net: move procfs code to net/core/net-procfs.c
[linux/fpc-iii.git] / drivers / infiniband / hw / qib / qib_tx.c
blob31d3561400a49f6056eb6be5c082b05cc0edb0e4
1 /*
2 * Copyright (c) 2008, 2009, 2010 QLogic Corporation. All rights reserved.
4 * This software is available to you under a choice of one of two
5 * licenses. You may choose to be licensed under the terms of the GNU
6 * General Public License (GPL) Version 2, available from the file
7 * COPYING in the main directory of this source tree, or the
8 * OpenIB.org BSD license below:
10 * Redistribution and use in source and binary forms, with or
11 * without modification, are permitted provided that the following
12 * conditions are met:
14 * - Redistributions of source code must retain the above
15 * copyright notice, this list of conditions and the following
16 * disclaimer.
18 * - Redistributions in binary form must reproduce the above
19 * copyright notice, this list of conditions and the following
20 * disclaimer in the documentation and/or other materials
21 * provided with the distribution.
23 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
24 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
25 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
26 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
27 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
28 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
29 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
30 * SOFTWARE.
33 #include <linux/spinlock.h>
34 #include <linux/pci.h>
35 #include <linux/io.h>
36 #include <linux/delay.h>
37 #include <linux/netdevice.h>
38 #include <linux/vmalloc.h>
39 #include <linux/moduleparam.h>
41 #include "qib.h"
43 static unsigned qib_hol_timeout_ms = 3000;
44 module_param_named(hol_timeout_ms, qib_hol_timeout_ms, uint, S_IRUGO);
45 MODULE_PARM_DESC(hol_timeout_ms,
46 "duration of user app suspension after link failure");
48 unsigned qib_sdma_fetch_arb = 1;
49 module_param_named(fetch_arb, qib_sdma_fetch_arb, uint, S_IRUGO);
50 MODULE_PARM_DESC(fetch_arb, "IBA7220: change SDMA descriptor arbitration");
52 /**
53 * qib_disarm_piobufs - cancel a range of PIO buffers
54 * @dd: the qlogic_ib device
55 * @first: the first PIO buffer to cancel
56 * @cnt: the number of PIO buffers to cancel
58 * Cancel a range of PIO buffers. Used at user process close,
59 * in case it died while writing to a PIO buffer.
61 void qib_disarm_piobufs(struct qib_devdata *dd, unsigned first, unsigned cnt)
63 unsigned long flags;
64 unsigned i;
65 unsigned last;
67 last = first + cnt;
68 spin_lock_irqsave(&dd->pioavail_lock, flags);
69 for (i = first; i < last; i++) {
70 __clear_bit(i, dd->pio_need_disarm);
71 dd->f_sendctrl(dd->pport, QIB_SENDCTRL_DISARM_BUF(i));
73 spin_unlock_irqrestore(&dd->pioavail_lock, flags);
77 * This is called by a user process when it sees the DISARM_BUFS event
78 * bit is set.
80 int qib_disarm_piobufs_ifneeded(struct qib_ctxtdata *rcd)
82 struct qib_devdata *dd = rcd->dd;
83 unsigned i;
84 unsigned last;
85 unsigned n = 0;
87 last = rcd->pio_base + rcd->piocnt;
89 * Don't need uctxt_lock here, since user has called in to us.
90 * Clear at start in case more interrupts set bits while we
91 * are disarming
93 if (rcd->user_event_mask) {
95 * subctxt_cnt is 0 if not shared, so do base
96 * separately, first, then remaining subctxt, if any
98 clear_bit(_QIB_EVENT_DISARM_BUFS_BIT, &rcd->user_event_mask[0]);
99 for (i = 1; i < rcd->subctxt_cnt; i++)
100 clear_bit(_QIB_EVENT_DISARM_BUFS_BIT,
101 &rcd->user_event_mask[i]);
103 spin_lock_irq(&dd->pioavail_lock);
104 for (i = rcd->pio_base; i < last; i++) {
105 if (__test_and_clear_bit(i, dd->pio_need_disarm)) {
106 n++;
107 dd->f_sendctrl(rcd->ppd, QIB_SENDCTRL_DISARM_BUF(i));
110 spin_unlock_irq(&dd->pioavail_lock);
111 return 0;
114 static struct qib_pportdata *is_sdma_buf(struct qib_devdata *dd, unsigned i)
116 struct qib_pportdata *ppd;
117 unsigned pidx;
119 for (pidx = 0; pidx < dd->num_pports; pidx++) {
120 ppd = dd->pport + pidx;
121 if (i >= ppd->sdma_state.first_sendbuf &&
122 i < ppd->sdma_state.last_sendbuf)
123 return ppd;
125 return NULL;
129 * Return true if send buffer is being used by a user context.
130 * Sets _QIB_EVENT_DISARM_BUFS_BIT in user_event_mask as a side effect
132 static int find_ctxt(struct qib_devdata *dd, unsigned bufn)
134 struct qib_ctxtdata *rcd;
135 unsigned ctxt;
136 int ret = 0;
138 spin_lock(&dd->uctxt_lock);
139 for (ctxt = dd->first_user_ctxt; ctxt < dd->cfgctxts; ctxt++) {
140 rcd = dd->rcd[ctxt];
141 if (!rcd || bufn < rcd->pio_base ||
142 bufn >= rcd->pio_base + rcd->piocnt)
143 continue;
144 if (rcd->user_event_mask) {
145 int i;
147 * subctxt_cnt is 0 if not shared, so do base
148 * separately, first, then remaining subctxt, if any
150 set_bit(_QIB_EVENT_DISARM_BUFS_BIT,
151 &rcd->user_event_mask[0]);
152 for (i = 1; i < rcd->subctxt_cnt; i++)
153 set_bit(_QIB_EVENT_DISARM_BUFS_BIT,
154 &rcd->user_event_mask[i]);
156 ret = 1;
157 break;
159 spin_unlock(&dd->uctxt_lock);
161 return ret;
165 * Disarm a set of send buffers. If the buffer might be actively being
166 * written to, mark the buffer to be disarmed later when it is not being
167 * written to.
169 * This should only be called from the IRQ error handler.
171 void qib_disarm_piobufs_set(struct qib_devdata *dd, unsigned long *mask,
172 unsigned cnt)
174 struct qib_pportdata *ppd, *pppd[QIB_MAX_IB_PORTS];
175 unsigned i;
176 unsigned long flags;
178 for (i = 0; i < dd->num_pports; i++)
179 pppd[i] = NULL;
181 for (i = 0; i < cnt; i++) {
182 int which;
183 if (!test_bit(i, mask))
184 continue;
186 * If the buffer is owned by the DMA hardware,
187 * reset the DMA engine.
189 ppd = is_sdma_buf(dd, i);
190 if (ppd) {
191 pppd[ppd->port] = ppd;
192 continue;
195 * If the kernel is writing the buffer or the buffer is
196 * owned by a user process, we can't clear it yet.
198 spin_lock_irqsave(&dd->pioavail_lock, flags);
199 if (test_bit(i, dd->pio_writing) ||
200 (!test_bit(i << 1, dd->pioavailkernel) &&
201 find_ctxt(dd, i))) {
202 __set_bit(i, dd->pio_need_disarm);
203 which = 0;
204 } else {
205 which = 1;
206 dd->f_sendctrl(dd->pport, QIB_SENDCTRL_DISARM_BUF(i));
208 spin_unlock_irqrestore(&dd->pioavail_lock, flags);
211 /* do cancel_sends once per port that had sdma piobufs in error */
212 for (i = 0; i < dd->num_pports; i++)
213 if (pppd[i])
214 qib_cancel_sends(pppd[i]);
218 * update_send_bufs - update shadow copy of the PIO availability map
219 * @dd: the qlogic_ib device
221 * called whenever our local copy indicates we have run out of send buffers
223 static void update_send_bufs(struct qib_devdata *dd)
225 unsigned long flags;
226 unsigned i;
227 const unsigned piobregs = dd->pioavregs;
230 * If the generation (check) bits have changed, then we update the
231 * busy bit for the corresponding PIO buffer. This algorithm will
232 * modify positions to the value they already have in some cases
233 * (i.e., no change), but it's faster than changing only the bits
234 * that have changed.
236 * We would like to do this atomicly, to avoid spinlocks in the
237 * critical send path, but that's not really possible, given the
238 * type of changes, and that this routine could be called on
239 * multiple cpu's simultaneously, so we lock in this routine only,
240 * to avoid conflicting updates; all we change is the shadow, and
241 * it's a single 64 bit memory location, so by definition the update
242 * is atomic in terms of what other cpu's can see in testing the
243 * bits. The spin_lock overhead isn't too bad, since it only
244 * happens when all buffers are in use, so only cpu overhead, not
245 * latency or bandwidth is affected.
247 if (!dd->pioavailregs_dma)
248 return;
249 spin_lock_irqsave(&dd->pioavail_lock, flags);
250 for (i = 0; i < piobregs; i++) {
251 u64 pchbusy, pchg, piov, pnew;
253 piov = le64_to_cpu(dd->pioavailregs_dma[i]);
254 pchg = dd->pioavailkernel[i] &
255 ~(dd->pioavailshadow[i] ^ piov);
256 pchbusy = pchg << QLOGIC_IB_SENDPIOAVAIL_BUSY_SHIFT;
257 if (pchg && (pchbusy & dd->pioavailshadow[i])) {
258 pnew = dd->pioavailshadow[i] & ~pchbusy;
259 pnew |= piov & pchbusy;
260 dd->pioavailshadow[i] = pnew;
263 spin_unlock_irqrestore(&dd->pioavail_lock, flags);
267 * Debugging code and stats updates if no pio buffers available.
269 static noinline void no_send_bufs(struct qib_devdata *dd)
271 dd->upd_pio_shadow = 1;
273 /* not atomic, but if we lose a stat count in a while, that's OK */
274 qib_stats.sps_nopiobufs++;
278 * Common code for normal driver send buffer allocation, and reserved
279 * allocation.
281 * Do appropriate marking as busy, etc.
282 * Returns buffer pointer if one is found, otherwise NULL.
284 u32 __iomem *qib_getsendbuf_range(struct qib_devdata *dd, u32 *pbufnum,
285 u32 first, u32 last)
287 unsigned i, j, updated = 0;
288 unsigned nbufs;
289 unsigned long flags;
290 unsigned long *shadow = dd->pioavailshadow;
291 u32 __iomem *buf;
293 if (!(dd->flags & QIB_PRESENT))
294 return NULL;
296 nbufs = last - first + 1; /* number in range to check */
297 if (dd->upd_pio_shadow) {
298 update_shadow:
300 * Minor optimization. If we had no buffers on last call,
301 * start out by doing the update; continue and do scan even
302 * if no buffers were updated, to be paranoid.
304 update_send_bufs(dd);
305 updated++;
307 i = first;
309 * While test_and_set_bit() is atomic, we do that and then the
310 * change_bit(), and the pair is not. See if this is the cause
311 * of the remaining armlaunch errors.
313 spin_lock_irqsave(&dd->pioavail_lock, flags);
314 if (dd->last_pio >= first && dd->last_pio <= last)
315 i = dd->last_pio + 1;
316 if (!first)
317 /* adjust to min possible */
318 nbufs = last - dd->min_kernel_pio + 1;
319 for (j = 0; j < nbufs; j++, i++) {
320 if (i > last)
321 i = !first ? dd->min_kernel_pio : first;
322 if (__test_and_set_bit((2 * i) + 1, shadow))
323 continue;
324 /* flip generation bit */
325 __change_bit(2 * i, shadow);
326 /* remember that the buffer can be written to now */
327 __set_bit(i, dd->pio_writing);
328 if (!first && first != last) /* first == last on VL15, avoid */
329 dd->last_pio = i;
330 break;
332 spin_unlock_irqrestore(&dd->pioavail_lock, flags);
334 if (j == nbufs) {
335 if (!updated)
337 * First time through; shadow exhausted, but may be
338 * buffers available, try an update and then rescan.
340 goto update_shadow;
341 no_send_bufs(dd);
342 buf = NULL;
343 } else {
344 if (i < dd->piobcnt2k)
345 buf = (u32 __iomem *)(dd->pio2kbase +
346 i * dd->palign);
347 else if (i < dd->piobcnt2k + dd->piobcnt4k || !dd->piovl15base)
348 buf = (u32 __iomem *)(dd->pio4kbase +
349 (i - dd->piobcnt2k) * dd->align4k);
350 else
351 buf = (u32 __iomem *)(dd->piovl15base +
352 (i - (dd->piobcnt2k + dd->piobcnt4k)) *
353 dd->align4k);
354 if (pbufnum)
355 *pbufnum = i;
356 dd->upd_pio_shadow = 0;
359 return buf;
363 * Record that the caller is finished writing to the buffer so we don't
364 * disarm it while it is being written and disarm it now if needed.
366 void qib_sendbuf_done(struct qib_devdata *dd, unsigned n)
368 unsigned long flags;
370 spin_lock_irqsave(&dd->pioavail_lock, flags);
371 __clear_bit(n, dd->pio_writing);
372 if (__test_and_clear_bit(n, dd->pio_need_disarm))
373 dd->f_sendctrl(dd->pport, QIB_SENDCTRL_DISARM_BUF(n));
374 spin_unlock_irqrestore(&dd->pioavail_lock, flags);
378 * qib_chg_pioavailkernel - change which send buffers are available for kernel
379 * @dd: the qlogic_ib device
380 * @start: the starting send buffer number
381 * @len: the number of send buffers
382 * @avail: true if the buffers are available for kernel use, false otherwise
384 void qib_chg_pioavailkernel(struct qib_devdata *dd, unsigned start,
385 unsigned len, u32 avail, struct qib_ctxtdata *rcd)
387 unsigned long flags;
388 unsigned end;
389 unsigned ostart = start;
391 /* There are two bits per send buffer (busy and generation) */
392 start *= 2;
393 end = start + len * 2;
395 spin_lock_irqsave(&dd->pioavail_lock, flags);
396 /* Set or clear the busy bit in the shadow. */
397 while (start < end) {
398 if (avail) {
399 unsigned long dma;
400 int i;
403 * The BUSY bit will never be set, because we disarm
404 * the user buffers before we hand them back to the
405 * kernel. We do have to make sure the generation
406 * bit is set correctly in shadow, since it could
407 * have changed many times while allocated to user.
408 * We can't use the bitmap functions on the full
409 * dma array because it is always little-endian, so
410 * we have to flip to host-order first.
411 * BITS_PER_LONG is slightly wrong, since it's
412 * always 64 bits per register in chip...
413 * We only work on 64 bit kernels, so that's OK.
415 i = start / BITS_PER_LONG;
416 __clear_bit(QLOGIC_IB_SENDPIOAVAIL_BUSY_SHIFT + start,
417 dd->pioavailshadow);
418 dma = (unsigned long)
419 le64_to_cpu(dd->pioavailregs_dma[i]);
420 if (test_bit((QLOGIC_IB_SENDPIOAVAIL_CHECK_SHIFT +
421 start) % BITS_PER_LONG, &dma))
422 __set_bit(QLOGIC_IB_SENDPIOAVAIL_CHECK_SHIFT +
423 start, dd->pioavailshadow);
424 else
425 __clear_bit(QLOGIC_IB_SENDPIOAVAIL_CHECK_SHIFT
426 + start, dd->pioavailshadow);
427 __set_bit(start, dd->pioavailkernel);
428 if ((start >> 1) < dd->min_kernel_pio)
429 dd->min_kernel_pio = start >> 1;
430 } else {
431 __set_bit(start + QLOGIC_IB_SENDPIOAVAIL_BUSY_SHIFT,
432 dd->pioavailshadow);
433 __clear_bit(start, dd->pioavailkernel);
434 if ((start >> 1) > dd->min_kernel_pio)
435 dd->min_kernel_pio = start >> 1;
437 start += 2;
440 if (dd->min_kernel_pio > 0 && dd->last_pio < dd->min_kernel_pio - 1)
441 dd->last_pio = dd->min_kernel_pio - 1;
442 spin_unlock_irqrestore(&dd->pioavail_lock, flags);
444 dd->f_txchk_change(dd, ostart, len, avail, rcd);
448 * Flush all sends that might be in the ready to send state, as well as any
449 * that are in the process of being sent. Used whenever we need to be
450 * sure the send side is idle. Cleans up all buffer state by canceling
451 * all pio buffers, and issuing an abort, which cleans up anything in the
452 * launch fifo. The cancel is superfluous on some chip versions, but
453 * it's safer to always do it.
454 * PIOAvail bits are updated by the chip as if a normal send had happened.
456 void qib_cancel_sends(struct qib_pportdata *ppd)
458 struct qib_devdata *dd = ppd->dd;
459 struct qib_ctxtdata *rcd;
460 unsigned long flags;
461 unsigned ctxt;
462 unsigned i;
463 unsigned last;
466 * Tell PSM to disarm buffers again before trying to reuse them.
467 * We need to be sure the rcd doesn't change out from under us
468 * while we do so. We hold the two locks sequentially. We might
469 * needlessly set some need_disarm bits as a result, if the
470 * context is closed after we release the uctxt_lock, but that's
471 * fairly benign, and safer than nesting the locks.
473 for (ctxt = dd->first_user_ctxt; ctxt < dd->cfgctxts; ctxt++) {
474 spin_lock_irqsave(&dd->uctxt_lock, flags);
475 rcd = dd->rcd[ctxt];
476 if (rcd && rcd->ppd == ppd) {
477 last = rcd->pio_base + rcd->piocnt;
478 if (rcd->user_event_mask) {
480 * subctxt_cnt is 0 if not shared, so do base
481 * separately, first, then remaining subctxt,
482 * if any
484 set_bit(_QIB_EVENT_DISARM_BUFS_BIT,
485 &rcd->user_event_mask[0]);
486 for (i = 1; i < rcd->subctxt_cnt; i++)
487 set_bit(_QIB_EVENT_DISARM_BUFS_BIT,
488 &rcd->user_event_mask[i]);
490 i = rcd->pio_base;
491 spin_unlock_irqrestore(&dd->uctxt_lock, flags);
492 spin_lock_irqsave(&dd->pioavail_lock, flags);
493 for (; i < last; i++)
494 __set_bit(i, dd->pio_need_disarm);
495 spin_unlock_irqrestore(&dd->pioavail_lock, flags);
496 } else
497 spin_unlock_irqrestore(&dd->uctxt_lock, flags);
500 if (!(dd->flags & QIB_HAS_SEND_DMA))
501 dd->f_sendctrl(ppd, QIB_SENDCTRL_DISARM_ALL |
502 QIB_SENDCTRL_FLUSH);
506 * Force an update of in-memory copy of the pioavail registers, when
507 * needed for any of a variety of reasons.
508 * If already off, this routine is a nop, on the assumption that the
509 * caller (or set of callers) will "do the right thing".
510 * This is a per-device operation, so just the first port.
512 void qib_force_pio_avail_update(struct qib_devdata *dd)
514 dd->f_sendctrl(dd->pport, QIB_SENDCTRL_AVAIL_BLIP);
517 void qib_hol_down(struct qib_pportdata *ppd)
520 * Cancel sends when the link goes DOWN so that we aren't doing it
521 * at INIT when we might be trying to send SMI packets.
523 if (!(ppd->lflags & QIBL_IB_AUTONEG_INPROG))
524 qib_cancel_sends(ppd);
528 * Link is at INIT.
529 * We start the HoL timer so we can detect stuck packets blocking SMP replies.
530 * Timer may already be running, so use mod_timer, not add_timer.
532 void qib_hol_init(struct qib_pportdata *ppd)
534 if (ppd->hol_state != QIB_HOL_INIT) {
535 ppd->hol_state = QIB_HOL_INIT;
536 mod_timer(&ppd->hol_timer,
537 jiffies + msecs_to_jiffies(qib_hol_timeout_ms));
542 * Link is up, continue any user processes, and ensure timer
543 * is a nop, if running. Let timer keep running, if set; it
544 * will nop when it sees the link is up.
546 void qib_hol_up(struct qib_pportdata *ppd)
548 ppd->hol_state = QIB_HOL_UP;
552 * This is only called via the timer.
554 void qib_hol_event(unsigned long opaque)
556 struct qib_pportdata *ppd = (struct qib_pportdata *)opaque;
558 /* If hardware error, etc, skip. */
559 if (!(ppd->dd->flags & QIB_INITTED))
560 return;
562 if (ppd->hol_state != QIB_HOL_UP) {
564 * Try to flush sends in case a stuck packet is blocking
565 * SMP replies.
567 qib_hol_down(ppd);
568 mod_timer(&ppd->hol_timer,
569 jiffies + msecs_to_jiffies(qib_hol_timeout_ms));