;
  1863. }
  1864. #endif /* PLATFORM_LINUX */
  1865. /*
  1866. * Test if the specifi @param path is a file and readable
  1867. * @param path the path of the file to test
  1868. * @return _TRUE or _FALSE
  1869. */
  1870. int rtw_is_file_readable(const char *path)
  1871. {
  1872. #ifdef PLATFORM_LINUX
  1873. if (isFileReadable(path, NULL) == 0)
  1874. return _TRUE;
  1875. else
  1876. return _FALSE;
  1877. #else
  1878. /* Todo... */
  1879. return _FALSE;
  1880. #endif
  1881. }
  1882. /*
  1883. * Test if the specifi @param path is a file and readable.
  1884. * If readable, @param sz is got
  1885. * @param path the path of the file to test
  1886. * @return _TRUE or _FALSE
  1887. */
  1888. int rtw_is_file_readable_with_size(const char *path, u32 *sz)
  1889. {
  1890. #ifdef PLATFORM_LINUX
  1891. if (isFileReadable(path, sz) == 0)
  1892. return _TRUE;
  1893. else
  1894. return _FALSE;
  1895. #else
  1896. /* Todo... */
  1897. return _FALSE;
  1898. #endif
  1899. }
  1900. /*
  1901. * Open the file with @param path and retrive the file content into memory starting from @param buf for @param sz at most
  1902. * @param path the path of the file to open and read
  1903. * @param buf the starting address of the buffer to store file content
  1904. * @param sz how many bytes to read at most
  1905. * @return the byte we've read
  1906. */
  1907. int rtw_retrieve_from_file(const char *path, u8 *buf, u32 sz)
  1908. {
  1909. #ifdef PLATFORM_LINUX
  1910. int ret = retriveFromFile(path, buf, sz);
  1911. return ret >= 0 ? ret : 0;
  1912. #else
  1913. /* Todo... */
  1914. return 0;
  1915. #endif
  1916. }
  1917. /*
  1918. * Open the file with @param path and wirte @param sz byte of data starting from @param buf into the file
  1919. * @param path the path of the file to open and write
  1920. * @param buf the starting address of the data to write into file
  1921. * @param sz how many bytes to write at most
  1922. * @return the byte we've written
  1923. */
  1924. int rtw_store_to_file(const char *path, u8 *buf, u32 sz)
  1925. {
  1926. #ifdef PLATFORM_LINUX
  1927. int ret = storeToFile(path, buf, sz);
  1928. return ret >= 0 ? ret : 0;
  1929. #else
  1930. /* Todo... */
  1931. return 0;
  1932. #endif
  1933. }
  1934. #ifdef PLATFORM_LINUX
  1935. struct net_device *rtw_alloc_etherdev_with_old_priv(int sizeof_priv, void *old_priv)
  1936. {
  1937. struct net_device *pnetdev;
  1938. struct rtw_netdev_priv_indicator *pnpi;
  1939. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 35))
  1940. pnetdev = alloc_etherdev_mq(sizeof(struct rtw_netdev_priv_indicator), 4);
  1941. #else
  1942. pnetdev = alloc_etherdev(sizeof(struct rtw_netdev_priv_indicator));
  1943. #endif
  1944. if (!pnetdev)
  1945. goto RETURN;
  1946. pnpi = netdev_priv(pnetdev);
  1947. pnpi->priv = old_priv;
  1948. pnpi->sizeof_priv = sizeof_priv;
  1949. RETURN:
  1950. return pnetdev;
  1951. }
  1952. struct net_device *rtw_alloc_etherdev(int sizeof_priv)
  1953. {
  1954. struct net_device *pnetdev;
  1955. struct rtw_netdev_priv_indicator *pnpi;
  1956. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(2, 6, 35))
  1957. pnetdev = alloc_etherdev_mq(sizeof(struct rtw_netdev_priv_indicator), 4);
  1958. #else
  1959. pnetdev = alloc_etherdev(sizeof(struct rtw_netdev_priv_indicator));
  1960. #endif
  1961. if (!pnetdev)
  1962. goto RETURN;
  1963. pnpi = netdev_priv(pnetdev);
  1964. pnpi->priv = rtw_zvmalloc(sizeof_priv);
  1965. if (!pnpi->priv) {
  1966. free_netdev(pnetdev);
  1967. pnetdev = NULL;
  1968. goto RETURN;
  1969. }
  1970. pnpi->sizeof_priv = sizeof_priv;
  1971. RETURN:
  1972. return pnetdev;
  1973. }
  1974. void rtw_free_netdev(struct net_device *netdev)
  1975. {
  1976. struct rtw_netdev_priv_indicator *pnpi;
  1977. if (!netdev)
  1978. goto RETURN;
  1979. pnpi = netdev_priv(netdev);
  1980. if (!pnpi->priv)
  1981. goto RETURN;
  1982. free_netdev(netdev);
  1983. RETURN:
  1984. return;
  1985. }
  1986. int rtw_change_ifname(_adapter *padapter, const char *ifname)
  1987. {
  1988. struct dvobj_priv *dvobj;
  1989. struct net_device *pnetdev;
  1990. struct net_device *cur_pnetdev;
  1991. struct rereg_nd_name_data *rereg_priv;
  1992. int ret;
  1993. u8 rtnl_lock_needed;
  1994. if (!padapter)
  1995. goto error;
  1996. dvobj = adapter_to_dvobj(padapter);
  1997. cur_pnetdev = padapter->pnetdev;
  1998. rereg_priv = &padapter->rereg_nd_name_priv;
  1999. /* free the old_pnetdev */
  2000. if (rereg_priv->old_pnetdev) {
  2001. free_netdev(rereg_priv->old_pnetdev);
  2002. rereg_priv->old_pnetdev = NULL;
  2003. }
  2004. rtnl_lock_needed = rtw_rtnl_lock_needed(dvobj);
  2005. if (rtnl_lock_needed)
  2006. unregister_netdev(cur_pnetdev);
  2007. else
  2008. unregister_netdevice(cur_pnetdev);
  2009. rereg_priv->old_pnetdev = cur_pnetdev;
  2010. pnetdev = rtw_init_netdev(padapter);
  2011. if (!pnetdev) {
  2012. ret = -1;
  2013. goto error;
  2014. }
  2015. SET_NETDEV_DEV(pnetdev, dvobj_to_dev(adapter_to_dvobj(padapter)));
  2016. rtw_init_netdev_name(pnetdev, ifname);
  2017. #if LINUX_VERSION_CODE < KERNEL_VERSION(5, 17, 0)
  2018. _rtw_memcpy(pnetdev->dev_addr, adapter_mac_addr(padapter), ETH_ALEN);
  2019. #else
  2020. eth_hw_addr_set(pnetdev, adapter_mac_addr(padapter));
  2021. #endif
  2022. if (rtnl_lock_needed)
  2023. ret = register_netdev(pnetdev);
  2024. else
  2025. ret = register_netdevice(pnetdev);
  2026. if (ret != 0) {
  2027. goto error;
  2028. }
  2029. return 0;
  2030. error:
  2031. return -1;
  2032. }
  2033. #endif
  2034. #ifdef PLATFORM_FREEBSD
  2035. /*
  2036. * Copy a buffer from userspace and write into kernel address
  2037. * space.
  2038. *
  2039. * This emulation just calls the FreeBSD copyin function (to
  2040. * copy data from user space buffer into a kernel space buffer)
  2041. * and is designed to be used with the above io_write_wrapper.
  2042. *
  2043. * This function should return the number of bytes not copied.
  2044. * I.e. success results in a zero value.
  2045. * Negative error values are not returned.
  2046. */
  2047. unsigned long
  2048. copy_from_user(void *to, const void *from, unsigned long n)
  2049. {
  2050. if (copyin(from, to, n) != 0) {
  2051. /* Any errors will be treated as a failure
  2052. to copy any of the requested bytes */
  2053. return n;
  2054. }
  2055. return 0;
  2056. }
  2057. unsigned long
  2058. copy_to_user(void *to, const void *from, unsigned long n)
  2059. {
  2060. if (copyout(from, to, n) != 0) {
  2061. /* Any errors will be treated as a failure
  2062. to copy any of the requested bytes */
  2063. return n;
  2064. }
  2065. return 0;
  2066. }
  2067. /*
  2068. * The usb_register and usb_deregister functions are used to register
  2069. * usb drivers with the usb subsystem. In this compatibility layer
  2070. * emulation a list of drivers (struct usb_driver) is maintained
  2071. * and is used for probing/attaching etc.
  2072. *
  2073. * usb_register and usb_deregister simply call these functions.
  2074. */
  2075. int
  2076. usb_register(struct usb_driver *driver)
  2077. {
  2078. rtw_usb_linux_register(driver);
  2079. return 0;
  2080. }
  2081. int
  2082. usb_deregister(struct usb_driver *driver)
  2083. {
  2084. rtw_usb_linux_deregister(driver);
  2085. return 0;
  2086. }
  2087. void module_init_exit_wrapper(void *arg)
  2088. {
  2089. int (*func)(void) = arg;
  2090. func();
  2091. return;
  2092. }
  2093. #endif /* PLATFORM_FREEBSD */
  2094. #ifdef CONFIG_PLATFORM_SPRD
  2095. #ifdef do_div
  2096. #undef do_div
  2097. #endif
  2098. #include <asm-generic/div64.h>
  2099. #endif
  2100. u64 rtw_modular64(u64 x, u64 y)
  2101. {
  2102. #ifdef PLATFORM_LINUX
  2103. return do_div(x, y);
  2104. #elif defined(PLATFORM_WINDOWS)
  2105. return x % y;
  2106. #elif defined(PLATFORM_FREEBSD)
  2107. return x % y;
  2108. #endif
  2109. }
  2110. u64 rtw_division64(u64 x, u64 y)
  2111. {
  2112. #ifdef PLATFORM_LINUX
  2113. do_div(x, y);
  2114. return x;
  2115. #elif defined(PLATFORM_WINDOWS)
  2116. return x / y;
  2117. #elif defined(PLATFORM_FREEBSD)
  2118. return x / y;
  2119. #endif
  2120. }
  2121. inline u32 rtw_random32(void)
  2122. {
  2123. #ifdef PLATFORM_LINUX
  2124. #if (LINUX_VERSION_CODE >= KERNEL_VERSION(6, 1, 0))
  2125. return get_random_u32();
  2126. #elif (LINUX_VERSION_CODE >= KERNEL_VERSION(3, 8, 0))
  2127. return prandom_u32();
  2128. #elif (LINUX_VERSION_CODE <= KERNEL_VERSION(2, 6, 18))
  2129. u32 random_int;
  2130. get_random_bytes(&random_int , 4);
  2131. return random_int;
  2132. #else
  2133. return random32();
  2134. #endif
  2135. #elif defined(PLATFORM_WINDOWS)
  2136. #error "to be implemented\n"
  2137. #elif defined(PLATFORM_FREEBSD)
  2138. #error "to be implemented\n"
  2139. #endif
  2140. }
  2141. void rtw_buf_free(u8 **buf, u32 *buf_len)
  2142. {
  2143. u32 ori_len;
  2144. if (!buf || !buf_len)
  2145. return;
  2146. ori_len = *buf_len;
  2147. if (*buf) {
  2148. u32 tmp_buf_len = *buf_len;
  2149. *buf_len = 0;
  2150. rtw_mfree(*buf, tmp_buf_len);
  2151. *buf = NULL;
  2152. }
  2153. }
  2154. void rtw_buf_update(u8 **buf, u32 *buf_len, u8 *src, u32 src_len)
  2155. {
  2156. u32 ori_len = 0, dup_len = 0;
  2157. u8 *ori = NULL;
  2158. u8 *dup = NULL;
  2159. if (!buf || !buf_len)
  2160. return;
  2161. if (!src || !src_len)
  2162. goto keep_ori;
  2163. /* duplicate src */
  2164. dup = rtw_malloc(src_len);
  2165. if (dup) {
  2166. dup_len = src_len;
  2167. _rtw_memcpy(dup, src, dup_len);
  2168. }
  2169. keep_ori:
  2170. ori = *buf;
  2171. ori_len = *buf_len;
  2172. /* replace buf with dup */
  2173. *buf_len = 0;
  2174. *buf = dup;
  2175. *buf_len = dup_len;
  2176. /* free ori */
  2177. if (ori && ori_len > 0)
  2178. rtw_mfree(ori, ori_len);
  2179. }
  2180. /**
  2181. * rtw_cbuf_full - test if cbuf is full
  2182. * @cbuf: pointer of struct rtw_cbuf
  2183. *
  2184. * Returns: _TRUE if cbuf is full
  2185. */
  2186. inline bool rtw_cbuf_full(struct rtw_cbuf *cbuf)
  2187. {
  2188. return (cbuf->write == cbuf->read - 1) ? _TRUE : _FALSE;
  2189. }
  2190. /**
  2191. * rtw_cbuf_empty - test if cbuf is empty
  2192. * @cbuf: pointer of struct rtw_cbuf
  2193. *
  2194. * Returns: _TRUE if cbuf is empty
  2195. */
  2196. inline bool rtw_cbuf_empty(struct rtw_cbuf *cbuf)
  2197. {
  2198. return (cbuf->write == cbuf->read) ? _TRUE : _FALSE;
  2199. }
  2200. /**
  2201. * rtw_cbuf_push - push a pointer into cbuf
  2202. * @cbuf: pointer of struct rtw_cbuf
  2203. * @buf: pointer to push in
  2204. *
  2205. * Lock free operation, be careful of the use scheme
  2206. * Returns: _TRUE push success
  2207. */
  2208. bool rtw_cbuf_push(struct rtw_cbuf *cbuf, void *buf)
  2209. {
  2210. if (rtw_cbuf_full(cbuf))
  2211. return _FAIL;
  2212. if (0)
  2213. RTW_INFO("%s on %u\n", __func__, cbuf->write);
  2214. cbuf->bufs[cbuf->write] = buf;
  2215. cbuf->write = (cbuf->write + 1) % cbuf->size;
  2216. return _SUCCESS;
  2217. }
  2218. /**
  2219. * rtw_cbuf_pop - pop a pointer from cbuf
  2220. * @cbuf: pointer of struct rtw_cbuf
  2221. *
  2222. * Lock free operation, be careful of the use scheme
  2223. * Returns: pointer popped out
  2224. */
  2225. void *rtw_cbuf_pop(struct rtw_cbuf *cbuf)
  2226. {
  2227. void *buf;
  2228. if (rtw_cbuf_empty(cbuf))
  2229. return NULL;
  2230. if (0)
  2231. RTW_INFO("%s on %u\n", __func__, cbuf->read);
  2232. buf = cbuf->bufs[cbuf->read];
  2233. cbuf->read = (cbuf->read + 1) % cbuf->size;
  2234. return buf;
  2235. }
  2236. /**
  2237. * rtw_cbuf_alloc - allocte a rtw_cbuf with given size and do initialization
  2238. * @size: size of pointer
  2239. *
  2240. * Returns: pointer of srtuct rtw_cbuf, NULL for allocation failure
  2241. */
  2242. struct rtw_cbuf *rtw_cbuf_alloc(u32 size)
  2243. {
  2244. struct rtw_cbuf *cbuf;
  2245. cbuf = (struct rtw_cbuf *)rtw_malloc(sizeof(*cbuf) + sizeof(void *) * size);
  2246. if (cbuf) {
  2247. cbuf->write = cbuf->read = 0;
  2248. cbuf->size = size;
  2249. }
  2250. return cbuf;
  2251. }
  2252. /**
  2253. * rtw_cbuf_free - free the given rtw_cbuf
  2254. * @cbuf: pointer of struct rtw_cbuf to free
  2255. */
  2256. void rtw_cbuf_free(struct rtw_cbuf *cbuf)
  2257. {
  2258. rtw_mfree((u8 *)cbuf, sizeof(*cbuf) + sizeof(void *) * cbuf->size);
  2259. }
  2260. /**
  2261. * map_readN - read a range of map data
  2262. * @map: map to read
  2263. * @offset: start address to read
  2264. * @len: length to read
  2265. * @buf: pointer of buffer to store data read
  2266. *
  2267. * Returns: _SUCCESS or _FAIL
  2268. */
  2269. int map_readN(const struct map_t *map, u16 offset, u16 len, u8 *buf)
  2270. {
  2271. const struct map_seg_t *seg;
  2272. int ret = _FAIL;
  2273. int i;
  2274. if (len == 0) {
  2275. rtw_warn_on(1);
  2276. goto exit;
  2277. }
  2278. if (offset + len > map->len) {
  2279. rtw_warn_on(1);
  2280. goto exit;
  2281. }
  2282. _rtw_memset(buf, map->init_value, len);
  2283. for (i = 0; i < map->seg_num; i++) {
  2284. u8 *c_dst, *c_src;
  2285. u16 c_len;
  2286. seg = map->segs + i;
  2287. if (seg->sa + seg->len <= offset || seg->sa >= offset + len)
  2288. continue;
  2289. if (seg->sa >= offset) {
  2290. c_dst = buf + (seg->sa - offset);
  2291. c_src = seg->c;
  2292. if (seg->sa + seg->len <= offset + len)
  2293. c_len = seg->len;
  2294. else
  2295. c_len = offset + len - seg->sa;
  2296. } else {
  2297. c_dst = buf;
  2298. c_src = seg->c + (offset - seg->sa);
  2299. if (seg->sa + seg->len >= offset + len)
  2300. c_len = len;
  2301. else
  2302. c_len = seg->sa + seg->len - offset;
  2303. }
  2304. _rtw_memcpy(c_dst, c_src, c_len);
  2305. }
  2306. exit:
  2307. return ret;
  2308. }
  2309. /**
  2310. * map_read8 - read 1 byte of map data
  2311. * @map: map to read
  2312. * @offset: address to read
  2313. *
  2314. * Returns: value of data of specified offset. map.init_value if offset is out of range
  2315. */
  2316. u8 map_read8(const struct map_t *map, u16 offset)
  2317. {
  2318. const struct map_seg_t *seg;
  2319. u8 val = map->init_value;
  2320. int i;
  2321. if (offset + 1 > map->len) {
  2322. rtw_warn_on(1);
  2323. goto exit;
  2324. }
  2325. for (i = 0; i < map->seg_num; i++) {
  2326. seg = map->segs + i;
  2327. if (seg->sa + seg->len <= offset || seg->sa >= offset + 1)
  2328. continue;
  2329. val = *(seg->c + offset - seg->sa);
  2330. break;
  2331. }
  2332. exit:
  2333. return val;
  2334. }
  2335. int rtw_blacklist_add(_queue *blist, const u8 *addr, u32 timeout_ms)
  2336. {
  2337. struct blacklist_ent *ent;
  2338. _list *list, *head;
  2339. u8 exist = _FALSE, timeout = _FALSE;
  2340. enter_critical_bh(&blist->lock);
  2341. head = &blist->queue;
  2342. list = get_next(head);
  2343. while (rtw_end_of_queue_search(head, list) == _FALSE) {
  2344. ent = LIST_CONTAINOR(list, struct blacklist_ent, list);
  2345. list = get_next(list);
  2346. if (_rtw_memcmp(ent->addr, addr, ETH_ALEN) == _TRUE) {
  2347. exist = _TRUE;
  2348. if (rtw_time_after(rtw_get_current_time(), ent->exp_time))
  2349. timeout = _TRUE;
  2350. ent->exp_time = rtw_get_current_time()
  2351. + rtw_ms_to_systime(timeout_ms);
  2352. break;
  2353. }
  2354. if (rtw_time_after(rtw_get_current_time(), ent->exp_time)) {
  2355. rtw_list_delete(&ent->list);
  2356. rtw_mfree(ent, sizeof(struct blacklist_ent));
  2357. }
  2358. }
  2359. if (exist == _FALSE) {
  2360. ent = rtw_malloc(sizeof(struct blacklist_ent));
  2361. if (ent) {
  2362. _rtw_memcpy(ent->addr, addr, ETH_ALEN);
  2363. ent->exp_time = rtw_get_current_time()
  2364. + rtw_ms_to_systime(timeout_ms);
  2365. rtw_list_insert_tail(&ent->list, head);
  2366. }
  2367. }
  2368. exit_critical_bh(&blist->lock);
  2369. exit:
  2370. return (exist == _TRUE && timeout == _FALSE) ? RTW_ALREADY : (ent ? _SUCCESS : _FAIL);
  2371. }
  2372. int rtw_blacklist_del(_queue *blist, const u8 *addr)
  2373. {
  2374. struct blacklist_ent *ent = NULL;
  2375. _list *list, *head;
  2376. u8 exist = _FALSE;
  2377. enter_critical_bh(&blist->lock);
  2378. head = &blist->queue;
  2379. list = get_next(head);
  2380. while (rtw_end_of_queue_search(head, list) == _FALSE) {
  2381. ent = LIST_CONTAINOR(list, struct blacklist_ent, list);
  2382. list = get_next(list);
  2383. if (_rtw_memcmp(ent->addr, addr, ETH_ALEN) == _TRUE) {
  2384. rtw_list_delete(&ent->list);
  2385. rtw_mfree(ent, sizeof(struct blacklist_ent));
  2386. exist = _TRUE;
  2387. break;
  2388. }
  2389. if (rtw_time_after(rtw_get_current_time(), ent->exp_time)) {
  2390. rtw_list_delete(&ent->list);
  2391. rtw_mfree(ent, sizeof(struct blacklist_ent));
  2392. }
  2393. }
  2394. exit_critical_bh(&blist->lock);
  2395. exit:
  2396. return exist == _TRUE ? _SUCCESS : RTW_ALREADY;
  2397. }
  2398. int rtw_blacklist_search(_queue *blist, const u8 *addr)
  2399. {
  2400. struct blacklist_ent *ent = NULL;
  2401. _list *list, *head;
  2402. u8 exist = _FALSE;
  2403. enter_critical_bh(&blist->lock);
  2404. head = &blist->queue;
  2405. list = get_next(head);
  2406. while (rtw_end_of_queue_search(head, list) == _FALSE) {
  2407. ent = LIST_CONTAINOR(list, struct blacklist_ent, list);
  2408. list = get_next(list);
  2409. if (_rtw_memcmp(ent->addr, addr, ETH_ALEN) == _TRUE) {
  2410. if (rtw_time_after(rtw_get_current_time(), ent->exp_time)) {
  2411. rtw_list_delete(&ent->list);
  2412. rtw_mfree(ent, sizeof(struct blacklist_ent));
  2413. } else
  2414. exist = _TRUE;
  2415. break;
  2416. }
  2417. if (rtw_time_after(rtw_get_current_time(), ent->exp_time)) {
  2418. rtw_list_delete(&ent->list);
  2419. rtw_mfree(ent, sizeof(struct blacklist_ent));
  2420. }
  2421. }
  2422. exit_critical_bh(&blist->lock);
  2423. exit:
  2424. return exist;
  2425. }
  2426. void rtw_blacklist_flush(_queue *blist)
  2427. {
  2428. struct blacklist_ent *ent;
  2429. _list *list, *head;
  2430. _list tmp;
  2431. _rtw_init_listhead(&tmp);
  2432. enter_critical_bh(&blist->lock);
  2433. rtw_list_splice_init(&blist->queue, &tmp);
  2434. exit_critical_bh(&blist->lock);
  2435. head = &tmp;
  2436. list = get_next(head);
  2437. while (rtw_end_of_queue_search(head, list) == _FALSE) {
  2438. ent = LIST_CONTAINOR(list, struct blacklist_ent, list);
  2439. list = get_next(list);
  2440. rtw_list_delete(&ent->list);
  2441. rtw_mfree(ent, sizeof(struct blacklist_ent));
  2442. }
  2443. }
  2444. void dump_blacklist(void *sel, _queue *blist, const char *title)
  2445. {
  2446. struct blacklist_ent *ent = NULL;
  2447. _list *list, *head;
  2448. enter_critical_bh(&blist->lock);
  2449. head = &blist->queue;
  2450. list = get_next(head);
  2451. if (rtw_end_of_queue_search(head, list) == _FALSE) {
  2452. if (title)
  2453. RTW_PRINT_SEL(sel, "%s:\n", title);
  2454. while (rtw_end_of_queue_search(head, list) == _FALSE) {
  2455. ent = LIST_CONTAINOR(list, struct blacklist_ent, list);
  2456. list = get_next(list);
  2457. if (rtw_time_after(rtw_get_current_time(), ent->exp_time))
  2458. RTW_PRINT_SEL(sel, MAC_FMT" expired\n", MAC_ARG(ent->addr));
  2459. else
  2460. RTW_PRINT_SEL(sel, MAC_FMT" %u\n", MAC_ARG(ent->addr)
  2461. , rtw_get_remaining_time_ms(ent->exp_time));
  2462. }
  2463. }
  2464. exit_critical_bh(&blist->lock);
  2465. }
  2466. /**
  2467. * is_null -
  2468. *
  2469. * Return TRUE if c is null character
  2470. * FALSE otherwise.
  2471. */
  2472. inline BOOLEAN is_null(char c)
  2473. {
  2474. if (c == '\0')
  2475. return _TRUE;
  2476. else
  2477. return _FALSE;
  2478. }
  2479. inline BOOLEAN is_all_null(char *c, int len)
  2480. {
  2481. for (; len > 0; len--)
  2482. if (c[len - 1] != '\0')
  2483. return _FALSE;
  2484. return _TRUE;
  2485. }
  2486. /**
  2487. * is_eol -
  2488. *
  2489. * Return TRUE if c is represent for EOL (end of line)
  2490. * FALSE otherwise.
  2491. */
  2492. inline BOOLEAN is_eol(char c)
  2493. {
  2494. if (c == '\r' || c == '\n')
  2495. return _TRUE;
  2496. else
  2497. return _FALSE;
  2498. }
  2499. /**
  2500. * is_space -
  2501. *
  2502. * Return TRUE if c is represent for space
  2503. * FALSE otherwise.
  2504. */
  2505. inline BOOLEAN is_space(char c)
  2506. {
  2507. if (c == ' ' || c == '\t')
  2508. return _TRUE;
  2509. else
  2510. return _FALSE;
  2511. }
  2512. /**
  2513. * IsHexDigit -
  2514. *
  2515. * Return TRUE if chTmp is represent for hex digit
  2516. * FALSE otherwise.
  2517. */
  2518. inline BOOLEAN IsHexDigit(char chTmp)
  2519. {
  2520. if ((chTmp >= '0' && chTmp <= '9') ||
  2521. (chTmp >= 'a' && chTmp <= 'f') ||
  2522. (chTmp >= 'A' && chTmp <= 'F'))
  2523. return _TRUE;
  2524. else
  2525. return _FALSE;
  2526. }
  2527. /**
  2528. * is_alpha -
  2529. *
  2530. * Return TRUE if chTmp is represent for alphabet
  2531. * FALSE otherwise.
  2532. */
  2533. inline BOOLEAN is_alpha(char chTmp)
  2534. {
  2535. if ((chTmp >= 'a' && chTmp <= 'z') ||
  2536. (chTmp >= 'A' && chTmp <= 'Z'))
  2537. return _TRUE;
  2538. else
  2539. return _FALSE;
  2540. }
  2541. inline char alpha_to_upper(char c)
  2542. {
  2543. if ((c >= 'a' && c <= 'z'))
  2544. c = 'A' + (c - 'a');
  2545. return c;
  2546. }
  2547. int hex2num_i(char c)
  2548. {
  2549. if (c >= '0' && c <= '9')
  2550. return c - '0';
  2551. if (c >= 'a' && c <= 'f')
  2552. return c - 'a' + 10;
  2553. if (c >= 'A' && c <= 'F')
  2554. return c - 'A' + 10;
  2555. return -1;
  2556. }
  2557. int hex2byte_i(const char *hex)
  2558. {
  2559. int a, b;
  2560. a = hex2num_i(*hex++);
  2561. if (a < 0)
  2562. return -1;
  2563. b = hex2num_i(*hex++);
  2564. if (b < 0)
  2565. return -1;
  2566. return (a << 4) | b;
  2567. }
  2568. int hexstr2bin(const char *hex, u8 *buf, size_t len)
  2569. {
  2570. size_t i;
  2571. int a;
  2572. const char *ipos = hex;
  2573. u8 *opos = buf;
  2574. for (i = 0; i < len; i++) {
  2575. a = hex2byte_i(ipos);
  2576. if (a < 0)
  2577. return -1;
  2578. *opos++ = a;
  2579. ipos += 2;
  2580. }
  2581. return 0;
  2582. }