1 /*
2 * Copyright (c) 2012, 2013 Intel Corporation. All rights reserved.
3 * Copyright (c) 2006 - 2012 QLogic Corporation. All rights reserved.
4 * Copyright (c) 2003, 2004, 2005, 2006 PathScale, Inc. All rights reserved.
5 *
6 * This software is available to you under a choice of one of two
7 * licenses. You may choose to be licensed under the terms of the GNU
8 * General Public License (GPL) Version 2, available from the file
9 * COPYING in the main directory of this source tree, or the
10 * OpenIB.org BSD license below:
11 *
12 * Redistribution and use in source and binary forms, with or
13 * without modification, are permitted provided that the following
14 * conditions are met:
15 *
16 * - Redistributions of source code must retain the above
17 * copyright notice, this list of conditions and the following
18 * disclaimer.
19 *
20 * - Redistributions in binary form must reproduce the above
21 * copyright notice, this list of conditions and the following
22 * disclaimer in the documentation and/or other materials
23 * provided with the distribution.
24 *
25 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
26 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
27 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
28 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
29 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
30 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
31 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
32 * SOFTWARE.
33 */
34
35 #include <linux/pci.h>
36 #include <linux/netdevice.h>
37 #include <linux/vmalloc.h>
38 #include <linux/delay.h>
39 #include <linux/module.h>
40 #include <linux/printk.h>
41 #ifdef CONFIG_INFINIBAND_QIB_DCA
42 #include <linux/dca.h>
43 #endif
44 #include <rdma/rdma_vt.h>
45
46 #include "qib.h"
47 #include "qib_common.h"
48 #include "qib_mad.h"
49 #ifdef CONFIG_DEBUG_FS
50 #include "qib_debugfs.h"
51 #include "qib_verbs.h"
52 #endif
53
54 #undef pr_fmt
55 #define pr_fmt(fmt) QIB_DRV_NAME ": " fmt
56
57 /*
58 * min buffers we want to have per context, after driver
59 */
60 #define QIB_MIN_USER_CTXT_BUFCNT 7
61
62 #define QLOGIC_IB_R_SOFTWARE_MASK 0xFF
63 #define QLOGIC_IB_R_SOFTWARE_SHIFT 24
64 #define QLOGIC_IB_R_EMULATOR_MASK (1ULL<<62)
65
66 /*
67 * Number of ctxts we are configured to use (to allow for more pio
68 * buffers per ctxt, etc.) Zero means use chip value.
69 */
70 ushort qib_cfgctxts;
71 module_param_named(cfgctxts, qib_cfgctxts, ushort, S_IRUGO);
72 MODULE_PARM_DESC(cfgctxts, "Set max number of contexts to use");
73
74 unsigned qib_numa_aware;
75 module_param_named(numa_aware, qib_numa_aware, uint, S_IRUGO);
76 MODULE_PARM_DESC(numa_aware,
77 "0 -> PSM allocation close to HCA, 1 -> PSM allocation local to process");
78
79 /*
80 * If set, do not write to any regs if avoidable, hack to allow
81 * check for deranged default register values.
82 */
83 ushort qib_mini_init;
84 module_param_named(mini_init, qib_mini_init, ushort, S_IRUGO);
85 MODULE_PARM_DESC(mini_init, "If set, do minimal diag init");
86
87 unsigned qib_n_krcv_queues;
88 module_param_named(krcvqs, qib_n_krcv_queues, uint, S_IRUGO);
89 MODULE_PARM_DESC(krcvqs, "number of kernel receive queues per IB port");
90
91 unsigned qib_cc_table_size;
92 module_param_named(cc_table_size, qib_cc_table_size, uint, S_IRUGO);
93 MODULE_PARM_DESC(cc_table_size, "Congestion control table entries 0 (CCA disabled - default), min = 128, max = 1984");
94
95 static void verify_interrupt(struct timer_list *);
96
97 DEFINE_XARRAY_FLAGS(qib_dev_table, XA_FLAGS_ALLOC | XA_FLAGS_LOCK_IRQ);
98 u32 qib_cpulist_count;
99 unsigned long *qib_cpulist;
100
101 /* set number of contexts we'll actually use */
qib_set_ctxtcnt(struct qib_devdata * dd)102 void qib_set_ctxtcnt(struct qib_devdata *dd)
103 {
104 if (!qib_cfgctxts) {
105 dd->cfgctxts = dd->first_user_ctxt + num_online_cpus();
106 if (dd->cfgctxts > dd->ctxtcnt)
107 dd->cfgctxts = dd->ctxtcnt;
108 } else if (qib_cfgctxts < dd->num_pports)
109 dd->cfgctxts = dd->ctxtcnt;
110 else if (qib_cfgctxts <= dd->ctxtcnt)
111 dd->cfgctxts = qib_cfgctxts;
112 else
113 dd->cfgctxts = dd->ctxtcnt;
114 dd->freectxts = (dd->first_user_ctxt > dd->cfgctxts) ? 0 :
115 dd->cfgctxts - dd->first_user_ctxt;
116 }
117
118 /*
119 * Common code for creating the receive context array.
120 */
qib_create_ctxts(struct qib_devdata * dd)121 int qib_create_ctxts(struct qib_devdata *dd)
122 {
123 unsigned i;
124 int local_node_id = pcibus_to_node(dd->pcidev->bus);
125
126 if (local_node_id < 0)
127 local_node_id = numa_node_id();
128 dd->assigned_node_id = local_node_id;
129
130 /*
131 * Allocate full ctxtcnt array, rather than just cfgctxts, because
132 * cleanup iterates across all possible ctxts.
133 */
134 dd->rcd = kcalloc(dd->ctxtcnt, sizeof(*dd->rcd), GFP_KERNEL);
135 if (!dd->rcd)
136 return -ENOMEM;
137
138 /* create (one or more) kctxt */
139 for (i = 0; i < dd->first_user_ctxt; ++i) {
140 struct qib_pportdata *ppd;
141 struct qib_ctxtdata *rcd;
142
143 if (dd->skip_kctxt_mask & (1 << i))
144 continue;
145
146 ppd = dd->pport + (i % dd->num_pports);
147
148 rcd = qib_create_ctxtdata(ppd, i, dd->assigned_node_id);
149 if (!rcd) {
150 qib_dev_err(dd,
151 "Unable to allocate ctxtdata for Kernel ctxt, failing\n");
152 kfree(dd->rcd);
153 dd->rcd = NULL;
154 return -ENOMEM;
155 }
156 rcd->pkeys[0] = QIB_DEFAULT_P_KEY;
157 rcd->seq_cnt = 1;
158 }
159 return 0;
160 }
161
162 /*
163 * Common code for user and kernel context setup.
164 */
qib_create_ctxtdata(struct qib_pportdata * ppd,u32 ctxt,int node_id)165 struct qib_ctxtdata *qib_create_ctxtdata(struct qib_pportdata *ppd, u32 ctxt,
166 int node_id)
167 {
168 struct qib_devdata *dd = ppd->dd;
169 struct qib_ctxtdata *rcd;
170
171 rcd = kzalloc_node(sizeof(*rcd), GFP_KERNEL, node_id);
172 if (rcd) {
173 INIT_LIST_HEAD(&rcd->qp_wait_list);
174 rcd->node_id = node_id;
175 rcd->ppd = ppd;
176 rcd->dd = dd;
177 rcd->cnt = 1;
178 rcd->ctxt = ctxt;
179 dd->rcd[ctxt] = rcd;
180 #ifdef CONFIG_DEBUG_FS
181 if (ctxt < dd->first_user_ctxt) { /* N/A for PSM contexts */
182 rcd->opstats = kzalloc_node(sizeof(*rcd->opstats),
183 GFP_KERNEL, node_id);
184 if (!rcd->opstats) {
185 kfree(rcd);
186 qib_dev_err(dd,
187 "Unable to allocate per ctxt stats buffer\n");
188 return NULL;
189 }
190 }
191 #endif
192 dd->f_init_ctxt(rcd);
193
194 /*
195 * To avoid wasting a lot of memory, we allocate 32KB chunks
196 * of physically contiguous memory, advance through it until
197 * used up and then allocate more. Of course, we need
198 * memory to store those extra pointers, now. 32KB seems to
199 * be the most that is "safe" under memory pressure
200 * (creating large files and then copying them over
201 * NFS while doing lots of MPI jobs). The OOM killer can
202 * get invoked, even though we say we can sleep and this can
203 * cause significant system problems....
204 */
205 rcd->rcvegrbuf_size = 0x8000;
206 rcd->rcvegrbufs_perchunk =
207 rcd->rcvegrbuf_size / dd->rcvegrbufsize;
208 rcd->rcvegrbuf_chunks = (rcd->rcvegrcnt +
209 rcd->rcvegrbufs_perchunk - 1) /
210 rcd->rcvegrbufs_perchunk;
211 rcd->rcvegrbufs_perchunk_shift =
212 ilog2(rcd->rcvegrbufs_perchunk);
213 }
214 return rcd;
215 }
216
217 /*
218 * Common code for initializing the physical port structure.
219 */
qib_init_pportdata(struct qib_pportdata * ppd,struct qib_devdata * dd,u8 hw_pidx,u8 port)220 int qib_init_pportdata(struct qib_pportdata *ppd, struct qib_devdata *dd,
221 u8 hw_pidx, u8 port)
222 {
223 int size;
224
225 ppd->dd = dd;
226 ppd->hw_pidx = hw_pidx;
227 ppd->port = port; /* IB port number, not index */
228
229 spin_lock_init(&ppd->sdma_lock);
230 spin_lock_init(&ppd->lflags_lock);
231 spin_lock_init(&ppd->cc_shadow_lock);
232 init_waitqueue_head(&ppd->state_wait);
233
234 timer_setup(&ppd->symerr_clear_timer, qib_clear_symerror_on_linkup, 0);
235
236 ppd->qib_wq = NULL;
237 ppd->ibport_data.pmastats =
238 alloc_percpu(struct qib_pma_counters);
239 if (!ppd->ibport_data.pmastats)
240 return -ENOMEM;
241 ppd->ibport_data.rvp.rc_acks = alloc_percpu(u64);
242 ppd->ibport_data.rvp.rc_qacks = alloc_percpu(u64);
243 ppd->ibport_data.rvp.rc_delayed_comp = alloc_percpu(u64);
244 if (!(ppd->ibport_data.rvp.rc_acks) ||
245 !(ppd->ibport_data.rvp.rc_qacks) ||
246 !(ppd->ibport_data.rvp.rc_delayed_comp))
247 return -ENOMEM;
248
249 if (qib_cc_table_size < IB_CCT_MIN_ENTRIES)
250 goto bail;
251
252 ppd->cc_supported_table_entries = min(max_t(int, qib_cc_table_size,
253 IB_CCT_MIN_ENTRIES), IB_CCT_ENTRIES*IB_CC_TABLE_CAP_DEFAULT);
254
255 ppd->cc_max_table_entries =
256 ppd->cc_supported_table_entries/IB_CCT_ENTRIES;
257
258 size = IB_CC_TABLE_CAP_DEFAULT * sizeof(struct ib_cc_table_entry)
259 * IB_CCT_ENTRIES;
260 ppd->ccti_entries = kzalloc(size, GFP_KERNEL);
261 if (!ppd->ccti_entries)
262 goto bail;
263
264 size = IB_CC_CCS_ENTRIES * sizeof(struct ib_cc_congestion_entry);
265 ppd->congestion_entries = kzalloc(size, GFP_KERNEL);
266 if (!ppd->congestion_entries)
267 goto bail_1;
268
269 size = sizeof(struct cc_table_shadow);
270 ppd->ccti_entries_shadow = kzalloc(size, GFP_KERNEL);
271 if (!ppd->ccti_entries_shadow)
272 goto bail_2;
273
274 size = sizeof(struct ib_cc_congestion_setting_attr);
275 ppd->congestion_entries_shadow = kzalloc(size, GFP_KERNEL);
276 if (!ppd->congestion_entries_shadow)
277 goto bail_3;
278
279 return 0;
280
281 bail_3:
282 kfree(ppd->ccti_entries_shadow);
283 ppd->ccti_entries_shadow = NULL;
284 bail_2:
285 kfree(ppd->congestion_entries);
286 ppd->congestion_entries = NULL;
287 bail_1:
288 kfree(ppd->ccti_entries);
289 ppd->ccti_entries = NULL;
290 bail:
291 /* User is intentionally disabling the congestion control agent */
292 if (!qib_cc_table_size)
293 return 0;
294
295 if (qib_cc_table_size < IB_CCT_MIN_ENTRIES) {
296 qib_cc_table_size = 0;
297 qib_dev_err(dd,
298 "Congestion Control table size %d less than minimum %d for port %d\n",
299 qib_cc_table_size, IB_CCT_MIN_ENTRIES, port);
300 }
301
302 qib_dev_err(dd, "Congestion Control Agent disabled for port %d\n",
303 port);
304 return 0;
305 }
306
init_pioavailregs(struct qib_devdata * dd)307 static int init_pioavailregs(struct qib_devdata *dd)
308 {
309 int ret, pidx;
310 u64 *status_page;
311
312 dd->pioavailregs_dma = dma_alloc_coherent(
313 &dd->pcidev->dev, PAGE_SIZE, &dd->pioavailregs_phys,
314 GFP_KERNEL);
315 if (!dd->pioavailregs_dma) {
316 qib_dev_err(dd,
317 "failed to allocate PIOavail reg area in memory\n");
318 ret = -ENOMEM;
319 goto done;
320 }
321
322 /*
323 * We really want L2 cache aligned, but for current CPUs of
324 * interest, they are the same.
325 */
326 status_page = (u64 *)
327 ((char *) dd->pioavailregs_dma +
328 ((2 * L1_CACHE_BYTES +
329 dd->pioavregs * sizeof(u64)) & ~L1_CACHE_BYTES));
330 /* device status comes first, for backwards compatibility */
331 dd->devstatusp = status_page;
332 *status_page++ = 0;
333 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
334 dd->pport[pidx].statusp = status_page;
335 *status_page++ = 0;
336 }
337
338 /*
339 * Setup buffer to hold freeze and other messages, accessible to
340 * apps, following statusp. This is per-unit, not per port.
341 */
342 dd->freezemsg = (char *) status_page;
343 *dd->freezemsg = 0;
344 /* length of msg buffer is "whatever is left" */
345 ret = (char *) status_page - (char *) dd->pioavailregs_dma;
346 dd->freezelen = PAGE_SIZE - ret;
347
348 ret = 0;
349
350 done:
351 return ret;
352 }
353
354 /**
355 * init_shadow_tids - allocate the shadow TID array
356 * @dd: the qlogic_ib device
357 *
358 * allocate the shadow TID array, so we can qib_munlock previous
359 * entries. It may make more sense to move the pageshadow to the
360 * ctxt data structure, so we only allocate memory for ctxts actually
361 * in use, since we at 8k per ctxt, now.
362 * We don't want failures here to prevent use of the driver/chip,
363 * so no return value.
364 */
init_shadow_tids(struct qib_devdata * dd)365 static void init_shadow_tids(struct qib_devdata *dd)
366 {
367 struct page **pages;
368 dma_addr_t *addrs;
369
370 pages = vzalloc(array_size(sizeof(struct page *),
371 dd->cfgctxts * dd->rcvtidcnt));
372 if (!pages)
373 goto bail;
374
375 addrs = vzalloc(array_size(sizeof(dma_addr_t),
376 dd->cfgctxts * dd->rcvtidcnt));
377 if (!addrs)
378 goto bail_free;
379
380 dd->pageshadow = pages;
381 dd->physshadow = addrs;
382 return;
383
384 bail_free:
385 vfree(pages);
386 bail:
387 dd->pageshadow = NULL;
388 }
389
390 /*
391 * Do initialization for device that is only needed on
392 * first detect, not on resets.
393 */
loadtime_init(struct qib_devdata * dd)394 static int loadtime_init(struct qib_devdata *dd)
395 {
396 int ret = 0;
397
398 if (((dd->revision >> QLOGIC_IB_R_SOFTWARE_SHIFT) &
399 QLOGIC_IB_R_SOFTWARE_MASK) != QIB_CHIP_SWVERSION) {
400 qib_dev_err(dd,
401 "Driver only handles version %d, chip swversion is %d (%llx), failing\n",
402 QIB_CHIP_SWVERSION,
403 (int)(dd->revision >>
404 QLOGIC_IB_R_SOFTWARE_SHIFT) &
405 QLOGIC_IB_R_SOFTWARE_MASK,
406 (unsigned long long) dd->revision);
407 ret = -ENOSYS;
408 goto done;
409 }
410
411 if (dd->revision & QLOGIC_IB_R_EMULATOR_MASK)
412 qib_devinfo(dd->pcidev, "%s", dd->boardversion);
413
414 spin_lock_init(&dd->pioavail_lock);
415 spin_lock_init(&dd->sendctrl_lock);
416 spin_lock_init(&dd->uctxt_lock);
417 spin_lock_init(&dd->qib_diag_trans_lock);
418 spin_lock_init(&dd->eep_st_lock);
419 mutex_init(&dd->eep_lock);
420
421 if (qib_mini_init)
422 goto done;
423
424 ret = init_pioavailregs(dd);
425 init_shadow_tids(dd);
426
427 qib_get_eeprom_info(dd);
428
429 /* setup time (don't start yet) to verify we got interrupt */
430 timer_setup(&dd->intrchk_timer, verify_interrupt, 0);
431 done:
432 return ret;
433 }
434
435 /**
436 * init_after_reset - re-initialize after a reset
437 * @dd: the qlogic_ib device
438 *
439 * sanity check at least some of the values after reset, and
440 * ensure no receive or transmit (explicitly, in case reset
441 * failed
442 */
init_after_reset(struct qib_devdata * dd)443 static int init_after_reset(struct qib_devdata *dd)
444 {
445 int i;
446
447 /*
448 * Ensure chip does no sends or receives, tail updates, or
449 * pioavail updates while we re-initialize. This is mostly
450 * for the driver data structures, not chip registers.
451 */
452 for (i = 0; i < dd->num_pports; ++i) {
453 /*
454 * ctxt == -1 means "all contexts". Only really safe for
455 * _dis_abling things, as here.
456 */
457 dd->f_rcvctrl(dd->pport + i, QIB_RCVCTRL_CTXT_DIS |
458 QIB_RCVCTRL_INTRAVAIL_DIS |
459 QIB_RCVCTRL_TAILUPD_DIS, -1);
460 /* Redundant across ports for some, but no big deal. */
461 dd->f_sendctrl(dd->pport + i, QIB_SENDCTRL_SEND_DIS |
462 QIB_SENDCTRL_AVAIL_DIS);
463 }
464
465 return 0;
466 }
467
enable_chip(struct qib_devdata * dd)468 static void enable_chip(struct qib_devdata *dd)
469 {
470 u64 rcvmask;
471 int i;
472
473 /*
474 * Enable PIO send, and update of PIOavail regs to memory.
475 */
476 for (i = 0; i < dd->num_pports; ++i)
477 dd->f_sendctrl(dd->pport + i, QIB_SENDCTRL_SEND_ENB |
478 QIB_SENDCTRL_AVAIL_ENB);
479 /*
480 * Enable kernel ctxts' receive and receive interrupt.
481 * Other ctxts done as user opens and inits them.
482 */
483 rcvmask = QIB_RCVCTRL_CTXT_ENB | QIB_RCVCTRL_INTRAVAIL_ENB;
484 rcvmask |= (dd->flags & QIB_NODMA_RTAIL) ?
485 QIB_RCVCTRL_TAILUPD_DIS : QIB_RCVCTRL_TAILUPD_ENB;
486 for (i = 0; dd->rcd && i < dd->first_user_ctxt; ++i) {
487 struct qib_ctxtdata *rcd = dd->rcd[i];
488
489 if (rcd)
490 dd->f_rcvctrl(rcd->ppd, rcvmask, i);
491 }
492 }
493
verify_interrupt(struct timer_list * t)494 static void verify_interrupt(struct timer_list *t)
495 {
496 struct qib_devdata *dd = from_timer(dd, t, intrchk_timer);
497 u64 int_counter;
498
499 if (!dd)
500 return; /* being torn down */
501
502 /*
503 * If we don't have a lid or any interrupts, let the user know and
504 * don't bother checking again.
505 */
506 int_counter = qib_int_counter(dd) - dd->z_int_counter;
507 if (int_counter == 0) {
508 if (!dd->f_intr_fallback(dd))
509 dev_err(&dd->pcidev->dev,
510 "No interrupts detected, not usable.\n");
511 else /* re-arm the timer to see if fallback works */
512 mod_timer(&dd->intrchk_timer, jiffies + HZ/2);
513 }
514 }
515
init_piobuf_state(struct qib_devdata * dd)516 static void init_piobuf_state(struct qib_devdata *dd)
517 {
518 int i, pidx;
519 u32 uctxts;
520
521 /*
522 * Ensure all buffers are free, and fifos empty. Buffers
523 * are common, so only do once for port 0.
524 *
525 * After enable and qib_chg_pioavailkernel so we can safely
526 * enable pioavail updates and PIOENABLE. After this, packets
527 * are ready and able to go out.
528 */
529 dd->f_sendctrl(dd->pport, QIB_SENDCTRL_DISARM_ALL);
530 for (pidx = 0; pidx < dd->num_pports; ++pidx)
531 dd->f_sendctrl(dd->pport + pidx, QIB_SENDCTRL_FLUSH);
532
533 /*
534 * If not all sendbufs are used, add the one to each of the lower
535 * numbered contexts. pbufsctxt and lastctxt_piobuf are
536 * calculated in chip-specific code because it may cause some
537 * chip-specific adjustments to be made.
538 */
539 uctxts = dd->cfgctxts - dd->first_user_ctxt;
540 dd->ctxts_extrabuf = dd->pbufsctxt ?
541 dd->lastctxt_piobuf - (dd->pbufsctxt * uctxts) : 0;
542
543 /*
544 * Set up the shadow copies of the piobufavail registers,
545 * which we compare against the chip registers for now, and
546 * the in memory DMA'ed copies of the registers.
547 * By now pioavail updates to memory should have occurred, so
548 * copy them into our working/shadow registers; this is in
549 * case something went wrong with abort, but mostly to get the
550 * initial values of the generation bit correct.
551 */
552 for (i = 0; i < dd->pioavregs; i++) {
553 __le64 tmp;
554
555 tmp = dd->pioavailregs_dma[i];
556 /*
557 * Don't need to worry about pioavailkernel here
558 * because we will call qib_chg_pioavailkernel() later
559 * in initialization, to busy out buffers as needed.
560 */
561 dd->pioavailshadow[i] = le64_to_cpu(tmp);
562 }
563 while (i < ARRAY_SIZE(dd->pioavailshadow))
564 dd->pioavailshadow[i++] = 0; /* for debugging sanity */
565
566 /* after pioavailshadow is setup */
567 qib_chg_pioavailkernel(dd, 0, dd->piobcnt2k + dd->piobcnt4k,
568 TXCHK_CHG_TYPE_KERN, NULL);
569 dd->f_initvl15_bufs(dd);
570 }
571
572 /**
573 * qib_create_workqueues - create per port workqueues
574 * @dd: the qlogic_ib device
575 */
qib_create_workqueues(struct qib_devdata * dd)576 static int qib_create_workqueues(struct qib_devdata *dd)
577 {
578 int pidx;
579 struct qib_pportdata *ppd;
580
581 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
582 ppd = dd->pport + pidx;
583 if (!ppd->qib_wq) {
584 ppd->qib_wq = alloc_ordered_workqueue("qib%d_%d",
585 WQ_MEM_RECLAIM,
586 dd->unit, pidx);
587 if (!ppd->qib_wq)
588 goto wq_error;
589 }
590 }
591 return 0;
592 wq_error:
593 pr_err("create_singlethread_workqueue failed for port %d\n",
594 pidx + 1);
595 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
596 ppd = dd->pport + pidx;
597 if (ppd->qib_wq) {
598 destroy_workqueue(ppd->qib_wq);
599 ppd->qib_wq = NULL;
600 }
601 }
602 return -ENOMEM;
603 }
604
qib_free_pportdata(struct qib_pportdata * ppd)605 static void qib_free_pportdata(struct qib_pportdata *ppd)
606 {
607 free_percpu(ppd->ibport_data.pmastats);
608 free_percpu(ppd->ibport_data.rvp.rc_acks);
609 free_percpu(ppd->ibport_data.rvp.rc_qacks);
610 free_percpu(ppd->ibport_data.rvp.rc_delayed_comp);
611 ppd->ibport_data.pmastats = NULL;
612 }
613
614 /**
615 * qib_init - do the actual initialization sequence on the chip
616 * @dd: the qlogic_ib device
617 * @reinit: reinitializing, so don't allocate new memory
618 *
619 * Do the actual initialization sequence on the chip. This is done
620 * both from the init routine called from the PCI infrastructure, and
621 * when we reset the chip, or detect that it was reset internally,
622 * or it's administratively re-enabled.
623 *
624 * Memory allocation here and in called routines is only done in
625 * the first case (reinit == 0). We have to be careful, because even
626 * without memory allocation, we need to re-write all the chip registers
627 * TIDs, etc. after the reset or enable has completed.
628 */
qib_init(struct qib_devdata * dd,int reinit)629 int qib_init(struct qib_devdata *dd, int reinit)
630 {
631 int ret = 0, pidx, lastfail = 0;
632 u32 portok = 0;
633 unsigned i;
634 struct qib_ctxtdata *rcd;
635 struct qib_pportdata *ppd;
636 unsigned long flags;
637
638 /* Set linkstate to unknown, so we can watch for a transition. */
639 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
640 ppd = dd->pport + pidx;
641 spin_lock_irqsave(&ppd->lflags_lock, flags);
642 ppd->lflags &= ~(QIBL_LINKACTIVE | QIBL_LINKARMED |
643 QIBL_LINKDOWN | QIBL_LINKINIT |
644 QIBL_LINKV);
645 spin_unlock_irqrestore(&ppd->lflags_lock, flags);
646 }
647
648 if (reinit)
649 ret = init_after_reset(dd);
650 else
651 ret = loadtime_init(dd);
652 if (ret)
653 goto done;
654
655 /* Bypass most chip-init, to get to device creation */
656 if (qib_mini_init)
657 return 0;
658
659 ret = dd->f_late_initreg(dd);
660 if (ret)
661 goto done;
662
663 /* dd->rcd can be NULL if early init failed */
664 for (i = 0; dd->rcd && i < dd->first_user_ctxt; ++i) {
665 /*
666 * Set up the (kernel) rcvhdr queue and egr TIDs. If doing
667 * re-init, the simplest way to handle this is to free
668 * existing, and re-allocate.
669 * Need to re-create rest of ctxt 0 ctxtdata as well.
670 */
671 rcd = dd->rcd[i];
672 if (!rcd)
673 continue;
674
675 lastfail = qib_create_rcvhdrq(dd, rcd);
676 if (!lastfail)
677 lastfail = qib_setup_eagerbufs(rcd);
678 if (lastfail)
679 qib_dev_err(dd,
680 "failed to allocate kernel ctxt's rcvhdrq and/or egr bufs\n");
681 }
682
683 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
684 int mtu;
685
686 if (lastfail)
687 ret = lastfail;
688 ppd = dd->pport + pidx;
689 mtu = ib_mtu_enum_to_int(qib_ibmtu);
690 if (mtu == -1) {
691 mtu = QIB_DEFAULT_MTU;
692 qib_ibmtu = 0; /* don't leave invalid value */
693 }
694 /* set max we can ever have for this driver load */
695 ppd->init_ibmaxlen = min(mtu > 2048 ?
696 dd->piosize4k : dd->piosize2k,
697 dd->rcvegrbufsize +
698 (dd->rcvhdrentsize << 2));
699 /*
700 * Have to initialize ibmaxlen, but this will normally
701 * change immediately in qib_set_mtu().
702 */
703 ppd->ibmaxlen = ppd->init_ibmaxlen;
704 qib_set_mtu(ppd, mtu);
705
706 spin_lock_irqsave(&ppd->lflags_lock, flags);
707 ppd->lflags |= QIBL_IB_LINK_DISABLED;
708 spin_unlock_irqrestore(&ppd->lflags_lock, flags);
709
710 lastfail = dd->f_bringup_serdes(ppd);
711 if (lastfail) {
712 qib_devinfo(dd->pcidev,
713 "Failed to bringup IB port %u\n", ppd->port);
714 lastfail = -ENETDOWN;
715 continue;
716 }
717
718 portok++;
719 }
720
721 if (!portok) {
722 /* none of the ports initialized */
723 if (!ret && lastfail)
724 ret = lastfail;
725 else if (!ret)
726 ret = -ENETDOWN;
727 /* but continue on, so we can debug cause */
728 }
729
730 enable_chip(dd);
731
732 init_piobuf_state(dd);
733
734 done:
735 if (!ret) {
736 /* chip is OK for user apps; mark it as initialized */
737 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
738 ppd = dd->pport + pidx;
739 /*
740 * Set status even if port serdes is not initialized
741 * so that diags will work.
742 */
743 *ppd->statusp |= QIB_STATUS_CHIP_PRESENT |
744 QIB_STATUS_INITTED;
745 if (!ppd->link_speed_enabled)
746 continue;
747 if (dd->flags & QIB_HAS_SEND_DMA)
748 ret = qib_setup_sdma(ppd);
749 timer_setup(&ppd->hol_timer, qib_hol_event, 0);
750 ppd->hol_state = QIB_HOL_UP;
751 }
752
753 /* now we can enable all interrupts from the chip */
754 dd->f_set_intr_state(dd, 1);
755
756 /*
757 * Setup to verify we get an interrupt, and fallback
758 * to an alternate if necessary and possible.
759 */
760 mod_timer(&dd->intrchk_timer, jiffies + HZ/2);
761 /* start stats retrieval timer */
762 mod_timer(&dd->stats_timer, jiffies + HZ * ACTIVITY_TIMER);
763 }
764
765 /* if ret is non-zero, we probably should do some cleanup here... */
766 return ret;
767 }
768
769 /*
770 * These next two routines are placeholders in case we don't have per-arch
771 * code for controlling write combining. If explicit control of write
772 * combining is not available, performance will probably be awful.
773 */
774
qib_enable_wc(struct qib_devdata * dd)775 int __attribute__((weak)) qib_enable_wc(struct qib_devdata *dd)
776 {
777 return -EOPNOTSUPP;
778 }
779
qib_disable_wc(struct qib_devdata * dd)780 void __attribute__((weak)) qib_disable_wc(struct qib_devdata *dd)
781 {
782 }
783
qib_lookup(int unit)784 struct qib_devdata *qib_lookup(int unit)
785 {
786 return xa_load(&qib_dev_table, unit);
787 }
788
789 /*
790 * Stop the timers during unit shutdown, or after an error late
791 * in initialization.
792 */
qib_stop_timers(struct qib_devdata * dd)793 static void qib_stop_timers(struct qib_devdata *dd)
794 {
795 struct qib_pportdata *ppd;
796 int pidx;
797
798 if (dd->stats_timer.function)
799 del_timer_sync(&dd->stats_timer);
800 if (dd->intrchk_timer.function)
801 del_timer_sync(&dd->intrchk_timer);
802 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
803 ppd = dd->pport + pidx;
804 if (ppd->hol_timer.function)
805 del_timer_sync(&ppd->hol_timer);
806 if (ppd->led_override_timer.function) {
807 del_timer_sync(&ppd->led_override_timer);
808 atomic_set(&ppd->led_override_timer_active, 0);
809 }
810 if (ppd->symerr_clear_timer.function)
811 del_timer_sync(&ppd->symerr_clear_timer);
812 }
813 }
814
815 /**
816 * qib_shutdown_device - shut down a device
817 * @dd: the qlogic_ib device
818 *
819 * This is called to make the device quiet when we are about to
820 * unload the driver, and also when the device is administratively
821 * disabled. It does not free any data structures.
822 * Everything it does has to be setup again by qib_init(dd, 1)
823 */
qib_shutdown_device(struct qib_devdata * dd)824 static void qib_shutdown_device(struct qib_devdata *dd)
825 {
826 struct qib_pportdata *ppd;
827 unsigned pidx;
828
829 if (dd->flags & QIB_SHUTDOWN)
830 return;
831 dd->flags |= QIB_SHUTDOWN;
832
833 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
834 ppd = dd->pport + pidx;
835
836 spin_lock_irq(&ppd->lflags_lock);
837 ppd->lflags &= ~(QIBL_LINKDOWN | QIBL_LINKINIT |
838 QIBL_LINKARMED | QIBL_LINKACTIVE |
839 QIBL_LINKV);
840 spin_unlock_irq(&ppd->lflags_lock);
841 *ppd->statusp &= ~(QIB_STATUS_IB_CONF | QIB_STATUS_IB_READY);
842 }
843 dd->flags &= ~QIB_INITTED;
844
845 /* mask interrupts, but not errors */
846 dd->f_set_intr_state(dd, 0);
847
848 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
849 ppd = dd->pport + pidx;
850 dd->f_rcvctrl(ppd, QIB_RCVCTRL_TAILUPD_DIS |
851 QIB_RCVCTRL_CTXT_DIS |
852 QIB_RCVCTRL_INTRAVAIL_DIS |
853 QIB_RCVCTRL_PKEY_ENB, -1);
854 /*
855 * Gracefully stop all sends allowing any in progress to
856 * trickle out first.
857 */
858 dd->f_sendctrl(ppd, QIB_SENDCTRL_CLEAR);
859 }
860
861 /*
862 * Enough for anything that's going to trickle out to have actually
863 * done so.
864 */
865 udelay(20);
866
867 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
868 ppd = dd->pport + pidx;
869 dd->f_setextled(ppd, 0); /* make sure LEDs are off */
870
871 if (dd->flags & QIB_HAS_SEND_DMA)
872 qib_teardown_sdma(ppd);
873
874 dd->f_sendctrl(ppd, QIB_SENDCTRL_AVAIL_DIS |
875 QIB_SENDCTRL_SEND_DIS);
876 /*
877 * Clear SerdesEnable.
878 * We can't count on interrupts since we are stopping.
879 */
880 dd->f_quiet_serdes(ppd);
881
882 if (ppd->qib_wq) {
883 destroy_workqueue(ppd->qib_wq);
884 ppd->qib_wq = NULL;
885 }
886 qib_free_pportdata(ppd);
887 }
888
889 }
890
891 /**
892 * qib_free_ctxtdata - free a context's allocated data
893 * @dd: the qlogic_ib device
894 * @rcd: the ctxtdata structure
895 *
896 * free up any allocated data for a context
897 * This should not touch anything that would affect a simultaneous
898 * re-allocation of context data, because it is called after qib_mutex
899 * is released (and can be called from reinit as well).
900 * It should never change any chip state, or global driver state.
901 */
qib_free_ctxtdata(struct qib_devdata * dd,struct qib_ctxtdata * rcd)902 void qib_free_ctxtdata(struct qib_devdata *dd, struct qib_ctxtdata *rcd)
903 {
904 if (!rcd)
905 return;
906
907 if (rcd->rcvhdrq) {
908 dma_free_coherent(&dd->pcidev->dev, rcd->rcvhdrq_size,
909 rcd->rcvhdrq, rcd->rcvhdrq_phys);
910 rcd->rcvhdrq = NULL;
911 if (rcd->rcvhdrtail_kvaddr) {
912 dma_free_coherent(&dd->pcidev->dev, PAGE_SIZE,
913 rcd->rcvhdrtail_kvaddr,
914 rcd->rcvhdrqtailaddr_phys);
915 rcd->rcvhdrtail_kvaddr = NULL;
916 }
917 }
918 if (rcd->rcvegrbuf) {
919 unsigned e;
920
921 for (e = 0; e < rcd->rcvegrbuf_chunks; e++) {
922 void *base = rcd->rcvegrbuf[e];
923 size_t size = rcd->rcvegrbuf_size;
924
925 dma_free_coherent(&dd->pcidev->dev, size,
926 base, rcd->rcvegrbuf_phys[e]);
927 }
928 kfree(rcd->rcvegrbuf);
929 rcd->rcvegrbuf = NULL;
930 kfree(rcd->rcvegrbuf_phys);
931 rcd->rcvegrbuf_phys = NULL;
932 rcd->rcvegrbuf_chunks = 0;
933 }
934
935 kfree(rcd->tid_pg_list);
936 vfree(rcd->user_event_mask);
937 vfree(rcd->subctxt_uregbase);
938 vfree(rcd->subctxt_rcvegrbuf);
939 vfree(rcd->subctxt_rcvhdr_base);
940 #ifdef CONFIG_DEBUG_FS
941 kfree(rcd->opstats);
942 rcd->opstats = NULL;
943 #endif
944 kfree(rcd);
945 }
946
947 /*
948 * Perform a PIO buffer bandwidth write test, to verify proper system
949 * configuration. Even when all the setup calls work, occasionally
950 * BIOS or other issues can prevent write combining from working, or
951 * can cause other bandwidth problems to the chip.
952 *
953 * This test simply writes the same buffer over and over again, and
954 * measures close to the peak bandwidth to the chip (not testing
955 * data bandwidth to the wire). On chips that use an address-based
956 * trigger to send packets to the wire, this is easy. On chips that
957 * use a count to trigger, we want to make sure that the packet doesn't
958 * go out on the wire, or trigger flow control checks.
959 */
qib_verify_pioperf(struct qib_devdata * dd)960 static void qib_verify_pioperf(struct qib_devdata *dd)
961 {
962 u32 pbnum, cnt, lcnt;
963 u32 __iomem *piobuf;
964 u32 *addr;
965 u64 msecs, emsecs;
966
967 piobuf = dd->f_getsendbuf(dd->pport, 0ULL, &pbnum);
968 if (!piobuf) {
969 qib_devinfo(dd->pcidev,
970 "No PIObufs for checking perf, skipping\n");
971 return;
972 }
973
974 /*
975 * Enough to give us a reasonable test, less than piobuf size, and
976 * likely multiple of store buffer length.
977 */
978 cnt = 1024;
979
980 addr = vmalloc(cnt);
981 if (!addr)
982 goto done;
983
984 preempt_disable(); /* we want reasonably accurate elapsed time */
985 msecs = 1 + jiffies_to_msecs(jiffies);
986 for (lcnt = 0; lcnt < 10000U; lcnt++) {
987 /* wait until we cross msec boundary */
988 if (jiffies_to_msecs(jiffies) >= msecs)
989 break;
990 udelay(1);
991 }
992
993 dd->f_set_armlaunch(dd, 0);
994
995 /*
996 * length 0, no dwords actually sent
997 */
998 writeq(0, piobuf);
999 qib_flush_wc();
1000
1001 /*
1002 * This is only roughly accurate, since even with preempt we
1003 * still take interrupts that could take a while. Running for
1004 * >= 5 msec seems to get us "close enough" to accurate values.
1005 */
1006 msecs = jiffies_to_msecs(jiffies);
1007 for (emsecs = lcnt = 0; emsecs <= 5UL; lcnt++) {
1008 qib_pio_copy(piobuf + 64, addr, cnt >> 2);
1009 emsecs = jiffies_to_msecs(jiffies) - msecs;
1010 }
1011
1012 /* 1 GiB/sec, slightly over IB SDR line rate */
1013 if (lcnt < (emsecs * 1024U))
1014 qib_dev_err(dd,
1015 "Performance problem: bandwidth to PIO buffers is only %u MiB/sec\n",
1016 lcnt / (u32) emsecs);
1017
1018 preempt_enable();
1019
1020 vfree(addr);
1021
1022 done:
1023 /* disarm piobuf, so it's available again */
1024 dd->f_sendctrl(dd->pport, QIB_SENDCTRL_DISARM_BUF(pbnum));
1025 qib_sendbuf_done(dd, pbnum);
1026 dd->f_set_armlaunch(dd, 1);
1027 }
1028
qib_free_devdata(struct qib_devdata * dd)1029 void qib_free_devdata(struct qib_devdata *dd)
1030 {
1031 unsigned long flags;
1032
1033 xa_lock_irqsave(&qib_dev_table, flags);
1034 __xa_erase(&qib_dev_table, dd->unit);
1035 xa_unlock_irqrestore(&qib_dev_table, flags);
1036
1037 #ifdef CONFIG_DEBUG_FS
1038 qib_dbg_ibdev_exit(&dd->verbs_dev);
1039 #endif
1040 free_percpu(dd->int_counter);
1041 rvt_dealloc_device(&dd->verbs_dev.rdi);
1042 }
1043
qib_int_counter(struct qib_devdata * dd)1044 u64 qib_int_counter(struct qib_devdata *dd)
1045 {
1046 int cpu;
1047 u64 int_counter = 0;
1048
1049 for_each_possible_cpu(cpu)
1050 int_counter += *per_cpu_ptr(dd->int_counter, cpu);
1051 return int_counter;
1052 }
1053
qib_sps_ints(void)1054 u64 qib_sps_ints(void)
1055 {
1056 unsigned long index, flags;
1057 struct qib_devdata *dd;
1058 u64 sps_ints = 0;
1059
1060 xa_lock_irqsave(&qib_dev_table, flags);
1061 xa_for_each(&qib_dev_table, index, dd) {
1062 sps_ints += qib_int_counter(dd);
1063 }
1064 xa_unlock_irqrestore(&qib_dev_table, flags);
1065 return sps_ints;
1066 }
1067
1068 /*
1069 * Allocate our primary per-unit data structure. Must be done via verbs
1070 * allocator, because the verbs cleanup process both does cleanup and
1071 * free of the data structure.
1072 * "extra" is for chip-specific data.
1073 */
qib_alloc_devdata(struct pci_dev * pdev,size_t extra)1074 struct qib_devdata *qib_alloc_devdata(struct pci_dev *pdev, size_t extra)
1075 {
1076 struct qib_devdata *dd;
1077 int ret, nports;
1078
1079 /* extra is * number of ports */
1080 nports = extra / sizeof(struct qib_pportdata);
1081 dd = (struct qib_devdata *)rvt_alloc_device(sizeof(*dd) + extra,
1082 nports);
1083 if (!dd)
1084 return ERR_PTR(-ENOMEM);
1085
1086 ret = xa_alloc_irq(&qib_dev_table, &dd->unit, dd, xa_limit_32b,
1087 GFP_KERNEL);
1088 if (ret < 0) {
1089 qib_early_err(&pdev->dev,
1090 "Could not allocate unit ID: error %d\n", -ret);
1091 goto bail;
1092 }
1093 rvt_set_ibdev_name(&dd->verbs_dev.rdi, "%s%d", "qib", dd->unit);
1094
1095 dd->int_counter = alloc_percpu(u64);
1096 if (!dd->int_counter) {
1097 ret = -ENOMEM;
1098 qib_early_err(&pdev->dev,
1099 "Could not allocate per-cpu int_counter\n");
1100 goto bail;
1101 }
1102
1103 if (!qib_cpulist_count) {
1104 u32 count = num_online_cpus();
1105
1106 qib_cpulist = bitmap_zalloc(count, GFP_KERNEL);
1107 if (qib_cpulist)
1108 qib_cpulist_count = count;
1109 }
1110 #ifdef CONFIG_DEBUG_FS
1111 qib_dbg_ibdev_init(&dd->verbs_dev);
1112 #endif
1113 return dd;
1114 bail:
1115 if (!list_empty(&dd->list))
1116 list_del_init(&dd->list);
1117 rvt_dealloc_device(&dd->verbs_dev.rdi);
1118 return ERR_PTR(ret);
1119 }
1120
1121 /*
1122 * Called from freeze mode handlers, and from PCI error
1123 * reporting code. Should be paranoid about state of
1124 * system and data structures.
1125 */
qib_disable_after_error(struct qib_devdata * dd)1126 void qib_disable_after_error(struct qib_devdata *dd)
1127 {
1128 if (dd->flags & QIB_INITTED) {
1129 u32 pidx;
1130
1131 dd->flags &= ~QIB_INITTED;
1132 if (dd->pport)
1133 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
1134 struct qib_pportdata *ppd;
1135
1136 ppd = dd->pport + pidx;
1137 if (dd->flags & QIB_PRESENT) {
1138 qib_set_linkstate(ppd,
1139 QIB_IB_LINKDOWN_DISABLE);
1140 dd->f_setextled(ppd, 0);
1141 }
1142 *ppd->statusp &= ~QIB_STATUS_IB_READY;
1143 }
1144 }
1145
1146 /*
1147 * Mark as having had an error for driver, and also
1148 * for /sys and status word mapped to user programs.
1149 * This marks unit as not usable, until reset.
1150 */
1151 if (dd->devstatusp)
1152 *dd->devstatusp |= QIB_STATUS_HWERROR;
1153 }
1154
1155 static void qib_remove_one(struct pci_dev *);
1156 static int qib_init_one(struct pci_dev *, const struct pci_device_id *);
1157 static void qib_shutdown_one(struct pci_dev *);
1158
1159 #define DRIVER_LOAD_MSG "Intel " QIB_DRV_NAME " loaded: "
1160 #define PFX QIB_DRV_NAME ": "
1161
1162 static const struct pci_device_id qib_pci_tbl[] = {
1163 { PCI_DEVICE(PCI_VENDOR_ID_PATHSCALE, PCI_DEVICE_ID_QLOGIC_IB_6120) },
1164 { PCI_DEVICE(PCI_VENDOR_ID_QLOGIC, PCI_DEVICE_ID_QLOGIC_IB_7220) },
1165 { PCI_DEVICE(PCI_VENDOR_ID_QLOGIC, PCI_DEVICE_ID_QLOGIC_IB_7322) },
1166 { 0, }
1167 };
1168
1169 MODULE_DEVICE_TABLE(pci, qib_pci_tbl);
1170
1171 static struct pci_driver qib_driver = {
1172 .name = QIB_DRV_NAME,
1173 .probe = qib_init_one,
1174 .remove = qib_remove_one,
1175 .shutdown = qib_shutdown_one,
1176 .id_table = qib_pci_tbl,
1177 .err_handler = &qib_pci_err_handler,
1178 };
1179
1180 #ifdef CONFIG_INFINIBAND_QIB_DCA
1181
1182 static int qib_notify_dca(struct notifier_block *, unsigned long, void *);
1183 static struct notifier_block dca_notifier = {
1184 .notifier_call = qib_notify_dca,
1185 .next = NULL,
1186 .priority = 0
1187 };
1188
qib_notify_dca_device(struct device * device,void * data)1189 static int qib_notify_dca_device(struct device *device, void *data)
1190 {
1191 struct qib_devdata *dd = dev_get_drvdata(device);
1192 unsigned long event = *(unsigned long *)data;
1193
1194 return dd->f_notify_dca(dd, event);
1195 }
1196
qib_notify_dca(struct notifier_block * nb,unsigned long event,void * p)1197 static int qib_notify_dca(struct notifier_block *nb, unsigned long event,
1198 void *p)
1199 {
1200 int rval;
1201
1202 rval = driver_for_each_device(&qib_driver.driver, NULL,
1203 &event, qib_notify_dca_device);
1204 return rval ? NOTIFY_BAD : NOTIFY_DONE;
1205 }
1206
1207 #endif
1208
1209 /*
1210 * Do all the generic driver unit- and chip-independent memory
1211 * allocation and initialization.
1212 */
qib_ib_init(void)1213 static int __init qib_ib_init(void)
1214 {
1215 int ret;
1216
1217 ret = qib_dev_init();
1218 if (ret)
1219 goto bail;
1220
1221 /*
1222 * These must be called before the driver is registered with
1223 * the PCI subsystem.
1224 */
1225 #ifdef CONFIG_INFINIBAND_QIB_DCA
1226 dca_register_notify(&dca_notifier);
1227 #endif
1228 #ifdef CONFIG_DEBUG_FS
1229 qib_dbg_init();
1230 #endif
1231 ret = pci_register_driver(&qib_driver);
1232 if (ret < 0) {
1233 pr_err("Unable to register driver: error %d\n", -ret);
1234 goto bail_dev;
1235 }
1236
1237 /* not fatal if it doesn't work */
1238 if (qib_init_qibfs())
1239 pr_err("Unable to register ipathfs\n");
1240 goto bail; /* all OK */
1241
1242 bail_dev:
1243 #ifdef CONFIG_INFINIBAND_QIB_DCA
1244 dca_unregister_notify(&dca_notifier);
1245 #endif
1246 #ifdef CONFIG_DEBUG_FS
1247 qib_dbg_exit();
1248 #endif
1249 qib_dev_cleanup();
1250 bail:
1251 return ret;
1252 }
1253
1254 module_init(qib_ib_init);
1255
1256 /*
1257 * Do the non-unit driver cleanup, memory free, etc. at unload.
1258 */
qib_ib_cleanup(void)1259 static void __exit qib_ib_cleanup(void)
1260 {
1261 int ret;
1262
1263 ret = qib_exit_qibfs();
1264 if (ret)
1265 pr_err(
1266 "Unable to cleanup counter filesystem: error %d\n",
1267 -ret);
1268
1269 #ifdef CONFIG_INFINIBAND_QIB_DCA
1270 dca_unregister_notify(&dca_notifier);
1271 #endif
1272 pci_unregister_driver(&qib_driver);
1273 #ifdef CONFIG_DEBUG_FS
1274 qib_dbg_exit();
1275 #endif
1276
1277 qib_cpulist_count = 0;
1278 bitmap_free(qib_cpulist);
1279
1280 WARN_ON(!xa_empty(&qib_dev_table));
1281 qib_dev_cleanup();
1282 }
1283
1284 module_exit(qib_ib_cleanup);
1285
1286 /* this can only be called after a successful initialization */
cleanup_device_data(struct qib_devdata * dd)1287 static void cleanup_device_data(struct qib_devdata *dd)
1288 {
1289 int ctxt;
1290 int pidx;
1291 struct qib_ctxtdata **tmp;
1292 unsigned long flags;
1293
1294 /* users can't do anything more with chip */
1295 for (pidx = 0; pidx < dd->num_pports; ++pidx) {
1296 if (dd->pport[pidx].statusp)
1297 *dd->pport[pidx].statusp &= ~QIB_STATUS_CHIP_PRESENT;
1298
1299 spin_lock(&dd->pport[pidx].cc_shadow_lock);
1300
1301 kfree(dd->pport[pidx].congestion_entries);
1302 dd->pport[pidx].congestion_entries = NULL;
1303 kfree(dd->pport[pidx].ccti_entries);
1304 dd->pport[pidx].ccti_entries = NULL;
1305 kfree(dd->pport[pidx].ccti_entries_shadow);
1306 dd->pport[pidx].ccti_entries_shadow = NULL;
1307 kfree(dd->pport[pidx].congestion_entries_shadow);
1308 dd->pport[pidx].congestion_entries_shadow = NULL;
1309
1310 spin_unlock(&dd->pport[pidx].cc_shadow_lock);
1311 }
1312
1313 qib_disable_wc(dd);
1314
1315 if (dd->pioavailregs_dma) {
1316 dma_free_coherent(&dd->pcidev->dev, PAGE_SIZE,
1317 (void *) dd->pioavailregs_dma,
1318 dd->pioavailregs_phys);
1319 dd->pioavailregs_dma = NULL;
1320 }
1321
1322 if (dd->pageshadow) {
1323 struct page **tmpp = dd->pageshadow;
1324 dma_addr_t *tmpd = dd->physshadow;
1325 int i;
1326
1327 for (ctxt = 0; ctxt < dd->cfgctxts; ctxt++) {
1328 int ctxt_tidbase = ctxt * dd->rcvtidcnt;
1329 int maxtid = ctxt_tidbase + dd->rcvtidcnt;
1330
1331 for (i = ctxt_tidbase; i < maxtid; i++) {
1332 if (!tmpp[i])
1333 continue;
1334 dma_unmap_page(&dd->pcidev->dev, tmpd[i],
1335 PAGE_SIZE, DMA_FROM_DEVICE);
1336 qib_release_user_pages(&tmpp[i], 1);
1337 tmpp[i] = NULL;
1338 }
1339 }
1340
1341 dd->pageshadow = NULL;
1342 vfree(tmpp);
1343 dd->physshadow = NULL;
1344 vfree(tmpd);
1345 }
1346
1347 /*
1348 * Free any resources still in use (usually just kernel contexts)
1349 * at unload; we do for ctxtcnt, because that's what we allocate.
1350 * We acquire lock to be really paranoid that rcd isn't being
1351 * accessed from some interrupt-related code (that should not happen,
1352 * but best to be sure).
1353 */
1354 spin_lock_irqsave(&dd->uctxt_lock, flags);
1355 tmp = dd->rcd;
1356 dd->rcd = NULL;
1357 spin_unlock_irqrestore(&dd->uctxt_lock, flags);
1358 for (ctxt = 0; tmp && ctxt < dd->ctxtcnt; ctxt++) {
1359 struct qib_ctxtdata *rcd = tmp[ctxt];
1360
1361 tmp[ctxt] = NULL; /* debugging paranoia */
1362 qib_free_ctxtdata(dd, rcd);
1363 }
1364 kfree(tmp);
1365 }
1366
1367 /*
1368 * Clean up on unit shutdown, or error during unit load after
1369 * successful initialization.
1370 */
qib_postinit_cleanup(struct qib_devdata * dd)1371 static void qib_postinit_cleanup(struct qib_devdata *dd)
1372 {
1373 /*
1374 * Clean up chip-specific stuff.
1375 * We check for NULL here, because it's outside
1376 * the kregbase check, and we need to call it
1377 * after the free_irq. Thus it's possible that
1378 * the function pointers were never initialized.
1379 */
1380 if (dd->f_cleanup)
1381 dd->f_cleanup(dd);
1382
1383 qib_pcie_ddcleanup(dd);
1384
1385 cleanup_device_data(dd);
1386
1387 qib_free_devdata(dd);
1388 }
1389
qib_init_one(struct pci_dev * pdev,const struct pci_device_id * ent)1390 static int qib_init_one(struct pci_dev *pdev, const struct pci_device_id *ent)
1391 {
1392 int ret, j, pidx, initfail;
1393 struct qib_devdata *dd = NULL;
1394
1395 ret = qib_pcie_init(pdev, ent);
1396 if (ret)
1397 goto bail;
1398
1399 /*
1400 * Do device-specific initialiation, function table setup, dd
1401 * allocation, etc.
1402 */
1403 switch (ent->device) {
1404 case PCI_DEVICE_ID_QLOGIC_IB_6120:
1405 #ifdef CONFIG_PCI_MSI
1406 dd = qib_init_iba6120_funcs(pdev, ent);
1407 #else
1408 qib_early_err(&pdev->dev,
1409 "Intel PCIE device 0x%x cannot work if CONFIG_PCI_MSI is not enabled\n",
1410 ent->device);
1411 dd = ERR_PTR(-ENODEV);
1412 #endif
1413 break;
1414
1415 case PCI_DEVICE_ID_QLOGIC_IB_7220:
1416 dd = qib_init_iba7220_funcs(pdev, ent);
1417 break;
1418
1419 case PCI_DEVICE_ID_QLOGIC_IB_7322:
1420 dd = qib_init_iba7322_funcs(pdev, ent);
1421 break;
1422
1423 default:
1424 qib_early_err(&pdev->dev,
1425 "Failing on unknown Intel deviceid 0x%x\n",
1426 ent->device);
1427 ret = -ENODEV;
1428 }
1429
1430 if (IS_ERR(dd))
1431 ret = PTR_ERR(dd);
1432 if (ret)
1433 goto bail; /* error already printed */
1434
1435 ret = qib_create_workqueues(dd);
1436 if (ret)
1437 goto bail;
1438
1439 /* do the generic initialization */
1440 initfail = qib_init(dd, 0);
1441
1442 ret = qib_register_ib_device(dd);
1443
1444 /*
1445 * Now ready for use. this should be cleared whenever we
1446 * detect a reset, or initiate one. If earlier failure,
1447 * we still create devices, so diags, etc. can be used
1448 * to determine cause of problem.
1449 */
1450 if (!qib_mini_init && !initfail && !ret)
1451 dd->flags |= QIB_INITTED;
1452
1453 j = qib_device_create(dd);
1454 if (j)
1455 qib_dev_err(dd, "Failed to create /dev devices: %d\n", -j);
1456 j = qibfs_add(dd);
1457 if (j)
1458 qib_dev_err(dd, "Failed filesystem setup for counters: %d\n",
1459 -j);
1460
1461 if (qib_mini_init || initfail || ret) {
1462 qib_stop_timers(dd);
1463 flush_workqueue(ib_wq);
1464 for (pidx = 0; pidx < dd->num_pports; ++pidx)
1465 dd->f_quiet_serdes(dd->pport + pidx);
1466 if (qib_mini_init)
1467 goto bail;
1468 if (!j) {
1469 (void) qibfs_remove(dd);
1470 qib_device_remove(dd);
1471 }
1472 if (!ret)
1473 qib_unregister_ib_device(dd);
1474 qib_postinit_cleanup(dd);
1475 if (initfail)
1476 ret = initfail;
1477 goto bail;
1478 }
1479
1480 ret = qib_enable_wc(dd);
1481 if (ret) {
1482 qib_dev_err(dd,
1483 "Write combining not enabled (err %d): performance may be poor\n",
1484 -ret);
1485 ret = 0;
1486 }
1487
1488 qib_verify_pioperf(dd);
1489 bail:
1490 return ret;
1491 }
1492
qib_remove_one(struct pci_dev * pdev)1493 static void qib_remove_one(struct pci_dev *pdev)
1494 {
1495 struct qib_devdata *dd = pci_get_drvdata(pdev);
1496 int ret;
1497
1498 /* unregister from IB core */
1499 qib_unregister_ib_device(dd);
1500
1501 /*
1502 * Disable the IB link, disable interrupts on the device,
1503 * clear dma engines, etc.
1504 */
1505 if (!qib_mini_init)
1506 qib_shutdown_device(dd);
1507
1508 qib_stop_timers(dd);
1509
1510 /* wait until all of our (qsfp) queue_work() calls complete */
1511 flush_workqueue(ib_wq);
1512
1513 ret = qibfs_remove(dd);
1514 if (ret)
1515 qib_dev_err(dd, "Failed counters filesystem cleanup: %d\n",
1516 -ret);
1517
1518 qib_device_remove(dd);
1519
1520 qib_postinit_cleanup(dd);
1521 }
1522
qib_shutdown_one(struct pci_dev * pdev)1523 static void qib_shutdown_one(struct pci_dev *pdev)
1524 {
1525 struct qib_devdata *dd = pci_get_drvdata(pdev);
1526
1527 qib_shutdown_device(dd);
1528 }
1529
1530 /**
1531 * qib_create_rcvhdrq - create a receive header queue
1532 * @dd: the qlogic_ib device
1533 * @rcd: the context data
1534 *
1535 * This must be contiguous memory (from an i/o perspective), and must be
1536 * DMA'able (which means for some systems, it will go through an IOMMU,
1537 * or be forced into a low address range).
1538 */
qib_create_rcvhdrq(struct qib_devdata * dd,struct qib_ctxtdata * rcd)1539 int qib_create_rcvhdrq(struct qib_devdata *dd, struct qib_ctxtdata *rcd)
1540 {
1541 unsigned amt;
1542 int old_node_id;
1543
1544 if (!rcd->rcvhdrq) {
1545 dma_addr_t phys_hdrqtail;
1546
1547 amt = ALIGN(dd->rcvhdrcnt * dd->rcvhdrentsize *
1548 sizeof(u32), PAGE_SIZE);
1549
1550 old_node_id = dev_to_node(&dd->pcidev->dev);
1551 set_dev_node(&dd->pcidev->dev, rcd->node_id);
1552 rcd->rcvhdrq = dma_alloc_coherent(&dd->pcidev->dev, amt,
1553 &rcd->rcvhdrq_phys, GFP_KERNEL);
1554 set_dev_node(&dd->pcidev->dev, old_node_id);
1555
1556 if (!rcd->rcvhdrq) {
1557 qib_dev_err(dd,
1558 "attempt to allocate %d bytes for ctxt %u rcvhdrq failed\n",
1559 amt, rcd->ctxt);
1560 goto bail;
1561 }
1562
1563 if (rcd->ctxt >= dd->first_user_ctxt) {
1564 rcd->user_event_mask = vmalloc_user(PAGE_SIZE);
1565 if (!rcd->user_event_mask)
1566 goto bail_free_hdrq;
1567 }
1568
1569 if (!(dd->flags & QIB_NODMA_RTAIL)) {
1570 set_dev_node(&dd->pcidev->dev, rcd->node_id);
1571 rcd->rcvhdrtail_kvaddr = dma_alloc_coherent(
1572 &dd->pcidev->dev, PAGE_SIZE, &phys_hdrqtail,
1573 GFP_KERNEL);
1574 set_dev_node(&dd->pcidev->dev, old_node_id);
1575 if (!rcd->rcvhdrtail_kvaddr)
1576 goto bail_free;
1577 rcd->rcvhdrqtailaddr_phys = phys_hdrqtail;
1578 }
1579
1580 rcd->rcvhdrq_size = amt;
1581 }
1582
1583 /* clear for security and sanity on each use */
1584 memset(rcd->rcvhdrq, 0, rcd->rcvhdrq_size);
1585 if (rcd->rcvhdrtail_kvaddr)
1586 memset(rcd->rcvhdrtail_kvaddr, 0, PAGE_SIZE);
1587 return 0;
1588
1589 bail_free:
1590 qib_dev_err(dd,
1591 "attempt to allocate 1 page for ctxt %u rcvhdrqtailaddr failed\n",
1592 rcd->ctxt);
1593 vfree(rcd->user_event_mask);
1594 rcd->user_event_mask = NULL;
1595 bail_free_hdrq:
1596 dma_free_coherent(&dd->pcidev->dev, amt, rcd->rcvhdrq,
1597 rcd->rcvhdrq_phys);
1598 rcd->rcvhdrq = NULL;
1599 bail:
1600 return -ENOMEM;
1601 }
1602
1603 /**
1604 * qib_setup_eagerbufs - allocate eager buffers, both kernel and user contexts.
1605 * @rcd: the context we are setting up.
1606 *
1607 * Allocate the eager TID buffers and program them into hip.
1608 * They are no longer completely contiguous, we do multiple allocation
1609 * calls. Otherwise we get the OOM code involved, by asking for too
1610 * much per call, with disastrous results on some kernels.
1611 */
qib_setup_eagerbufs(struct qib_ctxtdata * rcd)1612 int qib_setup_eagerbufs(struct qib_ctxtdata *rcd)
1613 {
1614 struct qib_devdata *dd = rcd->dd;
1615 unsigned e, egrcnt, egrperchunk, chunk, egrsize, egroff;
1616 size_t size;
1617 int old_node_id;
1618
1619 egrcnt = rcd->rcvegrcnt;
1620 egroff = rcd->rcvegr_tid_base;
1621 egrsize = dd->rcvegrbufsize;
1622
1623 chunk = rcd->rcvegrbuf_chunks;
1624 egrperchunk = rcd->rcvegrbufs_perchunk;
1625 size = rcd->rcvegrbuf_size;
1626 if (!rcd->rcvegrbuf) {
1627 rcd->rcvegrbuf =
1628 kcalloc_node(chunk, sizeof(rcd->rcvegrbuf[0]),
1629 GFP_KERNEL, rcd->node_id);
1630 if (!rcd->rcvegrbuf)
1631 goto bail;
1632 }
1633 if (!rcd->rcvegrbuf_phys) {
1634 rcd->rcvegrbuf_phys =
1635 kmalloc_array_node(chunk,
1636 sizeof(rcd->rcvegrbuf_phys[0]),
1637 GFP_KERNEL, rcd->node_id);
1638 if (!rcd->rcvegrbuf_phys)
1639 goto bail_rcvegrbuf;
1640 }
1641 for (e = 0; e < rcd->rcvegrbuf_chunks; e++) {
1642 if (rcd->rcvegrbuf[e])
1643 continue;
1644
1645 old_node_id = dev_to_node(&dd->pcidev->dev);
1646 set_dev_node(&dd->pcidev->dev, rcd->node_id);
1647 rcd->rcvegrbuf[e] =
1648 dma_alloc_coherent(&dd->pcidev->dev, size,
1649 &rcd->rcvegrbuf_phys[e],
1650 GFP_KERNEL);
1651 set_dev_node(&dd->pcidev->dev, old_node_id);
1652 if (!rcd->rcvegrbuf[e])
1653 goto bail_rcvegrbuf_phys;
1654 }
1655
1656 rcd->rcvegr_phys = rcd->rcvegrbuf_phys[0];
1657
1658 for (e = chunk = 0; chunk < rcd->rcvegrbuf_chunks; chunk++) {
1659 dma_addr_t pa = rcd->rcvegrbuf_phys[chunk];
1660 unsigned i;
1661
1662 /* clear for security and sanity on each use */
1663 memset(rcd->rcvegrbuf[chunk], 0, size);
1664
1665 for (i = 0; e < egrcnt && i < egrperchunk; e++, i++) {
1666 dd->f_put_tid(dd, e + egroff +
1667 (u64 __iomem *)
1668 ((char __iomem *)
1669 dd->kregbase +
1670 dd->rcvegrbase),
1671 RCVHQ_RCV_TYPE_EAGER, pa);
1672 pa += egrsize;
1673 }
1674 cond_resched(); /* don't hog the cpu */
1675 }
1676
1677 return 0;
1678
1679 bail_rcvegrbuf_phys:
1680 for (e = 0; e < rcd->rcvegrbuf_chunks && rcd->rcvegrbuf[e]; e++)
1681 dma_free_coherent(&dd->pcidev->dev, size,
1682 rcd->rcvegrbuf[e], rcd->rcvegrbuf_phys[e]);
1683 kfree(rcd->rcvegrbuf_phys);
1684 rcd->rcvegrbuf_phys = NULL;
1685 bail_rcvegrbuf:
1686 kfree(rcd->rcvegrbuf);
1687 rcd->rcvegrbuf = NULL;
1688 bail:
1689 return -ENOMEM;
1690 }
1691
1692 /*
1693 * Note: Changes to this routine should be mirrored
1694 * for the diagnostics routine qib_remap_ioaddr32().
1695 * There is also related code for VL15 buffers in qib_init_7322_variables().
1696 * The teardown code that unmaps is in qib_pcie_ddcleanup()
1697 */
init_chip_wc_pat(struct qib_devdata * dd,u32 vl15buflen)1698 int init_chip_wc_pat(struct qib_devdata *dd, u32 vl15buflen)
1699 {
1700 u64 __iomem *qib_kregbase = NULL;
1701 void __iomem *qib_piobase = NULL;
1702 u64 __iomem *qib_userbase = NULL;
1703 u64 qib_kreglen;
1704 u64 qib_pio2koffset = dd->piobufbase & 0xffffffff;
1705 u64 qib_pio4koffset = dd->piobufbase >> 32;
1706 u64 qib_pio2klen = dd->piobcnt2k * dd->palign;
1707 u64 qib_pio4klen = dd->piobcnt4k * dd->align4k;
1708 u64 qib_physaddr = dd->physaddr;
1709 u64 qib_piolen;
1710 u64 qib_userlen = 0;
1711
1712 /*
1713 * Free the old mapping because the kernel will try to reuse the
1714 * old mapping and not create a new mapping with the
1715 * write combining attribute.
1716 */
1717 iounmap(dd->kregbase);
1718 dd->kregbase = NULL;
1719
1720 /*
1721 * Assumes chip address space looks like:
1722 * - kregs + sregs + cregs + uregs (in any order)
1723 * - piobufs (2K and 4K bufs in either order)
1724 * or:
1725 * - kregs + sregs + cregs (in any order)
1726 * - piobufs (2K and 4K bufs in either order)
1727 * - uregs
1728 */
1729 if (dd->piobcnt4k == 0) {
1730 qib_kreglen = qib_pio2koffset;
1731 qib_piolen = qib_pio2klen;
1732 } else if (qib_pio2koffset < qib_pio4koffset) {
1733 qib_kreglen = qib_pio2koffset;
1734 qib_piolen = qib_pio4koffset + qib_pio4klen - qib_kreglen;
1735 } else {
1736 qib_kreglen = qib_pio4koffset;
1737 qib_piolen = qib_pio2koffset + qib_pio2klen - qib_kreglen;
1738 }
1739 qib_piolen += vl15buflen;
1740 /* Map just the configured ports (not all hw ports) */
1741 if (dd->uregbase > qib_kreglen)
1742 qib_userlen = dd->ureg_align * dd->cfgctxts;
1743
1744 /* Sanity checks passed, now create the new mappings */
1745 qib_kregbase = ioremap(qib_physaddr, qib_kreglen);
1746 if (!qib_kregbase)
1747 goto bail;
1748
1749 qib_piobase = ioremap_wc(qib_physaddr + qib_kreglen, qib_piolen);
1750 if (!qib_piobase)
1751 goto bail_kregbase;
1752
1753 if (qib_userlen) {
1754 qib_userbase = ioremap(qib_physaddr + dd->uregbase,
1755 qib_userlen);
1756 if (!qib_userbase)
1757 goto bail_piobase;
1758 }
1759
1760 dd->kregbase = qib_kregbase;
1761 dd->kregend = (u64 __iomem *)
1762 ((char __iomem *) qib_kregbase + qib_kreglen);
1763 dd->piobase = qib_piobase;
1764 dd->pio2kbase = (void __iomem *)
1765 (((char __iomem *) dd->piobase) +
1766 qib_pio2koffset - qib_kreglen);
1767 if (dd->piobcnt4k)
1768 dd->pio4kbase = (void __iomem *)
1769 (((char __iomem *) dd->piobase) +
1770 qib_pio4koffset - qib_kreglen);
1771 if (qib_userlen)
1772 /* ureg will now be accessed relative to dd->userbase */
1773 dd->userbase = qib_userbase;
1774 return 0;
1775
1776 bail_piobase:
1777 iounmap(qib_piobase);
1778 bail_kregbase:
1779 iounmap(qib_kregbase);
1780 bail:
1781 return -ENOMEM;
1782 }
1783