tx.c 33 KB

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  1. /*
  2. * Intel Wireless WiMAX Connection 2400m
  3. * Generic (non-bus specific) TX handling
  4. *
  5. *
  6. * Copyright (C) 2007-2008 Intel Corporation. All rights reserved.
  7. *
  8. * Redistribution and use in source and binary forms, with or without
  9. * modification, are permitted provided that the following conditions
  10. * are met:
  11. *
  12. * * Redistributions of source code must retain the above copyright
  13. * notice, this list of conditions and the following disclaimer.
  14. * * Redistributions in binary form must reproduce the above copyright
  15. * notice, this list of conditions and the following disclaimer in
  16. * the documentation and/or other materials provided with the
  17. * distribution.
  18. * * Neither the name of Intel Corporation nor the names of its
  19. * contributors may be used to endorse or promote products derived
  20. * from this software without specific prior written permission.
  21. *
  22. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
  23. * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
  24. * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
  25. * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
  26. * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
  27. * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
  28. * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
  29. * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
  30. * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
  31. * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
  32. * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  33. *
  34. *
  35. * Intel Corporation <linux-wimax@intel.com>
  36. * Yanir Lubetkin <yanirx.lubetkin@intel.com>
  37. * - Initial implementation
  38. *
  39. * Intel Corporation <linux-wimax@intel.com>
  40. * Inaky Perez-Gonzalez <inaky.perez-gonzalez@intel.com>
  41. * - Rewritten to use a single FIFO to lower the memory allocation
  42. * pressure and optimize cache hits when copying to the queue, as
  43. * well as splitting out bus-specific code.
  44. *
  45. *
  46. * Implements data transmission to the device; this is done through a
  47. * software FIFO, as data/control frames can be coalesced (while the
  48. * device is reading the previous tx transaction, others accumulate).
  49. *
  50. * A FIFO is used because at the end it is resource-cheaper that trying
  51. * to implement scatter/gather over USB. As well, most traffic is going
  52. * to be download (vs upload).
  53. *
  54. * The format for sending/receiving data to/from the i2400m is
  55. * described in detail in rx.c:PROTOCOL FORMAT. In here we implement
  56. * the transmission of that. This is split between a bus-independent
  57. * part that just prepares everything and a bus-specific part that
  58. * does the actual transmission over the bus to the device (in the
  59. * bus-specific driver).
  60. *
  61. *
  62. * The general format of a device-host transaction is MSG-HDR, PLD1,
  63. * PLD2...PLDN, PL1, PL2,...PLN, PADDING.
  64. *
  65. * Because we need the send payload descriptors and then payloads and
  66. * because it is kind of expensive to do scatterlists in USB (one URB
  67. * per node), it becomes cheaper to append all the data to a FIFO
  68. * (copying to a FIFO potentially in cache is cheaper).
  69. *
  70. * Then the bus-specific code takes the parts of that FIFO that are
  71. * written and passes them to the device.
  72. *
  73. * So the concepts to keep in mind there are:
  74. *
  75. * We use a FIFO to queue the data in a linear buffer. We first append
  76. * a MSG-HDR, space for I2400M_TX_PLD_MAX payload descriptors and then
  77. * go appending payloads until we run out of space or of payload
  78. * descriptors. Then we append padding to make the whole transaction a
  79. * multiple of i2400m->bus_tx_block_size (as defined by the bus layer).
  80. *
  81. * - A TX message: a combination of a message header, payload
  82. * descriptors and payloads.
  83. *
  84. * Open: it is marked as active (i2400m->tx_msg is valid) and we
  85. * can keep adding payloads to it.
  86. *
  87. * Closed: we are not appending more payloads to this TX message
  88. * (exahusted space in the queue, too many payloads or
  89. * whichever). We have appended padding so the whole message
  90. * length is aligned to i2400m->bus_tx_block_size (as set by the
  91. * bus/transport layer).
  92. *
  93. * - Most of the time we keep a TX message open to which we append
  94. * payloads.
  95. *
  96. * - If we are going to append and there is no more space (we are at
  97. * the end of the FIFO), we close the message, mark the rest of the
  98. * FIFO space unusable (skip_tail), create a new message at the
  99. * beginning of the FIFO (if there is space) and append the message
  100. * there.
  101. *
  102. * This is because we need to give linear TX messages to the bus
  103. * engine. So we don't write a message to the remaining FIFO space
  104. * until the tail and continue at the head of it.
  105. *
  106. * - We overload one of the fields in the message header to use it as
  107. * 'size' of the TX message, so we can iterate over them. It also
  108. * contains a flag that indicates if we have to skip it or not.
  109. * When we send the buffer, we update that to its real on-the-wire
  110. * value.
  111. *
  112. * - The MSG-HDR PLD1...PLD2 stuff has to be a size multiple of 16.
  113. *
  114. * It follows that if MSG-HDR says we have N messages, the whole
  115. * header + descriptors is 16 + 4*N; for those to be a multiple of
  116. * 16, it follows that N can be 4, 8, 12, ... (32, 48, 64, 80...
  117. * bytes).
  118. *
  119. * So if we have only 1 payload, we have to submit a header that in
  120. * all truth has space for 4.
  121. *
  122. * The implication is that we reserve space for 12 (64 bytes); but
  123. * if we fill up only (eg) 2, our header becomes 32 bytes only. So
  124. * the TX engine has to shift those 32 bytes of msg header and 2
  125. * payloads and padding so that right after it the payloads start
  126. * and the TX engine has to know about that.
  127. *
  128. * It is cheaper to move the header up than the whole payloads down.
  129. *
  130. * We do this in i2400m_tx_close(). See 'i2400m_msg_hdr->offset'.
  131. *
  132. * - Each payload has to be size-padded to 16 bytes; before appending
  133. * it, we just do it.
  134. *
  135. * - The whole message has to be padded to i2400m->bus_tx_block_size;
  136. * we do this at close time. Thus, when reserving space for the
  137. * payload, we always make sure there is also free space for this
  138. * padding that sooner or later will happen.
  139. *
  140. * When we append a message, we tell the bus specific code to kick in
  141. * TXs. It will TX (in parallel) until the buffer is exhausted--hence
  142. * the lockin we do. The TX code will only send a TX message at the
  143. * time (which remember, might contain more than one payload). Of
  144. * course, when the bus-specific driver attempts to TX a message that
  145. * is still open, it gets closed first.
  146. *
  147. * Gee, this is messy; well a picture. In the example below we have a
  148. * partially full FIFO, with a closed message ready to be delivered
  149. * (with a moved message header to make sure it is size-aligned to
  150. * 16), TAIL room that was unusable (and thus is marked with a message
  151. * header that says 'skip this') and at the head of the buffer, an
  152. * imcomplete message with a couple of payloads.
  153. *
  154. * N ___________________________________________________
  155. * | |
  156. * | TAIL room |
  157. * | |
  158. * | msg_hdr to skip (size |= 0x80000) |
  159. * |---------------------------------------------------|-------
  160. * | | /|\
  161. * | | |
  162. * | TX message padding | |
  163. * | | |
  164. * | | |
  165. * |- - - - - - - - - - - - - - - - - - - - - - - - - -| |
  166. * | | |
  167. * | payload 1 | |
  168. * | | N * tx_block_size
  169. * | | |
  170. * |- - - - - - - - - - - - - - - - - - - - - - - - - -| |
  171. * | | |
  172. * | payload 1 | |
  173. * | | |
  174. * | | |
  175. * |- - - - - - - - - - - - - - - - - - - - - - - - - -|- -|- - - -
  176. * | padding 3 /|\ | | /|\
  177. * | padding 2 | | | |
  178. * | pld 1 32 bytes (2 * 16) | | |
  179. * | pld 0 | | | |
  180. * | moved msg_hdr \|/ | \|/ |
  181. * |- - - - - - - - - - - - - - - - - - - - - - - - - -|- - - |
  182. * | | _PLD_SIZE
  183. * | unused | |
  184. * | | |
  185. * |- - - - - - - - - - - - - - - - - - - - - - - - - -| |
  186. * | msg_hdr (size X) [this message is closed] | \|/
  187. * |===================================================|========== <=== OUT
  188. * | |
  189. * | |
  190. * | |
  191. * | Free rooom |
  192. * | |
  193. * | |
  194. * | |
  195. * | |
  196. * | |
  197. * | |
  198. * | |
  199. * | |
  200. * | |
  201. * |===================================================|========== <=== IN
  202. * | |
  203. * | |
  204. * | |
  205. * | |
  206. * | payload 1 |
  207. * | |
  208. * | |
  209. * |- - - - - - - - - - - - - - - - - - - - - - - - - -|
  210. * | |
  211. * | payload 0 |
  212. * | |
  213. * | |
  214. * |- - - - - - - - - - - - - - - - - - - - - - - - - -|
  215. * | pld 11 /|\ |
  216. * | ... | |
  217. * | pld 1 64 bytes (2 * 16) |
  218. * | pld 0 | |
  219. * | msg_hdr (size X) \|/ [message is open] |
  220. * 0 ---------------------------------------------------
  221. *
  222. *
  223. * ROADMAP
  224. *
  225. * i2400m_tx_setup() Called by i2400m_setup
  226. * i2400m_tx_release() Called by i2400m_release()
  227. *
  228. * i2400m_tx() Called to send data or control frames
  229. * i2400m_tx_fifo_push() Allocates append-space in the FIFO
  230. * i2400m_tx_new() Opens a new message in the FIFO
  231. * i2400m_tx_fits() Checks if a new payload fits in the message
  232. * i2400m_tx_close() Closes an open message in the FIFO
  233. * i2400m_tx_skip_tail() Marks unusable FIFO tail space
  234. * i2400m->bus_tx_kick()
  235. *
  236. * Now i2400m->bus_tx_kick() is the the bus-specific driver backend
  237. * implementation; that would do:
  238. *
  239. * i2400m->bus_tx_kick()
  240. * i2400m_tx_msg_get() Gets first message ready to go
  241. * ...sends it...
  242. * i2400m_tx_msg_sent() Ack the message is sent; repeat from
  243. * _tx_msg_get() until it returns NULL
  244. * (FIFO empty).
  245. */
  246. #include <linux/netdevice.h>
  247. #include <linux/slab.h>
  248. #include "i2400m.h"
  249. #define D_SUBMODULE tx
  250. #include "debug-levels.h"
  251. enum {
  252. /**
  253. * TX Buffer size
  254. *
  255. * Doc says maximum transaction is 16KiB. If we had 16KiB en
  256. * route and 16KiB being queued, it boils down to needing
  257. * 32KiB.
  258. */
  259. I2400M_TX_BUF_SIZE = 32768,
  260. /**
  261. * Message header and payload descriptors have to be 16
  262. * aligned (16 + 4 * N = 16 * M). If we take that average sent
  263. * packets are MTU size (~1400-~1500) it follows that we could
  264. * fit at most 10-11 payloads in one transaction. To meet the
  265. * alignment requirement, that means we need to leave space
  266. * for 12 (64 bytes). To simplify, we leave space for that. If
  267. * at the end there are less, we pad up to the nearest
  268. * multiple of 16.
  269. */
  270. I2400M_TX_PLD_MAX = 12,
  271. I2400M_TX_PLD_SIZE = sizeof(struct i2400m_msg_hdr)
  272. + I2400M_TX_PLD_MAX * sizeof(struct i2400m_pld),
  273. I2400M_TX_SKIP = 0x80000000,
  274. };
  275. #define TAIL_FULL ((void *)~(unsigned long)NULL)
  276. /*
  277. * Calculate how much tail room is available
  278. *
  279. * Note the trick here. This path is ONLY caleed for Case A (see
  280. * i2400m_tx_fifo_push() below), where we have:
  281. *
  282. * Case A
  283. * N ___________
  284. * | tail room |
  285. * | |
  286. * |<- IN ->|
  287. * | |
  288. * | data |
  289. * | |
  290. * |<- OUT ->|
  291. * | |
  292. * | head room |
  293. * 0 -----------
  294. *
  295. * When calculating the tail_room, tx_in might get to be zero if
  296. * i2400m->tx_in is right at the end of the buffer (really full
  297. * buffer) if there is no head room. In this case, tail_room would be
  298. * I2400M_TX_BUF_SIZE, although it is actually zero. Hence the final
  299. * mod (%) operation. However, when doing this kind of optimization,
  300. * i2400m->tx_in being zero would fail, so we treat is an a special
  301. * case.
  302. */
  303. static inline
  304. size_t __i2400m_tx_tail_room(struct i2400m *i2400m)
  305. {
  306. size_t tail_room;
  307. size_t tx_in;
  308. if (unlikely(i2400m->tx_in == 0))
  309. return I2400M_TX_BUF_SIZE;
  310. tx_in = i2400m->tx_in % I2400M_TX_BUF_SIZE;
  311. tail_room = I2400M_TX_BUF_SIZE - tx_in;
  312. tail_room %= I2400M_TX_BUF_SIZE;
  313. return tail_room;
  314. }
  315. /*
  316. * Allocate @size bytes in the TX fifo, return a pointer to it
  317. *
  318. * @i2400m: device descriptor
  319. * @size: size of the buffer we need to allocate
  320. * @padding: ensure that there is at least this many bytes of free
  321. * contiguous space in the fifo. This is needed because later on
  322. * we might need to add padding.
  323. *
  324. * Returns:
  325. *
  326. * Pointer to the allocated space. NULL if there is no
  327. * space. TAIL_FULL if there is no space at the tail but there is at
  328. * the head (Case B below).
  329. *
  330. * These are the two basic cases we need to keep an eye for -- it is
  331. * much better explained in linux/kernel/kfifo.c, but this code
  332. * basically does the same. No rocket science here.
  333. *
  334. * Case A Case B
  335. * N ___________ ___________
  336. * | tail room | | data |
  337. * | | | |
  338. * |<- IN ->| |<- OUT ->|
  339. * | | | |
  340. * | data | | room |
  341. * | | | |
  342. * |<- OUT ->| |<- IN ->|
  343. * | | | |
  344. * | head room | | data |
  345. * 0 ----------- -----------
  346. *
  347. * We allocate only *contiguous* space.
  348. *
  349. * We can allocate only from 'room'. In Case B, it is simple; in case
  350. * A, we only try from the tail room; if it is not enough, we just
  351. * fail and return TAIL_FULL and let the caller figure out if we wants to
  352. * skip the tail room and try to allocate from the head.
  353. *
  354. * Note:
  355. *
  356. * Assumes i2400m->tx_lock is taken, and we use that as a barrier
  357. *
  358. * The indexes keep increasing and we reset them to zero when we
  359. * pop data off the queue
  360. */
  361. static
  362. void *i2400m_tx_fifo_push(struct i2400m *i2400m, size_t size, size_t padding)
  363. {
  364. struct device *dev = i2400m_dev(i2400m);
  365. size_t room, tail_room, needed_size;
  366. void *ptr;
  367. needed_size = size + padding;
  368. room = I2400M_TX_BUF_SIZE - (i2400m->tx_in - i2400m->tx_out);
  369. if (room < needed_size) { /* this takes care of Case B */
  370. d_printf(2, dev, "fifo push %zu/%zu: no space\n",
  371. size, padding);
  372. return NULL;
  373. }
  374. /* Is there space at the tail? */
  375. tail_room = __i2400m_tx_tail_room(i2400m);
  376. if (tail_room < needed_size) {
  377. if (i2400m->tx_out % I2400M_TX_BUF_SIZE
  378. < i2400m->tx_in % I2400M_TX_BUF_SIZE) {
  379. d_printf(2, dev, "fifo push %zu/%zu: tail full\n",
  380. size, padding);
  381. return TAIL_FULL; /* There might be head space */
  382. } else {
  383. d_printf(2, dev, "fifo push %zu/%zu: no head space\n",
  384. size, padding);
  385. return NULL; /* There is no space */
  386. }
  387. }
  388. ptr = i2400m->tx_buf + i2400m->tx_in % I2400M_TX_BUF_SIZE;
  389. d_printf(2, dev, "fifo push %zu/%zu: at @%zu\n", size, padding,
  390. i2400m->tx_in % I2400M_TX_BUF_SIZE);
  391. i2400m->tx_in += size;
  392. return ptr;
  393. }
  394. /*
  395. * Mark the tail of the FIFO buffer as 'to-skip'
  396. *
  397. * We should never hit the BUG_ON() because all the sizes we push to
  398. * the FIFO are padded to be a multiple of 16 -- the size of *msg
  399. * (I2400M_PL_PAD for the payloads, I2400M_TX_PLD_SIZE for the
  400. * header).
  401. *
  402. * Tail room can get to be zero if a message was opened when there was
  403. * space only for a header. _tx_close() will mark it as to-skip (as it
  404. * will have no payloads) and there will be no more space to flush, so
  405. * nothing has to be done here. This is probably cheaper than ensuring
  406. * in _tx_new() that there is some space for payloads...as we could
  407. * always possibly hit the same problem if the payload wouldn't fit.
  408. *
  409. * Note:
  410. *
  411. * Assumes i2400m->tx_lock is taken, and we use that as a barrier
  412. *
  413. * This path is only taken for Case A FIFO situations [see
  414. * i2400m_tx_fifo_push()]
  415. */
  416. static
  417. void i2400m_tx_skip_tail(struct i2400m *i2400m)
  418. {
  419. struct device *dev = i2400m_dev(i2400m);
  420. size_t tx_in = i2400m->tx_in % I2400M_TX_BUF_SIZE;
  421. size_t tail_room = __i2400m_tx_tail_room(i2400m);
  422. struct i2400m_msg_hdr *msg = i2400m->tx_buf + tx_in;
  423. if (unlikely(tail_room == 0))
  424. return;
  425. BUG_ON(tail_room < sizeof(*msg));
  426. msg->size = tail_room | I2400M_TX_SKIP;
  427. d_printf(2, dev, "skip tail: skipping %zu bytes @%zu\n",
  428. tail_room, tx_in);
  429. i2400m->tx_in += tail_room;
  430. }
  431. /*
  432. * Check if a skb will fit in the TX queue's current active TX
  433. * message (if there are still descriptors left unused).
  434. *
  435. * Returns:
  436. * 0 if the message won't fit, 1 if it will.
  437. *
  438. * Note:
  439. *
  440. * Assumes a TX message is active (i2400m->tx_msg).
  441. *
  442. * Assumes i2400m->tx_lock is taken, and we use that as a barrier
  443. */
  444. static
  445. unsigned i2400m_tx_fits(struct i2400m *i2400m)
  446. {
  447. struct i2400m_msg_hdr *msg_hdr = i2400m->tx_msg;
  448. return le16_to_cpu(msg_hdr->num_pls) < I2400M_TX_PLD_MAX;
  449. }
  450. /*
  451. * Start a new TX message header in the queue.
  452. *
  453. * Reserve memory from the base FIFO engine and then just initialize
  454. * the message header.
  455. *
  456. * We allocate the biggest TX message header we might need (one that'd
  457. * fit I2400M_TX_PLD_MAX payloads) -- when it is closed it will be
  458. * 'ironed it out' and the unneeded parts removed.
  459. *
  460. * NOTE:
  461. *
  462. * Assumes that the previous message is CLOSED (eg: either
  463. * there was none or 'i2400m_tx_close()' was called on it).
  464. *
  465. * Assumes i2400m->tx_lock is taken, and we use that as a barrier
  466. */
  467. static
  468. void i2400m_tx_new(struct i2400m *i2400m)
  469. {
  470. struct device *dev = i2400m_dev(i2400m);
  471. struct i2400m_msg_hdr *tx_msg;
  472. BUG_ON(i2400m->tx_msg != NULL);
  473. try_head:
  474. tx_msg = i2400m_tx_fifo_push(i2400m, I2400M_TX_PLD_SIZE, 0);
  475. if (tx_msg == NULL)
  476. goto out;
  477. else if (tx_msg == TAIL_FULL) {
  478. i2400m_tx_skip_tail(i2400m);
  479. d_printf(2, dev, "new TX message: tail full, trying head\n");
  480. goto try_head;
  481. }
  482. memset(tx_msg, 0, I2400M_TX_PLD_SIZE);
  483. tx_msg->size = I2400M_TX_PLD_SIZE;
  484. out:
  485. i2400m->tx_msg = tx_msg;
  486. d_printf(2, dev, "new TX message: %p @%zu\n",
  487. tx_msg, (void *) tx_msg - i2400m->tx_buf);
  488. }
  489. /*
  490. * Finalize the current TX message header
  491. *
  492. * Sets the message header to be at the proper location depending on
  493. * how many descriptors we have (check documentation at the file's
  494. * header for more info on that).
  495. *
  496. * Appends padding bytes to make sure the whole TX message (counting
  497. * from the 'relocated' message header) is aligned to
  498. * tx_block_size. We assume the _append() code has left enough space
  499. * in the FIFO for that. If there are no payloads, just pass, as it
  500. * won't be transferred.
  501. *
  502. * The amount of padding bytes depends on how many payloads are in the
  503. * TX message, as the "msg header and payload descriptors" will be
  504. * shifted up in the buffer.
  505. */
  506. static
  507. void i2400m_tx_close(struct i2400m *i2400m)
  508. {
  509. struct device *dev = i2400m_dev(i2400m);
  510. struct i2400m_msg_hdr *tx_msg = i2400m->tx_msg;
  511. struct i2400m_msg_hdr *tx_msg_moved;
  512. size_t aligned_size, padding, hdr_size;
  513. void *pad_buf;
  514. unsigned num_pls;
  515. if (tx_msg->size & I2400M_TX_SKIP) /* a skipper? nothing to do */
  516. goto out;
  517. num_pls = le16_to_cpu(tx_msg->num_pls);
  518. /* We can get this situation when a new message was started
  519. * and there was no space to add payloads before hitting the
  520. tail (and taking padding into consideration). */
  521. if (num_pls == 0) {
  522. tx_msg->size |= I2400M_TX_SKIP;
  523. goto out;
  524. }
  525. /* Relocate the message header
  526. *
  527. * Find the current header size, align it to 16 and if we need
  528. * to move it so the tail is next to the payloads, move it and
  529. * set the offset.
  530. *
  531. * If it moved, this header is good only for transmission; the
  532. * original one (it is kept if we moved) is still used to
  533. * figure out where the next TX message starts (and where the
  534. * offset to the moved header is).
  535. */
  536. hdr_size = sizeof(*tx_msg)
  537. + le16_to_cpu(tx_msg->num_pls) * sizeof(tx_msg->pld[0]);
  538. hdr_size = ALIGN(hdr_size, I2400M_PL_ALIGN);
  539. tx_msg->offset = I2400M_TX_PLD_SIZE - hdr_size;
  540. tx_msg_moved = (void *) tx_msg + tx_msg->offset;
  541. memmove(tx_msg_moved, tx_msg, hdr_size);
  542. tx_msg_moved->size -= tx_msg->offset;
  543. /*
  544. * Now figure out how much we have to add to the (moved!)
  545. * message so the size is a multiple of i2400m->bus_tx_block_size.
  546. */
  547. aligned_size = ALIGN(tx_msg_moved->size, i2400m->bus_tx_block_size);
  548. padding = aligned_size - tx_msg_moved->size;
  549. if (padding > 0) {
  550. pad_buf = i2400m_tx_fifo_push(i2400m, padding, 0);
  551. if (unlikely(WARN_ON(pad_buf == NULL
  552. || pad_buf == TAIL_FULL))) {
  553. /* This should not happen -- append should verify
  554. * there is always space left at least to append
  555. * tx_block_size */
  556. dev_err(dev,
  557. "SW BUG! Possible data leakage from memory the "
  558. "device should not read for padding - "
  559. "size %lu aligned_size %zu tx_buf %p in "
  560. "%zu out %zu\n",
  561. (unsigned long) tx_msg_moved->size,
  562. aligned_size, i2400m->tx_buf, i2400m->tx_in,
  563. i2400m->tx_out);
  564. } else
  565. memset(pad_buf, 0xad, padding);
  566. }
  567. tx_msg_moved->padding = cpu_to_le16(padding);
  568. tx_msg_moved->size += padding;
  569. if (tx_msg != tx_msg_moved)
  570. tx_msg->size += padding;
  571. out:
  572. i2400m->tx_msg = NULL;
  573. }
  574. /**
  575. * i2400m_tx - send the data in a buffer to the device
  576. *
  577. * @buf: pointer to the buffer to transmit
  578. *
  579. * @buf_len: buffer size
  580. *
  581. * @pl_type: type of the payload we are sending.
  582. *
  583. * Returns:
  584. * 0 if ok, < 0 errno code on error (-ENOSPC, if there is no more
  585. * room for the message in the queue).
  586. *
  587. * Appends the buffer to the TX FIFO and notifies the bus-specific
  588. * part of the driver that there is new data ready to transmit.
  589. * Once this function returns, the buffer has been copied, so it can
  590. * be reused.
  591. *
  592. * The steps followed to append are explained in detail in the file
  593. * header.
  594. *
  595. * Whenever we write to a message, we increase msg->size, so it
  596. * reflects exactly how big the message is. This is needed so that if
  597. * we concatenate two messages before they can be sent, the code that
  598. * sends the messages can find the boundaries (and it will replace the
  599. * size with the real barker before sending).
  600. *
  601. * Note:
  602. *
  603. * Cold and warm reset payloads need to be sent as a single
  604. * payload, so we handle that.
  605. */
  606. int i2400m_tx(struct i2400m *i2400m, const void *buf, size_t buf_len,
  607. enum i2400m_pt pl_type)
  608. {
  609. int result = -ENOSPC;
  610. struct device *dev = i2400m_dev(i2400m);
  611. unsigned long flags;
  612. size_t padded_len;
  613. void *ptr;
  614. unsigned is_singleton = pl_type == I2400M_PT_RESET_WARM
  615. || pl_type == I2400M_PT_RESET_COLD;
  616. d_fnstart(3, dev, "(i2400m %p skb %p [%zu bytes] pt %u)\n",
  617. i2400m, buf, buf_len, pl_type);
  618. padded_len = ALIGN(buf_len, I2400M_PL_ALIGN);
  619. d_printf(5, dev, "padded_len %zd buf_len %zd\n", padded_len, buf_len);
  620. /* If there is no current TX message, create one; if the
  621. * current one is out of payload slots or we have a singleton,
  622. * close it and start a new one */
  623. spin_lock_irqsave(&i2400m->tx_lock, flags);
  624. /* If tx_buf is NULL, device is shutdown */
  625. if (i2400m->tx_buf == NULL) {
  626. result = -ESHUTDOWN;
  627. goto error_tx_new;
  628. }
  629. try_new:
  630. if (unlikely(i2400m->tx_msg == NULL))
  631. i2400m_tx_new(i2400m);
  632. else if (unlikely(!i2400m_tx_fits(i2400m)
  633. || (is_singleton && i2400m->tx_msg->num_pls != 0))) {
  634. d_printf(2, dev, "closing TX message (fits %u singleton "
  635. "%u num_pls %u)\n", i2400m_tx_fits(i2400m),
  636. is_singleton, i2400m->tx_msg->num_pls);
  637. i2400m_tx_close(i2400m);
  638. i2400m_tx_new(i2400m);
  639. }
  640. if (i2400m->tx_msg == NULL)
  641. goto error_tx_new;
  642. if (i2400m->tx_msg->size + padded_len > I2400M_TX_BUF_SIZE / 2) {
  643. d_printf(2, dev, "TX: message too big, going new\n");
  644. i2400m_tx_close(i2400m);
  645. i2400m_tx_new(i2400m);
  646. }
  647. if (i2400m->tx_msg == NULL)
  648. goto error_tx_new;
  649. /* So we have a current message header; now append space for
  650. * the message -- if there is not enough, try the head */
  651. ptr = i2400m_tx_fifo_push(i2400m, padded_len,
  652. i2400m->bus_tx_block_size);
  653. if (ptr == TAIL_FULL) { /* Tail is full, try head */
  654. d_printf(2, dev, "pl append: tail full\n");
  655. i2400m_tx_close(i2400m);
  656. i2400m_tx_skip_tail(i2400m);
  657. goto try_new;
  658. } else if (ptr == NULL) { /* All full */
  659. result = -ENOSPC;
  660. d_printf(2, dev, "pl append: all full\n");
  661. } else { /* Got space, copy it, set padding */
  662. struct i2400m_msg_hdr *tx_msg = i2400m->tx_msg;
  663. unsigned num_pls = le16_to_cpu(tx_msg->num_pls);
  664. memcpy(ptr, buf, buf_len);
  665. memset(ptr + buf_len, 0xad, padded_len - buf_len);
  666. i2400m_pld_set(&tx_msg->pld[num_pls], buf_len, pl_type);
  667. d_printf(3, dev, "pld 0x%08x (type 0x%1x len 0x%04zx\n",
  668. le32_to_cpu(tx_msg->pld[num_pls].val),
  669. pl_type, buf_len);
  670. tx_msg->num_pls = le16_to_cpu(num_pls+1);
  671. tx_msg->size += padded_len;
  672. d_printf(2, dev, "TX: appended %zu b (up to %u b) pl #%u\n",
  673. padded_len, tx_msg->size, num_pls+1);
  674. d_printf(2, dev,
  675. "TX: appended hdr @%zu %zu b pl #%u @%zu %zu/%zu b\n",
  676. (void *)tx_msg - i2400m->tx_buf, (size_t)tx_msg->size,
  677. num_pls+1, ptr - i2400m->tx_buf, buf_len, padded_len);
  678. result = 0;
  679. if (is_singleton)
  680. i2400m_tx_close(i2400m);
  681. }
  682. error_tx_new:
  683. spin_unlock_irqrestore(&i2400m->tx_lock, flags);
  684. /* kick in most cases, except when the TX subsys is down, as
  685. * it might free space */
  686. if (likely(result != -ESHUTDOWN))
  687. i2400m->bus_tx_kick(i2400m);
  688. d_fnend(3, dev, "(i2400m %p skb %p [%zu bytes] pt %u) = %d\n",
  689. i2400m, buf, buf_len, pl_type, result);
  690. return result;
  691. }
  692. EXPORT_SYMBOL_GPL(i2400m_tx);
  693. /**
  694. * i2400m_tx_msg_get - Get the first TX message in the FIFO to start sending it
  695. *
  696. * @i2400m: device descriptors
  697. * @bus_size: where to place the size of the TX message
  698. *
  699. * Called by the bus-specific driver to get the first TX message at
  700. * the FIF that is ready for transmission.
  701. *
  702. * It sets the state in @i2400m to indicate the bus-specific driver is
  703. * transfering that message (i2400m->tx_msg_size).
  704. *
  705. * Once the transfer is completed, call i2400m_tx_msg_sent().
  706. *
  707. * Notes:
  708. *
  709. * The size of the TX message to be transmitted might be smaller than
  710. * that of the TX message in the FIFO (in case the header was
  711. * shorter). Hence, we copy it in @bus_size, for the bus layer to
  712. * use. We keep the message's size in i2400m->tx_msg_size so that
  713. * when the bus later is done transferring we know how much to
  714. * advance the fifo.
  715. *
  716. * We collect statistics here as all the data is available and we
  717. * assume it is going to work [see i2400m_tx_msg_sent()].
  718. */
  719. struct i2400m_msg_hdr *i2400m_tx_msg_get(struct i2400m *i2400m,
  720. size_t *bus_size)
  721. {
  722. struct device *dev = i2400m_dev(i2400m);
  723. struct i2400m_msg_hdr *tx_msg, *tx_msg_moved;
  724. unsigned long flags, pls;
  725. d_fnstart(3, dev, "(i2400m %p bus_size %p)\n", i2400m, bus_size);
  726. spin_lock_irqsave(&i2400m->tx_lock, flags);
  727. tx_msg_moved = NULL;
  728. if (i2400m->tx_buf == NULL)
  729. goto out_unlock;
  730. skip:
  731. tx_msg_moved = NULL;
  732. if (i2400m->tx_in == i2400m->tx_out) { /* Empty FIFO? */
  733. i2400m->tx_in = 0;
  734. i2400m->tx_out = 0;
  735. d_printf(2, dev, "TX: FIFO empty: resetting\n");
  736. goto out_unlock;
  737. }
  738. tx_msg = i2400m->tx_buf + i2400m->tx_out % I2400M_TX_BUF_SIZE;
  739. if (tx_msg->size & I2400M_TX_SKIP) { /* skip? */
  740. d_printf(2, dev, "TX: skip: msg @%zu (%zu b)\n",
  741. i2400m->tx_out % I2400M_TX_BUF_SIZE,
  742. (size_t) tx_msg->size & ~I2400M_TX_SKIP);
  743. i2400m->tx_out += tx_msg->size & ~I2400M_TX_SKIP;
  744. goto skip;
  745. }
  746. if (tx_msg->num_pls == 0) { /* No payloads? */
  747. if (tx_msg == i2400m->tx_msg) { /* open, we are done */
  748. d_printf(2, dev,
  749. "TX: FIFO empty: open msg w/o payloads @%zu\n",
  750. (void *) tx_msg - i2400m->tx_buf);
  751. tx_msg = NULL;
  752. goto out_unlock;
  753. } else { /* closed, skip it */
  754. d_printf(2, dev,
  755. "TX: skip msg w/o payloads @%zu (%zu b)\n",
  756. (void *) tx_msg - i2400m->tx_buf,
  757. (size_t) tx_msg->size);
  758. i2400m->tx_out += tx_msg->size & ~I2400M_TX_SKIP;
  759. goto skip;
  760. }
  761. }
  762. if (tx_msg == i2400m->tx_msg) /* open msg? */
  763. i2400m_tx_close(i2400m);
  764. /* Now we have a valid TX message (with payloads) to TX */
  765. tx_msg_moved = (void *) tx_msg + tx_msg->offset;
  766. i2400m->tx_msg_size = tx_msg->size;
  767. *bus_size = tx_msg_moved->size;
  768. d_printf(2, dev, "TX: pid %d msg hdr at @%zu offset +@%zu "
  769. "size %zu bus_size %zu\n",
  770. current->pid, (void *) tx_msg - i2400m->tx_buf,
  771. (size_t) tx_msg->offset, (size_t) tx_msg->size,
  772. (size_t) tx_msg_moved->size);
  773. tx_msg_moved->barker = le32_to_cpu(I2400M_H2D_PREVIEW_BARKER);
  774. tx_msg_moved->sequence = le32_to_cpu(i2400m->tx_sequence++);
  775. pls = le32_to_cpu(tx_msg_moved->num_pls);
  776. i2400m->tx_pl_num += pls; /* Update stats */
  777. if (pls > i2400m->tx_pl_max)
  778. i2400m->tx_pl_max = pls;
  779. if (pls < i2400m->tx_pl_min)
  780. i2400m->tx_pl_min = pls;
  781. i2400m->tx_num++;
  782. i2400m->tx_size_acc += *bus_size;
  783. if (*bus_size < i2400m->tx_size_min)
  784. i2400m->tx_size_min = *bus_size;
  785. if (*bus_size > i2400m->tx_size_max)
  786. i2400m->tx_size_max = *bus_size;
  787. out_unlock:
  788. spin_unlock_irqrestore(&i2400m->tx_lock, flags);
  789. d_fnstart(3, dev, "(i2400m %p bus_size %p [%zu]) = %p\n",
  790. i2400m, bus_size, *bus_size, tx_msg_moved);
  791. return tx_msg_moved;
  792. }
  793. EXPORT_SYMBOL_GPL(i2400m_tx_msg_get);
  794. /**
  795. * i2400m_tx_msg_sent - indicate the transmission of a TX message
  796. *
  797. * @i2400m: device descriptor
  798. *
  799. * Called by the bus-specific driver when a message has been sent;
  800. * this pops it from the FIFO; and as there is space, start the queue
  801. * in case it was stopped.
  802. *
  803. * Should be called even if the message send failed and we are
  804. * dropping this TX message.
  805. */
  806. void i2400m_tx_msg_sent(struct i2400m *i2400m)
  807. {
  808. unsigned n;
  809. unsigned long flags;
  810. struct device *dev = i2400m_dev(i2400m);
  811. d_fnstart(3, dev, "(i2400m %p)\n", i2400m);
  812. spin_lock_irqsave(&i2400m->tx_lock, flags);
  813. if (i2400m->tx_buf == NULL)
  814. goto out_unlock;
  815. i2400m->tx_out += i2400m->tx_msg_size;
  816. d_printf(2, dev, "TX: sent %zu b\n", (size_t) i2400m->tx_msg_size);
  817. i2400m->tx_msg_size = 0;
  818. BUG_ON(i2400m->tx_out > i2400m->tx_in);
  819. /* level them FIFO markers off */
  820. n = i2400m->tx_out / I2400M_TX_BUF_SIZE;
  821. i2400m->tx_out %= I2400M_TX_BUF_SIZE;
  822. i2400m->tx_in -= n * I2400M_TX_BUF_SIZE;
  823. out_unlock:
  824. spin_unlock_irqrestore(&i2400m->tx_lock, flags);
  825. d_fnend(3, dev, "(i2400m %p) = void\n", i2400m);
  826. }
  827. EXPORT_SYMBOL_GPL(i2400m_tx_msg_sent);
  828. /**
  829. * i2400m_tx_setup - Initialize the TX queue and infrastructure
  830. *
  831. * Make sure we reset the TX sequence to zero, as when this function
  832. * is called, the firmware has been just restarted.
  833. */
  834. int i2400m_tx_setup(struct i2400m *i2400m)
  835. {
  836. int result;
  837. /* Do this here only once -- can't do on
  838. * i2400m_hard_start_xmit() as we'll cause race conditions if
  839. * the WS was scheduled on another CPU */
  840. INIT_WORK(&i2400m->wake_tx_ws, i2400m_wake_tx_work);
  841. i2400m->tx_sequence = 0;
  842. i2400m->tx_buf = kmalloc(I2400M_TX_BUF_SIZE, GFP_KERNEL);
  843. if (i2400m->tx_buf == NULL)
  844. result = -ENOMEM;
  845. else
  846. result = 0;
  847. /* Huh? the bus layer has to define this... */
  848. BUG_ON(i2400m->bus_tx_block_size == 0);
  849. return result;
  850. }
  851. /**
  852. * i2400m_tx_release - Tear down the TX queue and infrastructure
  853. */
  854. void i2400m_tx_release(struct i2400m *i2400m)
  855. {
  856. unsigned long flags;
  857. spin_lock_irqsave(&i2400m->tx_lock, flags);
  858. kfree(i2400m->tx_buf);
  859. i2400m->tx_buf = NULL;
  860. spin_unlock_irqrestore(&i2400m->tx_lock, flags);
  861. }