ehca_irq.c 24 KB

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  1. /*
  2. * IBM eServer eHCA Infiniband device driver for Linux on POWER
  3. *
  4. * Functions for EQs, NEQs and interrupts
  5. *
  6. * Authors: Heiko J Schick <schickhj@de.ibm.com>
  7. * Khadija Souissi <souissi@de.ibm.com>
  8. * Hoang-Nam Nguyen <hnguyen@de.ibm.com>
  9. * Joachim Fenkes <fenkes@de.ibm.com>
  10. *
  11. * Copyright (c) 2005 IBM Corporation
  12. *
  13. * All rights reserved.
  14. *
  15. * This source code is distributed under a dual license of GPL v2.0 and OpenIB
  16. * BSD.
  17. *
  18. * OpenIB BSD License
  19. *
  20. * Redistribution and use in source and binary forms, with or without
  21. * modification, are permitted provided that the following conditions are met:
  22. *
  23. * Redistributions of source code must retain the above copyright notice, this
  24. * list of conditions and the following disclaimer.
  25. *
  26. * Redistributions in binary form must reproduce the above copyright notice,
  27. * this list of conditions and the following disclaimer in the documentation
  28. * and/or other materials
  29. * provided with the distribution.
  30. *
  31. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
  32. * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  33. * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  34. * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
  35. * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
  36. * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
  37. * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
  38. * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER
  39. * IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
  40. * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
  41. * POSSIBILITY OF SUCH DAMAGE.
  42. */
  43. #include "ehca_classes.h"
  44. #include "ehca_irq.h"
  45. #include "ehca_iverbs.h"
  46. #include "ehca_tools.h"
  47. #include "hcp_if.h"
  48. #include "hipz_fns.h"
  49. #include "ipz_pt_fn.h"
  50. #define EQE_COMPLETION_EVENT EHCA_BMASK_IBM( 1, 1)
  51. #define EQE_CQ_QP_NUMBER EHCA_BMASK_IBM( 8, 31)
  52. #define EQE_EE_IDENTIFIER EHCA_BMASK_IBM( 2, 7)
  53. #define EQE_CQ_NUMBER EHCA_BMASK_IBM( 8, 31)
  54. #define EQE_QP_NUMBER EHCA_BMASK_IBM( 8, 31)
  55. #define EQE_QP_TOKEN EHCA_BMASK_IBM(32, 63)
  56. #define EQE_CQ_TOKEN EHCA_BMASK_IBM(32, 63)
  57. #define NEQE_COMPLETION_EVENT EHCA_BMASK_IBM( 1, 1)
  58. #define NEQE_EVENT_CODE EHCA_BMASK_IBM( 2, 7)
  59. #define NEQE_PORT_NUMBER EHCA_BMASK_IBM( 8, 15)
  60. #define NEQE_PORT_AVAILABILITY EHCA_BMASK_IBM(16, 16)
  61. #define NEQE_DISRUPTIVE EHCA_BMASK_IBM(16, 16)
  62. #define NEQE_SPECIFIC_EVENT EHCA_BMASK_IBM(16, 23)
  63. #define ERROR_DATA_LENGTH EHCA_BMASK_IBM(52, 63)
  64. #define ERROR_DATA_TYPE EHCA_BMASK_IBM( 0, 7)
  65. static void queue_comp_task(struct ehca_cq *__cq);
  66. static struct ehca_comp_pool *pool;
  67. static inline void comp_event_callback(struct ehca_cq *cq)
  68. {
  69. if (!cq->ib_cq.comp_handler)
  70. return;
  71. spin_lock(&cq->cb_lock);
  72. cq->ib_cq.comp_handler(&cq->ib_cq, cq->ib_cq.cq_context);
  73. spin_unlock(&cq->cb_lock);
  74. return;
  75. }
  76. static void print_error_data(struct ehca_shca *shca, void *data,
  77. u64 *rblock, int length)
  78. {
  79. u64 type = EHCA_BMASK_GET(ERROR_DATA_TYPE, rblock[2]);
  80. u64 resource = rblock[1];
  81. switch (type) {
  82. case 0x1: /* Queue Pair */
  83. {
  84. struct ehca_qp *qp = (struct ehca_qp *)data;
  85. /* only print error data if AER is set */
  86. if (rblock[6] == 0)
  87. return;
  88. ehca_err(&shca->ib_device,
  89. "QP 0x%x (resource=%lx) has errors.",
  90. qp->ib_qp.qp_num, resource);
  91. break;
  92. }
  93. case 0x4: /* Completion Queue */
  94. {
  95. struct ehca_cq *cq = (struct ehca_cq *)data;
  96. ehca_err(&shca->ib_device,
  97. "CQ 0x%x (resource=%lx) has errors.",
  98. cq->cq_number, resource);
  99. break;
  100. }
  101. default:
  102. ehca_err(&shca->ib_device,
  103. "Unknown error type: %lx on %s.",
  104. type, shca->ib_device.name);
  105. break;
  106. }
  107. ehca_err(&shca->ib_device, "Error data is available: %lx.", resource);
  108. ehca_err(&shca->ib_device, "EHCA ----- error data begin "
  109. "---------------------------------------------------");
  110. ehca_dmp(rblock, length, "resource=%lx", resource);
  111. ehca_err(&shca->ib_device, "EHCA ----- error data end "
  112. "----------------------------------------------------");
  113. return;
  114. }
  115. int ehca_error_data(struct ehca_shca *shca, void *data,
  116. u64 resource)
  117. {
  118. unsigned long ret;
  119. u64 *rblock;
  120. unsigned long block_count;
  121. rblock = ehca_alloc_fw_ctrlblock(GFP_ATOMIC);
  122. if (!rblock) {
  123. ehca_err(&shca->ib_device, "Cannot allocate rblock memory.");
  124. ret = -ENOMEM;
  125. goto error_data1;
  126. }
  127. /* rblock must be 4K aligned and should be 4K large */
  128. ret = hipz_h_error_data(shca->ipz_hca_handle,
  129. resource,
  130. rblock,
  131. &block_count);
  132. if (ret == H_R_STATE)
  133. ehca_err(&shca->ib_device,
  134. "No error data is available: %lx.", resource);
  135. else if (ret == H_SUCCESS) {
  136. int length;
  137. length = EHCA_BMASK_GET(ERROR_DATA_LENGTH, rblock[0]);
  138. if (length > EHCA_PAGESIZE)
  139. length = EHCA_PAGESIZE;
  140. print_error_data(shca, data, rblock, length);
  141. } else
  142. ehca_err(&shca->ib_device,
  143. "Error data could not be fetched: %lx", resource);
  144. ehca_free_fw_ctrlblock(rblock);
  145. error_data1:
  146. return ret;
  147. }
  148. static void dispatch_qp_event(struct ehca_shca *shca, struct ehca_qp *qp,
  149. enum ib_event_type event_type)
  150. {
  151. struct ib_event event;
  152. /* PATH_MIG without the QP ever having been armed is false alarm */
  153. if (event_type == IB_EVENT_PATH_MIG && !qp->mig_armed)
  154. return;
  155. event.device = &shca->ib_device;
  156. event.event = event_type;
  157. if (qp->ext_type == EQPT_SRQ) {
  158. if (!qp->ib_srq.event_handler)
  159. return;
  160. event.element.srq = &qp->ib_srq;
  161. qp->ib_srq.event_handler(&event, qp->ib_srq.srq_context);
  162. } else {
  163. if (!qp->ib_qp.event_handler)
  164. return;
  165. event.element.qp = &qp->ib_qp;
  166. qp->ib_qp.event_handler(&event, qp->ib_qp.qp_context);
  167. }
  168. }
  169. static void qp_event_callback(struct ehca_shca *shca, u64 eqe,
  170. enum ib_event_type event_type, int fatal)
  171. {
  172. struct ehca_qp *qp;
  173. u32 token = EHCA_BMASK_GET(EQE_QP_TOKEN, eqe);
  174. read_lock(&ehca_qp_idr_lock);
  175. qp = idr_find(&ehca_qp_idr, token);
  176. if (qp)
  177. atomic_inc(&qp->nr_events);
  178. read_unlock(&ehca_qp_idr_lock);
  179. if (!qp)
  180. return;
  181. if (fatal)
  182. ehca_error_data(shca, qp, qp->ipz_qp_handle.handle);
  183. dispatch_qp_event(shca, qp, fatal && qp->ext_type == EQPT_SRQ ?
  184. IB_EVENT_SRQ_ERR : event_type);
  185. /*
  186. * eHCA only processes one WQE at a time for SRQ base QPs,
  187. * so the last WQE has been processed as soon as the QP enters
  188. * error state.
  189. */
  190. if (fatal && qp->ext_type == EQPT_SRQBASE)
  191. dispatch_qp_event(shca, qp, IB_EVENT_QP_LAST_WQE_REACHED);
  192. if (atomic_dec_and_test(&qp->nr_events))
  193. wake_up(&qp->wait_completion);
  194. return;
  195. }
  196. static void cq_event_callback(struct ehca_shca *shca,
  197. u64 eqe)
  198. {
  199. struct ehca_cq *cq;
  200. u32 token = EHCA_BMASK_GET(EQE_CQ_TOKEN, eqe);
  201. read_lock(&ehca_cq_idr_lock);
  202. cq = idr_find(&ehca_cq_idr, token);
  203. if (cq)
  204. atomic_inc(&cq->nr_events);
  205. read_unlock(&ehca_cq_idr_lock);
  206. if (!cq)
  207. return;
  208. ehca_error_data(shca, cq, cq->ipz_cq_handle.handle);
  209. if (atomic_dec_and_test(&cq->nr_events))
  210. wake_up(&cq->wait_completion);
  211. return;
  212. }
  213. static void parse_identifier(struct ehca_shca *shca, u64 eqe)
  214. {
  215. u8 identifier = EHCA_BMASK_GET(EQE_EE_IDENTIFIER, eqe);
  216. switch (identifier) {
  217. case 0x02: /* path migrated */
  218. qp_event_callback(shca, eqe, IB_EVENT_PATH_MIG, 0);
  219. break;
  220. case 0x03: /* communication established */
  221. qp_event_callback(shca, eqe, IB_EVENT_COMM_EST, 0);
  222. break;
  223. case 0x04: /* send queue drained */
  224. qp_event_callback(shca, eqe, IB_EVENT_SQ_DRAINED, 0);
  225. break;
  226. case 0x05: /* QP error */
  227. case 0x06: /* QP error */
  228. qp_event_callback(shca, eqe, IB_EVENT_QP_FATAL, 1);
  229. break;
  230. case 0x07: /* CQ error */
  231. case 0x08: /* CQ error */
  232. cq_event_callback(shca, eqe);
  233. break;
  234. case 0x09: /* MRMWPTE error */
  235. ehca_err(&shca->ib_device, "MRMWPTE error.");
  236. break;
  237. case 0x0A: /* port event */
  238. ehca_err(&shca->ib_device, "Port event.");
  239. break;
  240. case 0x0B: /* MR access error */
  241. ehca_err(&shca->ib_device, "MR access error.");
  242. break;
  243. case 0x0C: /* EQ error */
  244. ehca_err(&shca->ib_device, "EQ error.");
  245. break;
  246. case 0x0D: /* P/Q_Key mismatch */
  247. ehca_err(&shca->ib_device, "P/Q_Key mismatch.");
  248. break;
  249. case 0x10: /* sampling complete */
  250. ehca_err(&shca->ib_device, "Sampling complete.");
  251. break;
  252. case 0x11: /* unaffiliated access error */
  253. ehca_err(&shca->ib_device, "Unaffiliated access error.");
  254. break;
  255. case 0x12: /* path migrating */
  256. ehca_err(&shca->ib_device, "Path migrating.");
  257. break;
  258. case 0x13: /* interface trace stopped */
  259. ehca_err(&shca->ib_device, "Interface trace stopped.");
  260. break;
  261. case 0x14: /* first error capture info available */
  262. ehca_info(&shca->ib_device, "First error capture available");
  263. break;
  264. case 0x15: /* SRQ limit reached */
  265. qp_event_callback(shca, eqe, IB_EVENT_SRQ_LIMIT_REACHED, 0);
  266. break;
  267. default:
  268. ehca_err(&shca->ib_device, "Unknown identifier: %x on %s.",
  269. identifier, shca->ib_device.name);
  270. break;
  271. }
  272. return;
  273. }
  274. static void dispatch_port_event(struct ehca_shca *shca, int port_num,
  275. enum ib_event_type type, const char *msg)
  276. {
  277. struct ib_event event;
  278. ehca_info(&shca->ib_device, "port %d %s.", port_num, msg);
  279. event.device = &shca->ib_device;
  280. event.event = type;
  281. event.element.port_num = port_num;
  282. ib_dispatch_event(&event);
  283. }
  284. static void notify_port_conf_change(struct ehca_shca *shca, int port_num)
  285. {
  286. struct ehca_sma_attr new_attr;
  287. struct ehca_sma_attr *old_attr = &shca->sport[port_num - 1].saved_attr;
  288. ehca_query_sma_attr(shca, port_num, &new_attr);
  289. if (new_attr.sm_sl != old_attr->sm_sl ||
  290. new_attr.sm_lid != old_attr->sm_lid)
  291. dispatch_port_event(shca, port_num, IB_EVENT_SM_CHANGE,
  292. "SM changed");
  293. if (new_attr.lid != old_attr->lid ||
  294. new_attr.lmc != old_attr->lmc)
  295. dispatch_port_event(shca, port_num, IB_EVENT_LID_CHANGE,
  296. "LID changed");
  297. if (new_attr.pkey_tbl_len != old_attr->pkey_tbl_len ||
  298. memcmp(new_attr.pkeys, old_attr->pkeys,
  299. sizeof(u16) * new_attr.pkey_tbl_len))
  300. dispatch_port_event(shca, port_num, IB_EVENT_PKEY_CHANGE,
  301. "P_Key changed");
  302. *old_attr = new_attr;
  303. }
  304. /* replay modify_qp for sqps -- return 0 if all is well, 1 if AQP1 destroyed */
  305. static int replay_modify_qp(struct ehca_sport *sport)
  306. {
  307. int aqp1_destroyed;
  308. unsigned long flags;
  309. spin_lock_irqsave(&sport->mod_sqp_lock, flags);
  310. aqp1_destroyed = !sport->ibqp_sqp[IB_QPT_GSI];
  311. if (sport->ibqp_sqp[IB_QPT_SMI])
  312. ehca_recover_sqp(sport->ibqp_sqp[IB_QPT_SMI]);
  313. if (!aqp1_destroyed)
  314. ehca_recover_sqp(sport->ibqp_sqp[IB_QPT_GSI]);
  315. spin_unlock_irqrestore(&sport->mod_sqp_lock, flags);
  316. return aqp1_destroyed;
  317. }
  318. static void parse_ec(struct ehca_shca *shca, u64 eqe)
  319. {
  320. u8 ec = EHCA_BMASK_GET(NEQE_EVENT_CODE, eqe);
  321. u8 port = EHCA_BMASK_GET(NEQE_PORT_NUMBER, eqe);
  322. u8 spec_event;
  323. struct ehca_sport *sport = &shca->sport[port - 1];
  324. switch (ec) {
  325. case 0x30: /* port availability change */
  326. if (EHCA_BMASK_GET(NEQE_PORT_AVAILABILITY, eqe)) {
  327. /* only replay modify_qp calls in autodetect mode;
  328. * if AQP1 was destroyed, the port is already down
  329. * again and we can drop the event.
  330. */
  331. if (ehca_nr_ports < 0)
  332. if (replay_modify_qp(sport))
  333. break;
  334. sport->port_state = IB_PORT_ACTIVE;
  335. dispatch_port_event(shca, port, IB_EVENT_PORT_ACTIVE,
  336. "is active");
  337. ehca_query_sma_attr(shca, port, &sport->saved_attr);
  338. } else {
  339. sport->port_state = IB_PORT_DOWN;
  340. dispatch_port_event(shca, port, IB_EVENT_PORT_ERR,
  341. "is inactive");
  342. }
  343. break;
  344. case 0x31:
  345. /* port configuration change
  346. * disruptive change is caused by
  347. * LID, PKEY or SM change
  348. */
  349. if (EHCA_BMASK_GET(NEQE_DISRUPTIVE, eqe)) {
  350. ehca_warn(&shca->ib_device, "disruptive port "
  351. "%d configuration change", port);
  352. sport->port_state = IB_PORT_DOWN;
  353. dispatch_port_event(shca, port, IB_EVENT_PORT_ERR,
  354. "is inactive");
  355. sport->port_state = IB_PORT_ACTIVE;
  356. dispatch_port_event(shca, port, IB_EVENT_PORT_ACTIVE,
  357. "is active");
  358. ehca_query_sma_attr(shca, port,
  359. &sport->saved_attr);
  360. } else
  361. notify_port_conf_change(shca, port);
  362. break;
  363. case 0x32: /* adapter malfunction */
  364. ehca_err(&shca->ib_device, "Adapter malfunction.");
  365. break;
  366. case 0x33: /* trace stopped */
  367. ehca_err(&shca->ib_device, "Traced stopped.");
  368. break;
  369. case 0x34: /* util async event */
  370. spec_event = EHCA_BMASK_GET(NEQE_SPECIFIC_EVENT, eqe);
  371. if (spec_event == 0x80) /* client reregister required */
  372. dispatch_port_event(shca, port,
  373. IB_EVENT_CLIENT_REREGISTER,
  374. "client reregister req.");
  375. else
  376. ehca_warn(&shca->ib_device, "Unknown util async "
  377. "event %x on port %x", spec_event, port);
  378. break;
  379. default:
  380. ehca_err(&shca->ib_device, "Unknown event code: %x on %s.",
  381. ec, shca->ib_device.name);
  382. break;
  383. }
  384. return;
  385. }
  386. static inline void reset_eq_pending(struct ehca_cq *cq)
  387. {
  388. u64 CQx_EP;
  389. struct h_galpa gal = cq->galpas.kernel;
  390. hipz_galpa_store_cq(gal, cqx_ep, 0x0);
  391. CQx_EP = hipz_galpa_load(gal, CQTEMM_OFFSET(cqx_ep));
  392. return;
  393. }
  394. irqreturn_t ehca_interrupt_neq(int irq, void *dev_id)
  395. {
  396. struct ehca_shca *shca = (struct ehca_shca*)dev_id;
  397. tasklet_hi_schedule(&shca->neq.interrupt_task);
  398. return IRQ_HANDLED;
  399. }
  400. void ehca_tasklet_neq(unsigned long data)
  401. {
  402. struct ehca_shca *shca = (struct ehca_shca*)data;
  403. struct ehca_eqe *eqe;
  404. u64 ret;
  405. eqe = (struct ehca_eqe *)ehca_poll_eq(shca, &shca->neq);
  406. while (eqe) {
  407. if (!EHCA_BMASK_GET(NEQE_COMPLETION_EVENT, eqe->entry))
  408. parse_ec(shca, eqe->entry);
  409. eqe = (struct ehca_eqe *)ehca_poll_eq(shca, &shca->neq);
  410. }
  411. ret = hipz_h_reset_event(shca->ipz_hca_handle,
  412. shca->neq.ipz_eq_handle, 0xFFFFFFFFFFFFFFFFL);
  413. if (ret != H_SUCCESS)
  414. ehca_err(&shca->ib_device, "Can't clear notification events.");
  415. return;
  416. }
  417. irqreturn_t ehca_interrupt_eq(int irq, void *dev_id)
  418. {
  419. struct ehca_shca *shca = (struct ehca_shca*)dev_id;
  420. tasklet_hi_schedule(&shca->eq.interrupt_task);
  421. return IRQ_HANDLED;
  422. }
  423. static inline void process_eqe(struct ehca_shca *shca, struct ehca_eqe *eqe)
  424. {
  425. u64 eqe_value;
  426. u32 token;
  427. struct ehca_cq *cq;
  428. eqe_value = eqe->entry;
  429. ehca_dbg(&shca->ib_device, "eqe_value=%lx", eqe_value);
  430. if (EHCA_BMASK_GET(EQE_COMPLETION_EVENT, eqe_value)) {
  431. ehca_dbg(&shca->ib_device, "Got completion event");
  432. token = EHCA_BMASK_GET(EQE_CQ_TOKEN, eqe_value);
  433. read_lock(&ehca_cq_idr_lock);
  434. cq = idr_find(&ehca_cq_idr, token);
  435. if (cq)
  436. atomic_inc(&cq->nr_events);
  437. read_unlock(&ehca_cq_idr_lock);
  438. if (cq == NULL) {
  439. ehca_err(&shca->ib_device,
  440. "Invalid eqe for non-existing cq token=%x",
  441. token);
  442. return;
  443. }
  444. reset_eq_pending(cq);
  445. if (ehca_scaling_code)
  446. queue_comp_task(cq);
  447. else {
  448. comp_event_callback(cq);
  449. if (atomic_dec_and_test(&cq->nr_events))
  450. wake_up(&cq->wait_completion);
  451. }
  452. } else {
  453. ehca_dbg(&shca->ib_device, "Got non completion event");
  454. parse_identifier(shca, eqe_value);
  455. }
  456. }
  457. void ehca_process_eq(struct ehca_shca *shca, int is_irq)
  458. {
  459. struct ehca_eq *eq = &shca->eq;
  460. struct ehca_eqe_cache_entry *eqe_cache = eq->eqe_cache;
  461. u64 eqe_value, ret;
  462. unsigned long flags;
  463. int eqe_cnt, i;
  464. int eq_empty = 0;
  465. spin_lock_irqsave(&eq->irq_spinlock, flags);
  466. if (is_irq) {
  467. const int max_query_cnt = 100;
  468. int query_cnt = 0;
  469. int int_state = 1;
  470. do {
  471. int_state = hipz_h_query_int_state(
  472. shca->ipz_hca_handle, eq->ist);
  473. query_cnt++;
  474. iosync();
  475. } while (int_state && query_cnt < max_query_cnt);
  476. if (unlikely((query_cnt == max_query_cnt)))
  477. ehca_dbg(&shca->ib_device, "int_state=%x query_cnt=%x",
  478. int_state, query_cnt);
  479. }
  480. /* read out all eqes */
  481. eqe_cnt = 0;
  482. do {
  483. u32 token;
  484. eqe_cache[eqe_cnt].eqe =
  485. (struct ehca_eqe *)ehca_poll_eq(shca, eq);
  486. if (!eqe_cache[eqe_cnt].eqe)
  487. break;
  488. eqe_value = eqe_cache[eqe_cnt].eqe->entry;
  489. if (EHCA_BMASK_GET(EQE_COMPLETION_EVENT, eqe_value)) {
  490. token = EHCA_BMASK_GET(EQE_CQ_TOKEN, eqe_value);
  491. read_lock(&ehca_cq_idr_lock);
  492. eqe_cache[eqe_cnt].cq = idr_find(&ehca_cq_idr, token);
  493. if (eqe_cache[eqe_cnt].cq)
  494. atomic_inc(&eqe_cache[eqe_cnt].cq->nr_events);
  495. read_unlock(&ehca_cq_idr_lock);
  496. if (!eqe_cache[eqe_cnt].cq) {
  497. ehca_err(&shca->ib_device,
  498. "Invalid eqe for non-existing cq "
  499. "token=%x", token);
  500. continue;
  501. }
  502. } else
  503. eqe_cache[eqe_cnt].cq = NULL;
  504. eqe_cnt++;
  505. } while (eqe_cnt < EHCA_EQE_CACHE_SIZE);
  506. if (!eqe_cnt) {
  507. if (is_irq)
  508. ehca_dbg(&shca->ib_device,
  509. "No eqe found for irq event");
  510. goto unlock_irq_spinlock;
  511. } else if (!is_irq) {
  512. ret = hipz_h_eoi(eq->ist);
  513. if (ret != H_SUCCESS)
  514. ehca_err(&shca->ib_device,
  515. "bad return code EOI -rc = %ld\n", ret);
  516. ehca_dbg(&shca->ib_device, "deadman found %x eqe", eqe_cnt);
  517. }
  518. if (unlikely(eqe_cnt == EHCA_EQE_CACHE_SIZE))
  519. ehca_dbg(&shca->ib_device, "too many eqes for one irq event");
  520. /* enable irq for new packets */
  521. for (i = 0; i < eqe_cnt; i++) {
  522. if (eq->eqe_cache[i].cq)
  523. reset_eq_pending(eq->eqe_cache[i].cq);
  524. }
  525. /* check eq */
  526. spin_lock(&eq->spinlock);
  527. eq_empty = (!ipz_eqit_eq_peek_valid(&shca->eq.ipz_queue));
  528. spin_unlock(&eq->spinlock);
  529. /* call completion handler for cached eqes */
  530. for (i = 0; i < eqe_cnt; i++)
  531. if (eq->eqe_cache[i].cq) {
  532. if (ehca_scaling_code)
  533. queue_comp_task(eq->eqe_cache[i].cq);
  534. else {
  535. struct ehca_cq *cq = eq->eqe_cache[i].cq;
  536. comp_event_callback(cq);
  537. if (atomic_dec_and_test(&cq->nr_events))
  538. wake_up(&cq->wait_completion);
  539. }
  540. } else {
  541. ehca_dbg(&shca->ib_device, "Got non completion event");
  542. parse_identifier(shca, eq->eqe_cache[i].eqe->entry);
  543. }
  544. /* poll eq if not empty */
  545. if (eq_empty)
  546. goto unlock_irq_spinlock;
  547. do {
  548. struct ehca_eqe *eqe;
  549. eqe = (struct ehca_eqe *)ehca_poll_eq(shca, &shca->eq);
  550. if (!eqe)
  551. break;
  552. process_eqe(shca, eqe);
  553. } while (1);
  554. unlock_irq_spinlock:
  555. spin_unlock_irqrestore(&eq->irq_spinlock, flags);
  556. }
  557. void ehca_tasklet_eq(unsigned long data)
  558. {
  559. ehca_process_eq((struct ehca_shca*)data, 1);
  560. }
  561. static inline int find_next_online_cpu(struct ehca_comp_pool *pool)
  562. {
  563. int cpu;
  564. unsigned long flags;
  565. WARN_ON_ONCE(!in_interrupt());
  566. if (ehca_debug_level >= 3)
  567. ehca_dmp(cpu_online_mask, cpumask_size(), "");
  568. spin_lock_irqsave(&pool->last_cpu_lock, flags);
  569. cpu = cpumask_next(pool->last_cpu, cpu_online_mask);
  570. if (cpu >= nr_cpu_ids)
  571. cpu = cpumask_first(cpu_online_mask);
  572. pool->last_cpu = cpu;
  573. spin_unlock_irqrestore(&pool->last_cpu_lock, flags);
  574. return cpu;
  575. }
  576. static void __queue_comp_task(struct ehca_cq *__cq,
  577. struct ehca_cpu_comp_task *cct)
  578. {
  579. unsigned long flags;
  580. spin_lock_irqsave(&cct->task_lock, flags);
  581. spin_lock(&__cq->task_lock);
  582. if (__cq->nr_callbacks == 0) {
  583. __cq->nr_callbacks++;
  584. list_add_tail(&__cq->entry, &cct->cq_list);
  585. cct->cq_jobs++;
  586. wake_up(&cct->wait_queue);
  587. } else
  588. __cq->nr_callbacks++;
  589. spin_unlock(&__cq->task_lock);
  590. spin_unlock_irqrestore(&cct->task_lock, flags);
  591. }
  592. static void queue_comp_task(struct ehca_cq *__cq)
  593. {
  594. int cpu_id;
  595. struct ehca_cpu_comp_task *cct;
  596. int cq_jobs;
  597. unsigned long flags;
  598. cpu_id = find_next_online_cpu(pool);
  599. BUG_ON(!cpu_online(cpu_id));
  600. cct = per_cpu_ptr(pool->cpu_comp_tasks, cpu_id);
  601. BUG_ON(!cct);
  602. spin_lock_irqsave(&cct->task_lock, flags);
  603. cq_jobs = cct->cq_jobs;
  604. spin_unlock_irqrestore(&cct->task_lock, flags);
  605. if (cq_jobs > 0) {
  606. cpu_id = find_next_online_cpu(pool);
  607. cct = per_cpu_ptr(pool->cpu_comp_tasks, cpu_id);
  608. BUG_ON(!cct);
  609. }
  610. __queue_comp_task(__cq, cct);
  611. }
  612. static void run_comp_task(struct ehca_cpu_comp_task *cct)
  613. {
  614. struct ehca_cq *cq;
  615. unsigned long flags;
  616. spin_lock_irqsave(&cct->task_lock, flags);
  617. while (!list_empty(&cct->cq_list)) {
  618. cq = list_entry(cct->cq_list.next, struct ehca_cq, entry);
  619. spin_unlock_irqrestore(&cct->task_lock, flags);
  620. comp_event_callback(cq);
  621. if (atomic_dec_and_test(&cq->nr_events))
  622. wake_up(&cq->wait_completion);
  623. spin_lock_irqsave(&cct->task_lock, flags);
  624. spin_lock(&cq->task_lock);
  625. cq->nr_callbacks--;
  626. if (!cq->nr_callbacks) {
  627. list_del_init(cct->cq_list.next);
  628. cct->cq_jobs--;
  629. }
  630. spin_unlock(&cq->task_lock);
  631. }
  632. spin_unlock_irqrestore(&cct->task_lock, flags);
  633. }
  634. static int comp_task(void *__cct)
  635. {
  636. struct ehca_cpu_comp_task *cct = __cct;
  637. int cql_empty;
  638. DECLARE_WAITQUEUE(wait, current);
  639. set_current_state(TASK_INTERRUPTIBLE);
  640. while (!kthread_should_stop()) {
  641. add_wait_queue(&cct->wait_queue, &wait);
  642. spin_lock_irq(&cct->task_lock);
  643. cql_empty = list_empty(&cct->cq_list);
  644. spin_unlock_irq(&cct->task_lock);
  645. if (cql_empty)
  646. schedule();
  647. else
  648. __set_current_state(TASK_RUNNING);
  649. remove_wait_queue(&cct->wait_queue, &wait);
  650. spin_lock_irq(&cct->task_lock);
  651. cql_empty = list_empty(&cct->cq_list);
  652. spin_unlock_irq(&cct->task_lock);
  653. if (!cql_empty)
  654. run_comp_task(__cct);
  655. set_current_state(TASK_INTERRUPTIBLE);
  656. }
  657. __set_current_state(TASK_RUNNING);
  658. return 0;
  659. }
  660. static struct task_struct *create_comp_task(struct ehca_comp_pool *pool,
  661. int cpu)
  662. {
  663. struct ehca_cpu_comp_task *cct;
  664. cct = per_cpu_ptr(pool->cpu_comp_tasks, cpu);
  665. spin_lock_init(&cct->task_lock);
  666. INIT_LIST_HEAD(&cct->cq_list);
  667. init_waitqueue_head(&cct->wait_queue);
  668. cct->task = kthread_create(comp_task, cct, "ehca_comp/%d", cpu);
  669. return cct->task;
  670. }
  671. static void destroy_comp_task(struct ehca_comp_pool *pool,
  672. int cpu)
  673. {
  674. struct ehca_cpu_comp_task *cct;
  675. struct task_struct *task;
  676. unsigned long flags_cct;
  677. cct = per_cpu_ptr(pool->cpu_comp_tasks, cpu);
  678. spin_lock_irqsave(&cct->task_lock, flags_cct);
  679. task = cct->task;
  680. cct->task = NULL;
  681. cct->cq_jobs = 0;
  682. spin_unlock_irqrestore(&cct->task_lock, flags_cct);
  683. if (task)
  684. kthread_stop(task);
  685. }
  686. static void __cpuinit take_over_work(struct ehca_comp_pool *pool, int cpu)
  687. {
  688. struct ehca_cpu_comp_task *cct = per_cpu_ptr(pool->cpu_comp_tasks, cpu);
  689. LIST_HEAD(list);
  690. struct ehca_cq *cq;
  691. unsigned long flags_cct;
  692. spin_lock_irqsave(&cct->task_lock, flags_cct);
  693. list_splice_init(&cct->cq_list, &list);
  694. while (!list_empty(&list)) {
  695. cq = list_entry(cct->cq_list.next, struct ehca_cq, entry);
  696. list_del(&cq->entry);
  697. __queue_comp_task(cq, per_cpu_ptr(pool->cpu_comp_tasks,
  698. smp_processor_id()));
  699. }
  700. spin_unlock_irqrestore(&cct->task_lock, flags_cct);
  701. }
  702. static int __cpuinit comp_pool_callback(struct notifier_block *nfb,
  703. unsigned long action,
  704. void *hcpu)
  705. {
  706. unsigned int cpu = (unsigned long)hcpu;
  707. struct ehca_cpu_comp_task *cct;
  708. switch (action) {
  709. case CPU_UP_PREPARE:
  710. case CPU_UP_PREPARE_FROZEN:
  711. ehca_gen_dbg("CPU: %x (CPU_PREPARE)", cpu);
  712. if (!create_comp_task(pool, cpu)) {
  713. ehca_gen_err("Can't create comp_task for cpu: %x", cpu);
  714. return NOTIFY_BAD;
  715. }
  716. break;
  717. case CPU_UP_CANCELED:
  718. case CPU_UP_CANCELED_FROZEN:
  719. ehca_gen_dbg("CPU: %x (CPU_CANCELED)", cpu);
  720. cct = per_cpu_ptr(pool->cpu_comp_tasks, cpu);
  721. kthread_bind(cct->task, cpumask_any(cpu_online_mask));
  722. destroy_comp_task(pool, cpu);
  723. break;
  724. case CPU_ONLINE:
  725. case CPU_ONLINE_FROZEN:
  726. ehca_gen_dbg("CPU: %x (CPU_ONLINE)", cpu);
  727. cct = per_cpu_ptr(pool->cpu_comp_tasks, cpu);
  728. kthread_bind(cct->task, cpu);
  729. wake_up_process(cct->task);
  730. break;
  731. case CPU_DOWN_PREPARE:
  732. case CPU_DOWN_PREPARE_FROZEN:
  733. ehca_gen_dbg("CPU: %x (CPU_DOWN_PREPARE)", cpu);
  734. break;
  735. case CPU_DOWN_FAILED:
  736. case CPU_DOWN_FAILED_FROZEN:
  737. ehca_gen_dbg("CPU: %x (CPU_DOWN_FAILED)", cpu);
  738. break;
  739. case CPU_DEAD:
  740. case CPU_DEAD_FROZEN:
  741. ehca_gen_dbg("CPU: %x (CPU_DEAD)", cpu);
  742. destroy_comp_task(pool, cpu);
  743. take_over_work(pool, cpu);
  744. break;
  745. }
  746. return NOTIFY_OK;
  747. }
  748. static struct notifier_block comp_pool_callback_nb __cpuinitdata = {
  749. .notifier_call = comp_pool_callback,
  750. .priority = 0,
  751. };
  752. int ehca_create_comp_pool(void)
  753. {
  754. int cpu;
  755. struct task_struct *task;
  756. if (!ehca_scaling_code)
  757. return 0;
  758. pool = kzalloc(sizeof(struct ehca_comp_pool), GFP_KERNEL);
  759. if (pool == NULL)
  760. return -ENOMEM;
  761. spin_lock_init(&pool->last_cpu_lock);
  762. pool->last_cpu = cpumask_any(cpu_online_mask);
  763. pool->cpu_comp_tasks = alloc_percpu(struct ehca_cpu_comp_task);
  764. if (pool->cpu_comp_tasks == NULL) {
  765. kfree(pool);
  766. return -EINVAL;
  767. }
  768. for_each_online_cpu(cpu) {
  769. task = create_comp_task(pool, cpu);
  770. if (task) {
  771. kthread_bind(task, cpu);
  772. wake_up_process(task);
  773. }
  774. }
  775. register_hotcpu_notifier(&comp_pool_callback_nb);
  776. printk(KERN_INFO "eHCA scaling code enabled\n");
  777. return 0;
  778. }
  779. void ehca_destroy_comp_pool(void)
  780. {
  781. int i;
  782. if (!ehca_scaling_code)
  783. return;
  784. unregister_hotcpu_notifier(&comp_pool_callback_nb);
  785. for_each_online_cpu(i)
  786. destroy_comp_task(pool, i);
  787. free_percpu(pool->cpu_comp_tasks);
  788. kfree(pool);
  789. }