2 * Copyright (c) 2006, 2007 QLogic Corporation. All rights reserved.
3 * Copyright (c) 2003, 2004, 2005, 2006 PathScale, Inc. All rights reserved.
5 * This software is available to you under a choice of one of two
6 * licenses. You may choose to be licensed under the terms of the GNU
7 * General Public License (GPL) Version 2, available from the file
8 * COPYING in the main directory of this source tree, or the
9 * OpenIB.org BSD license below:
11 * Redistribution and use in source and binary forms, with or
12 * without modification, are permitted provided that the following
15 * - Redistributions of source code must retain the above
16 * copyright notice, this list of conditions and the following
19 * - Redistributions in binary form must reproduce the above
20 * copyright notice, this list of conditions and the following
21 * disclaimer in the documentation and/or other materials
22 * provided with the distribution.
24 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
25 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
26 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
27 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
28 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
29 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
30 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
34 #include <linux/pci.h>
35 #include <linux/poll.h>
36 #include <linux/cdev.h>
37 #include <linux/swap.h>
38 #include <linux/vmalloc.h>
39 #include <asm/pgtable.h>
41 #include "ipath_kernel.h"
42 #include "ipath_common.h"
44 static int ipath_open(struct inode *, struct file *);
45 static int ipath_close(struct inode *, struct file *);
46 static ssize_t ipath_write(struct file *, const char __user *, size_t,
48 static unsigned int ipath_poll(struct file *, struct poll_table_struct *);
49 static int ipath_mmap(struct file *, struct vm_area_struct *);
51 static const struct file_operations ipath_file_ops = {
55 .release = ipath_close,
61 * Convert kernel virtual addresses to physical addresses so they don't
62 * potentially conflict with the chip addresses used as mmap offsets.
63 * It doesn't really matter what mmap offset we use as long as we can
64 * interpret it correctly.
66 static u64 cvt_kvaddr(void *p)
71 page = vmalloc_to_page(p);
73 paddr = page_to_pfn(page) << PAGE_SHIFT;
78 static int ipath_get_base_info(struct file *fp,
79 void __user *ubase, size_t ubase_size)
81 struct ipath_portdata *pd = port_fp(fp);
83 struct ipath_base_info *kinfo = NULL;
84 struct ipath_devdata *dd = pd->port_dd;
89 subport_cnt = pd->port_subport_cnt;
96 master = !subport_fp(fp);
100 /* If port sharing is not requested, allow the old size structure */
102 sz -= 7 * sizeof(u64);
103 if (ubase_size < sz) {
105 "Base size %zu, need %zu (version mismatch?)\n",
111 kinfo = kzalloc(sizeof(*kinfo), GFP_KERNEL);
117 ret = dd->ipath_f_get_base_info(pd, kinfo);
121 kinfo->spi_rcvhdr_cnt = dd->ipath_rcvhdrcnt;
122 kinfo->spi_rcvhdrent_size = dd->ipath_rcvhdrentsize;
123 kinfo->spi_tidegrcnt = dd->ipath_rcvegrcnt;
124 kinfo->spi_rcv_egrbufsize = dd->ipath_rcvegrbufsize;
126 * have to mmap whole thing
128 kinfo->spi_rcv_egrbuftotlen =
129 pd->port_rcvegrbuf_chunks * pd->port_rcvegrbuf_size;
130 kinfo->spi_rcv_egrperchunk = pd->port_rcvegrbufs_perchunk;
131 kinfo->spi_rcv_egrchunksize = kinfo->spi_rcv_egrbuftotlen /
132 pd->port_rcvegrbuf_chunks;
133 kinfo->spi_tidcnt = dd->ipath_rcvtidcnt / subport_cnt;
135 kinfo->spi_tidcnt += dd->ipath_rcvtidcnt % subport_cnt;
137 * for this use, may be ipath_cfgports summed over all chips that
138 * are are configured and present
140 kinfo->spi_nports = dd->ipath_cfgports;
141 /* unit (chip/board) our port is on */
142 kinfo->spi_unit = dd->ipath_unit;
143 /* for now, only a single page */
144 kinfo->spi_tid_maxsize = PAGE_SIZE;
147 * Doing this per port, and based on the skip value, etc. This has
148 * to be the actual buffer size, since the protocol code treats it
151 * These have to be set to user addresses in the user code via mmap.
152 * These values are used on return to user code for the mmap target
153 * addresses only. For 32 bit, same 44 bit address problem, so use
154 * the physical address, not virtual. Before 2.6.11, using the
155 * page_address() macro worked, but in 2.6.11, even that returns the
156 * full 64 bit address (upper bits all 1's). So far, using the
157 * physical addresses (or chip offsets, for chip mapping) works, but
158 * no doubt some future kernel release will change that, and we'll be
159 * on to yet another method of dealing with this.
161 kinfo->spi_rcvhdr_base = (u64) pd->port_rcvhdrq_phys;
162 kinfo->spi_rcvhdr_tailaddr = (u64) pd->port_rcvhdrqtailaddr_phys;
163 kinfo->spi_rcv_egrbufs = (u64) pd->port_rcvegr_phys;
164 kinfo->spi_pioavailaddr = (u64) dd->ipath_pioavailregs_phys;
165 kinfo->spi_status = (u64) kinfo->spi_pioavailaddr +
166 (void *) dd->ipath_statusp -
167 (void *) dd->ipath_pioavailregs_dma;
169 kinfo->spi_piocnt = dd->ipath_pbufsport;
170 kinfo->spi_piobufbase = (u64) pd->port_piobufs;
171 kinfo->__spi_uregbase = (u64) dd->ipath_uregbase +
172 dd->ipath_palign * pd->port_port;
174 kinfo->spi_piocnt = (dd->ipath_pbufsport / subport_cnt) +
175 (dd->ipath_pbufsport % subport_cnt);
176 /* Master's PIO buffers are after all the slave's */
177 kinfo->spi_piobufbase = (u64) pd->port_piobufs +
179 (dd->ipath_pbufsport - kinfo->spi_piocnt);
181 unsigned slave = subport_fp(fp) - 1;
183 kinfo->spi_piocnt = dd->ipath_pbufsport / subport_cnt;
184 kinfo->spi_piobufbase = (u64) pd->port_piobufs +
185 dd->ipath_palign * kinfo->spi_piocnt * slave;
188 kinfo->spi_port_uregbase = (u64) dd->ipath_uregbase +
189 dd->ipath_palign * pd->port_port;
190 kinfo->spi_port_rcvegrbuf = kinfo->spi_rcv_egrbufs;
191 kinfo->spi_port_rcvhdr_base = kinfo->spi_rcvhdr_base;
192 kinfo->spi_port_rcvhdr_tailaddr = kinfo->spi_rcvhdr_tailaddr;
194 kinfo->__spi_uregbase = cvt_kvaddr(pd->subport_uregbase +
195 PAGE_SIZE * subport_fp(fp));
197 kinfo->spi_rcvhdr_base = cvt_kvaddr(pd->subport_rcvhdr_base +
198 pd->port_rcvhdrq_size * subport_fp(fp));
199 kinfo->spi_rcvhdr_tailaddr = 0;
200 kinfo->spi_rcv_egrbufs = cvt_kvaddr(pd->subport_rcvegrbuf +
201 pd->port_rcvegrbuf_chunks * pd->port_rcvegrbuf_size *
204 kinfo->spi_subport_uregbase =
205 cvt_kvaddr(pd->subport_uregbase);
206 kinfo->spi_subport_rcvegrbuf =
207 cvt_kvaddr(pd->subport_rcvegrbuf);
208 kinfo->spi_subport_rcvhdr_base =
209 cvt_kvaddr(pd->subport_rcvhdr_base);
210 ipath_cdbg(PROC, "port %u flags %x %llx %llx %llx\n",
211 kinfo->spi_port, kinfo->spi_runtime_flags,
212 (unsigned long long) kinfo->spi_subport_uregbase,
213 (unsigned long long) kinfo->spi_subport_rcvegrbuf,
214 (unsigned long long) kinfo->spi_subport_rcvhdr_base);
217 kinfo->spi_pioindex = (kinfo->spi_piobufbase - dd->ipath_piobufbase) /
219 kinfo->spi_pioalign = dd->ipath_palign;
221 kinfo->spi_qpair = IPATH_KD_QP;
222 kinfo->spi_piosize = dd->ipath_ibmaxlen;
223 kinfo->spi_mtu = dd->ipath_ibmaxlen; /* maxlen, not ibmtu */
224 kinfo->spi_port = pd->port_port;
225 kinfo->spi_subport = subport_fp(fp);
226 kinfo->spi_sw_version = IPATH_KERN_SWVERSION;
227 kinfo->spi_hw_version = dd->ipath_revision;
230 kinfo->spi_runtime_flags |= IPATH_RUNTIME_MASTER;
233 sz = (ubase_size < sizeof(*kinfo)) ? ubase_size : sizeof(*kinfo);
234 if (copy_to_user(ubase, kinfo, sz))
243 * ipath_tid_update - update a port TID
245 * @fp: the ipath device file
246 * @ti: the TID information
248 * The new implementation as of Oct 2004 is that the driver assigns
249 * the tid and returns it to the caller. To make it easier to
250 * catch bugs, and to reduce search time, we keep a cursor for
251 * each port, walking the shadow tid array to find one that's not
254 * For now, if we can't allocate the full list, we fail, although
255 * in the long run, we'll allocate as many as we can, and the
256 * caller will deal with that by trying the remaining pages later.
257 * That means that when we fail, we have to mark the tids as not in
258 * use again, in our shadow copy.
260 * It's up to the caller to free the tids when they are done.
261 * We'll unlock the pages as they free them.
263 * Also, right now we are locking one page at a time, but since
264 * the intended use of this routine is for a single group of
265 * virtually contiguous pages, that should change to improve
268 static int ipath_tid_update(struct ipath_portdata *pd, struct file *fp,
269 const struct ipath_tid_info *ti)
272 u32 tid, porttid, cnt, i, tidcnt, tidoff;
274 struct ipath_devdata *dd = pd->port_dd;
277 u64 __iomem *tidbase;
278 unsigned long tidmap[8];
279 struct page **pagep = NULL;
280 unsigned subport = subport_fp(fp);
282 if (!dd->ipath_pageshadow) {
289 ipath_dbg("After copyin, tidcnt 0, tidlist %llx\n",
290 (unsigned long long) ti->tidlist);
292 * Should we treat as success? likely a bug
297 porttid = pd->port_port * dd->ipath_rcvtidcnt;
298 if (!pd->port_subport_cnt) {
299 tidcnt = dd->ipath_rcvtidcnt;
300 tid = pd->port_tidcursor;
302 } else if (!subport) {
303 tidcnt = (dd->ipath_rcvtidcnt / pd->port_subport_cnt) +
304 (dd->ipath_rcvtidcnt % pd->port_subport_cnt);
305 tidoff = dd->ipath_rcvtidcnt - tidcnt;
307 tid = tidcursor_fp(fp);
309 tidcnt = dd->ipath_rcvtidcnt / pd->port_subport_cnt;
310 tidoff = tidcnt * (subport - 1);
312 tid = tidcursor_fp(fp);
315 /* make sure it all fits in port_tid_pg_list */
316 dev_info(&dd->pcidev->dev, "Process tried to allocate %u "
317 "TIDs, only trying max (%u)\n", cnt, tidcnt);
320 pagep = &((struct page **) pd->port_tid_pg_list)[tidoff];
321 tidlist = &((u16 *) &pagep[dd->ipath_rcvtidcnt])[tidoff];
323 memset(tidmap, 0, sizeof(tidmap));
324 /* before decrement; chip actual # */
326 tidbase = (u64 __iomem *) (((char __iomem *) dd->ipath_kregbase) +
327 dd->ipath_rcvtidbase +
328 porttid * sizeof(*tidbase));
330 ipath_cdbg(VERBOSE, "Port%u %u tids, cursor %u, tidbase %p\n",
331 pd->port_port, cnt, tid, tidbase);
333 /* virtual address of first page in transfer */
334 vaddr = ti->tidvaddr;
335 if (!access_ok(VERIFY_WRITE, (void __user *) vaddr,
337 ipath_dbg("Fail vaddr %p, %u pages, !access_ok\n",
342 ret = ipath_get_user_pages(vaddr, cnt, pagep);
345 ipath_dbg("Failed to lock addr %p, %u pages "
346 "(already locked)\n",
347 (void *) vaddr, cnt);
349 * for now, continue, and see what happens but with
350 * the new implementation, this should never happen,
351 * unless perhaps the user has mpin'ed the pages
352 * themselves (something we need to test)
356 dev_info(&dd->pcidev->dev,
357 "Failed to lock addr %p, %u pages: "
358 "errno %d\n", (void *) vaddr, cnt, -ret);
362 for (i = 0; i < cnt; i++, vaddr += PAGE_SIZE) {
363 for (; ntids--; tid++) {
366 if (!dd->ipath_pageshadow[porttid + tid])
371 * oops, wrapped all the way through their TIDs,
372 * and didn't have enough free; see comments at
375 ipath_dbg("Not enough free TIDs for %u pages "
376 "(index %d), failing\n", cnt, i);
377 i--; /* last tidlist[i] not filled in */
381 tidlist[i] = tid + tidoff;
382 ipath_cdbg(VERBOSE, "Updating idx %u to TID %u, "
383 "vaddr %lx\n", i, tid + tidoff, vaddr);
384 /* we "know" system pages and TID pages are same size */
385 dd->ipath_pageshadow[porttid + tid] = pagep[i];
386 dd->ipath_physshadow[porttid + tid] = ipath_map_page(
387 dd->pcidev, pagep[i], 0, PAGE_SIZE,
390 * don't need atomic or it's overhead
392 __set_bit(tid, tidmap);
393 physaddr = dd->ipath_physshadow[porttid + tid];
394 ipath_stats.sps_pagelocks++;
396 "TID %u, vaddr %lx, physaddr %llx pgp %p\n",
397 tid, vaddr, (unsigned long long) physaddr,
399 dd->ipath_f_put_tid(dd, &tidbase[tid], 1, physaddr);
401 * don't check this tid in ipath_portshadow, since we
402 * just filled it in; start with the next one.
410 /* jump here if copy out of updated info failed... */
411 ipath_dbg("After failure (ret=%d), undo %d of %d entries\n",
413 /* same code that's in ipath_free_tid() */
414 limit = sizeof(tidmap) * BITS_PER_BYTE;
416 /* just in case size changes in future */
418 tid = find_first_bit((const unsigned long *)tidmap, limit);
419 for (; tid < limit; tid++) {
420 if (!test_bit(tid, tidmap))
422 if (dd->ipath_pageshadow[porttid + tid]) {
423 ipath_cdbg(VERBOSE, "Freeing TID %u\n",
425 dd->ipath_f_put_tid(dd, &tidbase[tid], 1,
426 dd->ipath_tidinvalid);
427 pci_unmap_page(dd->pcidev,
428 dd->ipath_physshadow[porttid + tid],
429 PAGE_SIZE, PCI_DMA_FROMDEVICE);
430 dd->ipath_pageshadow[porttid + tid] = NULL;
431 ipath_stats.sps_pageunlocks++;
434 ipath_release_user_pages(pagep, cnt);
437 * Copy the updated array, with ipath_tid's filled in, back
438 * to user. Since we did the copy in already, this "should
439 * never fail" If it does, we have to clean up...
441 if (copy_to_user((void __user *)
442 (unsigned long) ti->tidlist,
443 tidlist, cnt * sizeof(*tidlist))) {
447 if (copy_to_user((void __user *) (unsigned long) ti->tidmap,
448 tidmap, sizeof tidmap)) {
454 if (!pd->port_subport_cnt)
455 pd->port_tidcursor = tid;
457 tidcursor_fp(fp) = tid;
462 ipath_dbg("Failed to map %u TID pages, failing with %d\n",
468 * ipath_tid_free - free a port TID
470 * @subport: the subport
473 * right now we are unlocking one page at a time, but since
474 * the intended use of this routine is for a single group of
475 * virtually contiguous pages, that should change to improve
476 * performance. We check that the TID is in range for this port
477 * but otherwise don't check validity; if user has an error and
478 * frees the wrong tid, it's only their own data that can thereby
479 * be corrupted. We do check that the TID was in use, for sanity
480 * We always use our idea of the saved address, not the address that
481 * they pass in to us.
484 static int ipath_tid_free(struct ipath_portdata *pd, unsigned subport,
485 const struct ipath_tid_info *ti)
488 u32 tid, porttid, cnt, limit, tidcnt;
489 struct ipath_devdata *dd = pd->port_dd;
490 u64 __iomem *tidbase;
491 unsigned long tidmap[8];
493 if (!dd->ipath_pageshadow) {
498 if (copy_from_user(tidmap, (void __user *)(unsigned long)ti->tidmap,
504 porttid = pd->port_port * dd->ipath_rcvtidcnt;
505 if (!pd->port_subport_cnt)
506 tidcnt = dd->ipath_rcvtidcnt;
508 tidcnt = (dd->ipath_rcvtidcnt / pd->port_subport_cnt) +
509 (dd->ipath_rcvtidcnt % pd->port_subport_cnt);
510 porttid += dd->ipath_rcvtidcnt - tidcnt;
512 tidcnt = dd->ipath_rcvtidcnt / pd->port_subport_cnt;
513 porttid += tidcnt * (subport - 1);
515 tidbase = (u64 __iomem *) ((char __iomem *)(dd->ipath_kregbase) +
516 dd->ipath_rcvtidbase +
517 porttid * sizeof(*tidbase));
519 limit = sizeof(tidmap) * BITS_PER_BYTE;
521 /* just in case size changes in future */
523 tid = find_first_bit(tidmap, limit);
524 ipath_cdbg(VERBOSE, "Port%u free %u tids; first bit (max=%d) "
525 "set is %d, porttid %u\n", pd->port_port, ti->tidcnt,
526 limit, tid, porttid);
527 for (cnt = 0; tid < limit; tid++) {
529 * small optimization; if we detect a run of 3 or so without
530 * any set, use find_first_bit again. That's mainly to
531 * accelerate the case where we wrapped, so we have some at
532 * the beginning, and some at the end, and a big gap
535 if (!test_bit(tid, tidmap))
538 if (dd->ipath_pageshadow[porttid + tid]) {
539 ipath_cdbg(VERBOSE, "PID %u freeing TID %u\n",
541 dd->ipath_f_put_tid(dd, &tidbase[tid], 1,
542 dd->ipath_tidinvalid);
543 pci_unmap_page(dd->pcidev,
544 dd->ipath_physshadow[porttid + tid],
545 PAGE_SIZE, PCI_DMA_FROMDEVICE);
546 ipath_release_user_pages(
547 &dd->ipath_pageshadow[porttid + tid], 1);
548 dd->ipath_pageshadow[porttid + tid] = NULL;
549 ipath_stats.sps_pageunlocks++;
551 ipath_dbg("Unused tid %u, ignoring\n", tid);
553 if (cnt != ti->tidcnt)
554 ipath_dbg("passed in tidcnt %d, only %d bits set in map\n",
558 ipath_dbg("Failed to unmap %u TID pages, failing with %d\n",
564 * ipath_set_part_key - set a partition key
568 * We can have up to 4 active at a time (other than the default, which is
569 * always allowed). This is somewhat tricky, since multiple ports may set
570 * the same key, so we reference count them, and clean up at exit. All 4
571 * partition keys are packed into a single infinipath register. It's an
572 * error for a process to set the same pkey multiple times. We provide no
573 * mechanism to de-allocate a pkey at this time, we may eventually need to
574 * do that. I've used the atomic operations, and no locking, and only make
575 * a single pass through what's available. This should be more than
576 * adequate for some time. I'll think about spinlocks or the like if and as
579 static int ipath_set_part_key(struct ipath_portdata *pd, u16 key)
581 struct ipath_devdata *dd = pd->port_dd;
582 int i, any = 0, pidx = -1;
583 u16 lkey = key & 0x7FFF;
586 if (lkey == (IPATH_DEFAULT_P_KEY & 0x7FFF)) {
587 /* nothing to do; this key always valid */
592 ipath_cdbg(VERBOSE, "p%u try to set pkey %hx, current keys "
593 "%hx:%x %hx:%x %hx:%x %hx:%x\n",
594 pd->port_port, key, dd->ipath_pkeys[0],
595 atomic_read(&dd->ipath_pkeyrefs[0]), dd->ipath_pkeys[1],
596 atomic_read(&dd->ipath_pkeyrefs[1]), dd->ipath_pkeys[2],
597 atomic_read(&dd->ipath_pkeyrefs[2]), dd->ipath_pkeys[3],
598 atomic_read(&dd->ipath_pkeyrefs[3]));
601 ipath_cdbg(PROC, "p%u tries to set key 0, not allowed\n",
608 * Set the full membership bit, because it has to be
609 * set in the register or the packet, and it seems
610 * cleaner to set in the register than to force all
611 * callers to set it. (see bug 4331)
615 for (i = 0; i < ARRAY_SIZE(pd->port_pkeys); i++) {
616 if (!pd->port_pkeys[i] && pidx == -1)
618 if (pd->port_pkeys[i] == key) {
619 ipath_cdbg(VERBOSE, "p%u tries to set same pkey "
620 "(%x) more than once\n",
627 ipath_dbg("All pkeys for port %u already in use, "
628 "can't set %x\n", pd->port_port, key);
632 for (any = i = 0; i < ARRAY_SIZE(dd->ipath_pkeys); i++) {
633 if (!dd->ipath_pkeys[i]) {
637 if (dd->ipath_pkeys[i] == key) {
638 atomic_t *pkrefs = &dd->ipath_pkeyrefs[i];
640 if (atomic_inc_return(pkrefs) > 1) {
641 pd->port_pkeys[pidx] = key;
642 ipath_cdbg(VERBOSE, "p%u set key %x "
643 "matches #%d, count now %d\n",
644 pd->port_port, key, i,
645 atomic_read(pkrefs));
650 * lost race, decrement count, catch below
653 ipath_cdbg(VERBOSE, "Lost race, count was "
654 "0, after dec, it's %d\n",
655 atomic_read(pkrefs));
659 if ((dd->ipath_pkeys[i] & 0x7FFF) == lkey) {
661 * It makes no sense to have both the limited and
662 * full membership PKEY set at the same time since
663 * the unlimited one will disable the limited one.
670 ipath_dbg("port %u, all pkeys already in use, "
671 "can't set %x\n", pd->port_port, key);
675 for (any = i = 0; i < ARRAY_SIZE(dd->ipath_pkeys); i++) {
676 if (!dd->ipath_pkeys[i] &&
677 atomic_inc_return(&dd->ipath_pkeyrefs[i]) == 1) {
680 /* for ipathstats, etc. */
681 ipath_stats.sps_pkeys[i] = lkey;
682 pd->port_pkeys[pidx] = dd->ipath_pkeys[i] = key;
684 (u64) dd->ipath_pkeys[0] |
685 ((u64) dd->ipath_pkeys[1] << 16) |
686 ((u64) dd->ipath_pkeys[2] << 32) |
687 ((u64) dd->ipath_pkeys[3] << 48);
688 ipath_cdbg(PROC, "p%u set key %x in #%d, "
689 "portidx %d, new pkey reg %llx\n",
690 pd->port_port, key, i, pidx,
691 (unsigned long long) pkey);
693 dd, dd->ipath_kregs->kr_partitionkey, pkey);
699 ipath_dbg("port %u, all pkeys already in use 2nd pass, "
700 "can't set %x\n", pd->port_port, key);
708 * ipath_manage_rcvq - manage a port's receive queue
710 * @subport: the subport
711 * @start_stop: action to carry out
713 * start_stop == 0 disables receive on the port, for use in queue
714 * overflow conditions. start_stop==1 re-enables, to be used to
715 * re-init the software copy of the head register
717 static int ipath_manage_rcvq(struct ipath_portdata *pd, unsigned subport,
720 struct ipath_devdata *dd = pd->port_dd;
722 ipath_cdbg(PROC, "%sabling rcv for unit %u port %u:%u\n",
723 start_stop ? "en" : "dis", dd->ipath_unit,
724 pd->port_port, subport);
727 /* atomically clear receive enable port. */
730 * On enable, force in-memory copy of the tail register to
731 * 0, so that protocol code doesn't have to worry about
732 * whether or not the chip has yet updated the in-memory
733 * copy or not on return from the system call. The chip
734 * always resets it's tail register back to 0 on a
735 * transition from disabled to enabled. This could cause a
736 * problem if software was broken, and did the enable w/o
737 * the disable, but eventually the in-memory copy will be
738 * updated and correct itself, even in the face of software
741 *(volatile u64 *)pd->port_rcvhdrtail_kvaddr = 0;
742 set_bit(INFINIPATH_R_PORTENABLE_SHIFT + pd->port_port,
745 clear_bit(INFINIPATH_R_PORTENABLE_SHIFT + pd->port_port,
747 ipath_write_kreg(dd, dd->ipath_kregs->kr_rcvctrl,
749 /* now be sure chip saw it before we return */
750 ipath_read_kreg64(dd, dd->ipath_kregs->kr_scratch);
753 * And try to be sure that tail reg update has happened too.
754 * This should in theory interlock with the RXE changes to
755 * the tail register. Don't assign it to the tail register
756 * in memory copy, since we could overwrite an update by the
759 ipath_read_ureg32(dd, ur_rcvhdrtail, pd->port_port);
761 /* always; new head should be equal to new tail; see above */
766 static void ipath_clean_part_key(struct ipath_portdata *pd,
767 struct ipath_devdata *dd)
769 int i, j, pchanged = 0;
772 /* for debugging only */
773 oldpkey = (u64) dd->ipath_pkeys[0] |
774 ((u64) dd->ipath_pkeys[1] << 16) |
775 ((u64) dd->ipath_pkeys[2] << 32) |
776 ((u64) dd->ipath_pkeys[3] << 48);
778 for (i = 0; i < ARRAY_SIZE(pd->port_pkeys); i++) {
779 if (!pd->port_pkeys[i])
781 ipath_cdbg(VERBOSE, "look for key[%d] %hx in pkeys\n", i,
783 for (j = 0; j < ARRAY_SIZE(dd->ipath_pkeys); j++) {
784 /* check for match independent of the global bit */
785 if ((dd->ipath_pkeys[j] & 0x7fff) !=
786 (pd->port_pkeys[i] & 0x7fff))
788 if (atomic_dec_and_test(&dd->ipath_pkeyrefs[j])) {
789 ipath_cdbg(VERBOSE, "p%u clear key "
792 pd->port_pkeys[i], j);
793 ipath_stats.sps_pkeys[j] =
794 dd->ipath_pkeys[j] = 0;
798 VERBOSE, "p%u key %x matches #%d, "
799 "but ref still %d\n", pd->port_port,
800 pd->port_pkeys[i], j,
801 atomic_read(&dd->ipath_pkeyrefs[j]));
804 pd->port_pkeys[i] = 0;
807 u64 pkey = (u64) dd->ipath_pkeys[0] |
808 ((u64) dd->ipath_pkeys[1] << 16) |
809 ((u64) dd->ipath_pkeys[2] << 32) |
810 ((u64) dd->ipath_pkeys[3] << 48);
811 ipath_cdbg(VERBOSE, "p%u old pkey reg %llx, "
812 "new pkey reg %llx\n", pd->port_port,
813 (unsigned long long) oldpkey,
814 (unsigned long long) pkey);
815 ipath_write_kreg(dd, dd->ipath_kregs->kr_partitionkey,
821 * Initialize the port data with the receive buffer sizes
822 * so this can be done while the master port is locked.
823 * Otherwise, there is a race with a slave opening the port
824 * and seeing these fields uninitialized.
826 static void init_user_egr_sizes(struct ipath_portdata *pd)
828 struct ipath_devdata *dd = pd->port_dd;
829 unsigned egrperchunk, egrcnt, size;
832 * to avoid wasting a lot of memory, we allocate 32KB chunks of
833 * physically contiguous memory, advance through it until used up
834 * and then allocate more. Of course, we need memory to store those
835 * extra pointers, now. Started out with 256KB, but under heavy
836 * memory pressure (creating large files and then copying them over
837 * NFS while doing lots of MPI jobs), we hit some allocation
838 * failures, even though we can sleep... (2.6.10) Still get
839 * failures at 64K. 32K is the lowest we can go without wasting
843 egrperchunk = size / dd->ipath_rcvegrbufsize;
844 egrcnt = dd->ipath_rcvegrcnt;
845 pd->port_rcvegrbuf_chunks = (egrcnt + egrperchunk - 1) / egrperchunk;
846 pd->port_rcvegrbufs_perchunk = egrperchunk;
847 pd->port_rcvegrbuf_size = size;
851 * ipath_create_user_egr - allocate eager TID buffers
852 * @pd: the port to allocate TID buffers for
854 * This routine is now quite different for user and kernel, because
855 * the kernel uses skb's, for the accelerated network performance
856 * This is the user port version
858 * Allocate the eager TID buffers and program them into infinipath
859 * They are no longer completely contiguous, we do multiple allocation
862 static int ipath_create_user_egr(struct ipath_portdata *pd)
864 struct ipath_devdata *dd = pd->port_dd;
865 unsigned e, egrcnt, egrperchunk, chunk, egrsize, egroff;
871 * GFP_USER, but without GFP_FS, so buffer cache can be
872 * coalesced (we hope); otherwise, even at order 4,
873 * heavy filesystem activity makes these fail, and we can
874 * use compound pages.
876 gfp_flags = __GFP_WAIT | __GFP_IO | __GFP_COMP;
878 egrcnt = dd->ipath_rcvegrcnt;
879 /* TID number offset for this port */
880 egroff = pd->port_port * egrcnt;
881 egrsize = dd->ipath_rcvegrbufsize;
882 ipath_cdbg(VERBOSE, "Allocating %d egr buffers, at egrtid "
883 "offset %x, egrsize %u\n", egrcnt, egroff, egrsize);
885 chunk = pd->port_rcvegrbuf_chunks;
886 egrperchunk = pd->port_rcvegrbufs_perchunk;
887 size = pd->port_rcvegrbuf_size;
888 pd->port_rcvegrbuf = kmalloc(chunk * sizeof(pd->port_rcvegrbuf[0]),
890 if (!pd->port_rcvegrbuf) {
894 pd->port_rcvegrbuf_phys =
895 kmalloc(chunk * sizeof(pd->port_rcvegrbuf_phys[0]),
897 if (!pd->port_rcvegrbuf_phys) {
901 for (e = 0; e < pd->port_rcvegrbuf_chunks; e++) {
903 pd->port_rcvegrbuf[e] = dma_alloc_coherent(
904 &dd->pcidev->dev, size, &pd->port_rcvegrbuf_phys[e],
907 if (!pd->port_rcvegrbuf[e]) {
909 goto bail_rcvegrbuf_phys;
913 pd->port_rcvegr_phys = pd->port_rcvegrbuf_phys[0];
915 for (e = chunk = 0; chunk < pd->port_rcvegrbuf_chunks; chunk++) {
916 dma_addr_t pa = pd->port_rcvegrbuf_phys[chunk];
919 for (i = 0; e < egrcnt && i < egrperchunk; e++, i++) {
920 dd->ipath_f_put_tid(dd, e + egroff +
924 dd->ipath_rcvegrbase), 0, pa);
927 cond_resched(); /* don't hog the cpu */
934 for (e = 0; e < pd->port_rcvegrbuf_chunks &&
935 pd->port_rcvegrbuf[e]; e++) {
936 dma_free_coherent(&dd->pcidev->dev, size,
937 pd->port_rcvegrbuf[e],
938 pd->port_rcvegrbuf_phys[e]);
941 kfree(pd->port_rcvegrbuf_phys);
942 pd->port_rcvegrbuf_phys = NULL;
944 kfree(pd->port_rcvegrbuf);
945 pd->port_rcvegrbuf = NULL;
951 /* common code for the mappings on dma_alloc_coherent mem */
952 static int ipath_mmap_mem(struct vm_area_struct *vma,
953 struct ipath_portdata *pd, unsigned len, int write_ok,
954 void *kvaddr, char *what)
956 struct ipath_devdata *dd = pd->port_dd;
960 if ((vma->vm_end - vma->vm_start) > len) {
961 dev_info(&dd->pcidev->dev,
962 "FAIL on %s: len %lx > %x\n", what,
963 vma->vm_end - vma->vm_start, len);
969 if (vma->vm_flags & VM_WRITE) {
970 dev_info(&dd->pcidev->dev,
971 "%s must be mapped readonly\n", what);
976 /* don't allow them to later change with mprotect */
977 vma->vm_flags &= ~VM_MAYWRITE;
980 pfn = virt_to_phys(kvaddr) >> PAGE_SHIFT;
981 ret = remap_pfn_range(vma, vma->vm_start, pfn,
982 len, vma->vm_page_prot);
984 dev_info(&dd->pcidev->dev, "%s port%u mmap of %lx, %x "
985 "bytes r%c failed: %d\n", what, pd->port_port,
986 pfn, len, write_ok?'w':'o', ret);
988 ipath_cdbg(VERBOSE, "%s port%u mmaped %lx, %x bytes "
989 "r%c\n", what, pd->port_port, pfn, len,
995 static int mmap_ureg(struct vm_area_struct *vma, struct ipath_devdata *dd,
1002 * This is real hardware, so use io_remap. This is the mechanism
1003 * for the user process to update the head registers for their port
1006 if ((vma->vm_end - vma->vm_start) > PAGE_SIZE) {
1007 dev_info(&dd->pcidev->dev, "FAIL mmap userreg: reqlen "
1008 "%lx > PAGE\n", vma->vm_end - vma->vm_start);
1011 phys = dd->ipath_physaddr + ureg;
1012 vma->vm_page_prot = pgprot_noncached(vma->vm_page_prot);
1014 vma->vm_flags |= VM_DONTCOPY | VM_DONTEXPAND;
1015 ret = io_remap_pfn_range(vma, vma->vm_start,
1017 vma->vm_end - vma->vm_start,
1023 static int mmap_piobufs(struct vm_area_struct *vma,
1024 struct ipath_devdata *dd,
1025 struct ipath_portdata *pd,
1026 unsigned piobufs, unsigned piocnt)
1032 * When we map the PIO buffers in the chip, we want to map them as
1033 * writeonly, no read possible. This prevents access to previous
1034 * process data, and catches users who might try to read the i/o
1035 * space due to a bug.
1037 if ((vma->vm_end - vma->vm_start) > (piocnt * dd->ipath_palign)) {
1038 dev_info(&dd->pcidev->dev, "FAIL mmap piobufs: "
1039 "reqlen %lx > PAGE\n",
1040 vma->vm_end - vma->vm_start);
1045 phys = dd->ipath_physaddr + piobufs;
1048 * Don't mark this as non-cached, or we don't get the
1049 * write combining behavior we want on the PIO buffers!
1052 #if defined(__powerpc__)
1053 /* There isn't a generic way to specify writethrough mappings */
1054 pgprot_val(vma->vm_page_prot) |= _PAGE_NO_CACHE;
1055 pgprot_val(vma->vm_page_prot) |= _PAGE_WRITETHRU;
1056 pgprot_val(vma->vm_page_prot) &= ~_PAGE_GUARDED;
1060 * don't allow them to later change to readable with mprotect (for when
1061 * not initially mapped readable, as is normally the case)
1063 vma->vm_flags &= ~VM_MAYREAD;
1064 vma->vm_flags |= VM_DONTCOPY | VM_DONTEXPAND;
1066 ret = io_remap_pfn_range(vma, vma->vm_start, phys >> PAGE_SHIFT,
1067 vma->vm_end - vma->vm_start,
1073 static int mmap_rcvegrbufs(struct vm_area_struct *vma,
1074 struct ipath_portdata *pd)
1076 struct ipath_devdata *dd = pd->port_dd;
1077 unsigned long start, size;
1078 size_t total_size, i;
1082 size = pd->port_rcvegrbuf_size;
1083 total_size = pd->port_rcvegrbuf_chunks * size;
1084 if ((vma->vm_end - vma->vm_start) > total_size) {
1085 dev_info(&dd->pcidev->dev, "FAIL on egr bufs: "
1086 "reqlen %lx > actual %lx\n",
1087 vma->vm_end - vma->vm_start,
1088 (unsigned long) total_size);
1093 if (vma->vm_flags & VM_WRITE) {
1094 dev_info(&dd->pcidev->dev, "Can't map eager buffers as "
1095 "writable (flags=%lx)\n", vma->vm_flags);
1099 /* don't allow them to later change to writeable with mprotect */
1100 vma->vm_flags &= ~VM_MAYWRITE;
1102 start = vma->vm_start;
1104 for (i = 0; i < pd->port_rcvegrbuf_chunks; i++, start += size) {
1105 pfn = virt_to_phys(pd->port_rcvegrbuf[i]) >> PAGE_SHIFT;
1106 ret = remap_pfn_range(vma, start, pfn, size,
1118 * ipath_file_vma_nopage - handle a VMA page fault.
1120 static struct page *ipath_file_vma_nopage(struct vm_area_struct *vma,
1121 unsigned long address, int *type)
1123 unsigned long offset = address - vma->vm_start;
1124 struct page *page = NOPAGE_SIGBUS;
1128 * Convert the vmalloc address into a struct page.
1130 pageptr = (void *)(offset + (vma->vm_pgoff << PAGE_SHIFT));
1131 page = vmalloc_to_page(pageptr);
1135 /* Increment the reference count. */
1138 *type = VM_FAULT_MINOR;
1143 static struct vm_operations_struct ipath_file_vm_ops = {
1144 .nopage = ipath_file_vma_nopage,
1147 static int mmap_kvaddr(struct vm_area_struct *vma, u64 pgaddr,
1148 struct ipath_portdata *pd, unsigned subport)
1151 struct ipath_devdata *dd;
1156 /* If the port is not shared, all addresses should be physical */
1157 if (!pd->port_subport_cnt)
1161 size = pd->port_rcvegrbuf_chunks * pd->port_rcvegrbuf_size;
1164 * Each process has all the subport uregbase, rcvhdrq, and
1165 * rcvegrbufs mmapped - as an array for all the processes,
1166 * and also separately for this process.
1168 if (pgaddr == cvt_kvaddr(pd->subport_uregbase)) {
1169 addr = pd->subport_uregbase;
1170 size = PAGE_SIZE * pd->port_subport_cnt;
1171 } else if (pgaddr == cvt_kvaddr(pd->subport_rcvhdr_base)) {
1172 addr = pd->subport_rcvhdr_base;
1173 size = pd->port_rcvhdrq_size * pd->port_subport_cnt;
1174 } else if (pgaddr == cvt_kvaddr(pd->subport_rcvegrbuf)) {
1175 addr = pd->subport_rcvegrbuf;
1176 size *= pd->port_subport_cnt;
1177 } else if (pgaddr == cvt_kvaddr(pd->subport_uregbase +
1178 PAGE_SIZE * subport)) {
1179 addr = pd->subport_uregbase + PAGE_SIZE * subport;
1181 } else if (pgaddr == cvt_kvaddr(pd->subport_rcvhdr_base +
1182 pd->port_rcvhdrq_size * subport)) {
1183 addr = pd->subport_rcvhdr_base +
1184 pd->port_rcvhdrq_size * subport;
1185 size = pd->port_rcvhdrq_size;
1186 } else if (pgaddr == cvt_kvaddr(pd->subport_rcvegrbuf +
1188 addr = pd->subport_rcvegrbuf + size * subport;
1189 /* rcvegrbufs are read-only on the slave */
1190 if (vma->vm_flags & VM_WRITE) {
1191 dev_info(&dd->pcidev->dev,
1192 "Can't map eager buffers as "
1193 "writable (flags=%lx)\n", vma->vm_flags);
1198 * Don't allow permission to later change to writeable
1201 vma->vm_flags &= ~VM_MAYWRITE;
1205 len = vma->vm_end - vma->vm_start;
1207 ipath_cdbg(MM, "FAIL: reqlen %lx > %zx\n", len, size);
1212 vma->vm_pgoff = (unsigned long) addr >> PAGE_SHIFT;
1213 vma->vm_ops = &ipath_file_vm_ops;
1214 vma->vm_flags |= VM_RESERVED | VM_DONTEXPAND;
1222 * ipath_mmap - mmap various structures into user space
1223 * @fp: the file pointer
1226 * We use this to have a shared buffer between the kernel and the user code
1227 * for the rcvhdr queue, egr buffers, and the per-port user regs and pio
1228 * buffers in the chip. We have the open and close entries so we can bump
1229 * the ref count and keep the driver from being unloaded while still mapped.
1231 static int ipath_mmap(struct file *fp, struct vm_area_struct *vma)
1233 struct ipath_portdata *pd;
1234 struct ipath_devdata *dd;
1236 unsigned piobufs, piocnt;
1247 * This is the ipath_do_user_init() code, mapping the shared buffers
1248 * into the user process. The address referred to by vm_pgoff is the
1249 * file offset passed via mmap(). For shared ports, this is the
1250 * kernel vmalloc() address of the pages to share with the master.
1251 * For non-shared or master ports, this is a physical address.
1252 * We only do one mmap for each space mapped.
1254 pgaddr = vma->vm_pgoff << PAGE_SHIFT;
1257 * Check for 0 in case one of the allocations failed, but user
1258 * called mmap anyway.
1265 ipath_cdbg(MM, "pgaddr %llx vm_start=%lx len %lx port %u:%u:%u\n",
1266 (unsigned long long) pgaddr, vma->vm_start,
1267 vma->vm_end - vma->vm_start, dd->ipath_unit,
1268 pd->port_port, subport_fp(fp));
1271 * Physical addresses must fit in 40 bits for our hardware.
1272 * Check for kernel virtual addresses first, anything else must
1273 * match a HW or memory address.
1275 ret = mmap_kvaddr(vma, pgaddr, pd, subport_fp(fp));
1282 ureg = dd->ipath_uregbase + dd->ipath_palign * pd->port_port;
1283 if (!pd->port_subport_cnt) {
1284 /* port is not shared */
1285 piocnt = dd->ipath_pbufsport;
1286 piobufs = pd->port_piobufs;
1287 } else if (!subport_fp(fp)) {
1288 /* caller is the master */
1289 piocnt = (dd->ipath_pbufsport / pd->port_subport_cnt) +
1290 (dd->ipath_pbufsport % pd->port_subport_cnt);
1291 piobufs = pd->port_piobufs +
1292 dd->ipath_palign * (dd->ipath_pbufsport - piocnt);
1294 unsigned slave = subport_fp(fp) - 1;
1296 /* caller is a slave */
1297 piocnt = dd->ipath_pbufsport / pd->port_subport_cnt;
1298 piobufs = pd->port_piobufs + dd->ipath_palign * piocnt * slave;
1302 ret = mmap_ureg(vma, dd, ureg);
1303 else if (pgaddr == piobufs)
1304 ret = mmap_piobufs(vma, dd, pd, piobufs, piocnt);
1305 else if (pgaddr == dd->ipath_pioavailregs_phys)
1306 /* in-memory copy of pioavail registers */
1307 ret = ipath_mmap_mem(vma, pd, PAGE_SIZE, 0,
1308 (void *) dd->ipath_pioavailregs_dma,
1309 "pioavail registers");
1310 else if (pgaddr == pd->port_rcvegr_phys)
1311 ret = mmap_rcvegrbufs(vma, pd);
1312 else if (pgaddr == (u64) pd->port_rcvhdrq_phys)
1314 * The rcvhdrq itself; readonly except on HT (so have
1315 * to allow writable mapping), multiple pages, contiguous
1316 * from an i/o perspective.
1318 ret = ipath_mmap_mem(vma, pd, pd->port_rcvhdrq_size, 1,
1321 else if (pgaddr == (u64) pd->port_rcvhdrqtailaddr_phys)
1322 /* in-memory copy of rcvhdrq tail register */
1323 ret = ipath_mmap_mem(vma, pd, PAGE_SIZE, 0,
1324 pd->port_rcvhdrtail_kvaddr,
1329 vma->vm_private_data = NULL;
1332 dev_info(&dd->pcidev->dev,
1333 "Failure %d on off %llx len %lx\n",
1334 -ret, (unsigned long long)pgaddr,
1335 vma->vm_end - vma->vm_start);
1340 static unsigned int ipath_poll(struct file *fp,
1341 struct poll_table_struct *pt)
1343 struct ipath_portdata *pd;
1346 unsigned pollflag = 0;
1347 struct ipath_devdata *dd;
1354 bit = pd->port_port + INFINIPATH_R_INTRAVAIL_SHIFT;
1355 set_bit(bit, &dd->ipath_rcvctrl);
1358 * Before blocking, make sure that head is still == tail,
1359 * reading from the chip, so we can be sure the interrupt
1360 * enable has made it to the chip. If not equal, disable
1361 * interrupt again and return immediately. This avoids races,
1362 * and the overhead of the chip read doesn't matter much at
1363 * this point, since we are waiting for something anyway.
1366 ipath_write_kreg(dd, dd->ipath_kregs->kr_rcvctrl,
1369 head = ipath_read_ureg32(dd, ur_rcvhdrhead, pd->port_port);
1370 tail = ipath_read_ureg32(dd, ur_rcvhdrtail, pd->port_port);
1373 set_bit(IPATH_PORT_WAITING_RCV, &pd->port_flag);
1374 if (dd->ipath_rhdrhead_intr_off) /* arm rcv interrupt */
1375 (void)ipath_write_ureg(dd, ur_rcvhdrhead,
1376 dd->ipath_rhdrhead_intr_off
1377 | head, pd->port_port);
1378 poll_wait(fp, &pd->port_wait, pt);
1380 if (test_bit(IPATH_PORT_WAITING_RCV, &pd->port_flag)) {
1381 /* timed out, no packets received */
1382 clear_bit(IPATH_PORT_WAITING_RCV, &pd->port_flag);
1383 pd->port_rcvwait_to++;
1386 pollflag = POLLIN | POLLRDNORM;
1389 /* it's already happened; don't do wait_event overhead */
1390 pollflag = POLLIN | POLLRDNORM;
1391 pd->port_rcvnowait++;
1394 clear_bit(bit, &dd->ipath_rcvctrl);
1395 ipath_write_kreg(dd, dd->ipath_kregs->kr_rcvctrl,
1402 static int init_subports(struct ipath_devdata *dd,
1403 struct ipath_portdata *pd,
1404 const struct ipath_user_info *uinfo)
1407 unsigned num_subports;
1411 * If the user is requesting zero or one port,
1412 * skip the subport allocation.
1414 if (uinfo->spu_subport_cnt <= 1)
1417 /* Old user binaries don't know about new subport implementation */
1418 if ((uinfo->spu_userversion & 0xffff) != IPATH_USER_SWMINOR) {
1419 dev_info(&dd->pcidev->dev,
1420 "Mismatched user minor version (%d) and driver "
1421 "minor version (%d) while port sharing. Ensure "
1422 "that driver and library are from the same "
1424 (int) (uinfo->spu_userversion & 0xffff),
1425 IPATH_USER_SWMINOR);
1428 if (uinfo->spu_subport_cnt > INFINIPATH_MAX_SUBPORT) {
1433 num_subports = uinfo->spu_subport_cnt;
1434 pd->subport_uregbase = vmalloc(PAGE_SIZE * num_subports);
1435 if (!pd->subport_uregbase) {
1439 /* Note: pd->port_rcvhdrq_size isn't initialized yet. */
1440 size = ALIGN(dd->ipath_rcvhdrcnt * dd->ipath_rcvhdrentsize *
1441 sizeof(u32), PAGE_SIZE) * num_subports;
1442 pd->subport_rcvhdr_base = vmalloc(size);
1443 if (!pd->subport_rcvhdr_base) {
1448 pd->subport_rcvegrbuf = vmalloc(pd->port_rcvegrbuf_chunks *
1449 pd->port_rcvegrbuf_size *
1451 if (!pd->subport_rcvegrbuf) {
1456 pd->port_subport_cnt = uinfo->spu_subport_cnt;
1457 pd->port_subport_id = uinfo->spu_subport_id;
1458 pd->active_slaves = 1;
1459 set_bit(IPATH_PORT_MASTER_UNINIT, &pd->port_flag);
1460 memset(pd->subport_uregbase, 0, PAGE_SIZE * num_subports);
1461 memset(pd->subport_rcvhdr_base, 0, size);
1462 memset(pd->subport_rcvegrbuf, 0, pd->port_rcvegrbuf_chunks *
1463 pd->port_rcvegrbuf_size *
1468 vfree(pd->subport_rcvhdr_base);
1470 vfree(pd->subport_uregbase);
1471 pd->subport_uregbase = NULL;
1476 static int try_alloc_port(struct ipath_devdata *dd, int port,
1478 const struct ipath_user_info *uinfo)
1480 struct ipath_portdata *pd;
1483 if (!(pd = dd->ipath_pd[port])) {
1486 pd = kzalloc(sizeof(struct ipath_portdata), GFP_KERNEL);
1489 * Allocate memory for use in ipath_tid_update() just once
1490 * at open, not per call. Reduces cost of expected send
1493 ptmp = kmalloc(dd->ipath_rcvtidcnt * sizeof(u16) +
1494 dd->ipath_rcvtidcnt * sizeof(struct page **),
1497 ipath_dev_err(dd, "Unable to allocate portdata "
1498 "memory, failing open\n");
1504 dd->ipath_pd[port] = pd;
1505 dd->ipath_pd[port]->port_port = port;
1506 dd->ipath_pd[port]->port_dd = dd;
1507 dd->ipath_pd[port]->port_tid_pg_list = ptmp;
1508 init_waitqueue_head(&dd->ipath_pd[port]->port_wait);
1510 if (!pd->port_cnt) {
1511 pd->userversion = uinfo->spu_userversion;
1512 init_user_egr_sizes(pd);
1513 if ((ret = init_subports(dd, pd, uinfo)) != 0)
1515 ipath_cdbg(PROC, "%s[%u] opened unit:port %u:%u\n",
1516 current->comm, current->pid, dd->ipath_unit,
1520 pd->port_pid = current->pid;
1521 strncpy(pd->port_comm, current->comm, sizeof(pd->port_comm));
1522 ipath_stats.sps_ports++;
1531 static inline int usable(struct ipath_devdata *dd)
1534 (dd->ipath_flags & IPATH_PRESENT) &&
1535 dd->ipath_kregbase &&
1537 !(dd->ipath_flags & (IPATH_LINKDOWN | IPATH_DISABLED
1541 static int find_free_port(int unit, struct file *fp,
1542 const struct ipath_user_info *uinfo)
1544 struct ipath_devdata *dd = ipath_lookup(unit);
1557 for (i = 1; i < dd->ipath_cfgports; i++) {
1558 ret = try_alloc_port(dd, i, fp, uinfo);
1568 static int find_best_unit(struct file *fp,
1569 const struct ipath_user_info *uinfo)
1571 int ret = 0, i, prefunit = -1, devmax;
1572 int maxofallports, npresent, nup;
1575 devmax = ipath_count_units(&npresent, &nup, &maxofallports);
1578 * This code is present to allow a knowledgeable person to
1579 * specify the layout of processes to processors before opening
1580 * this driver, and then we'll assign the process to the "closest"
1581 * InfiniPath chip to that processor (we assume reasonable connectivity,
1582 * for now). This code assumes that if affinity has been set
1583 * before this point, that at most one cpu is set; for now this
1584 * is reasonable. I check for both cpus_empty() and cpus_full(),
1585 * in case some kernel variant sets none of the bits when no
1586 * affinity is set. 2.6.11 and 12 kernels have all present
1587 * cpus set. Some day we'll have to fix it up further to handle
1588 * a cpu subset. This algorithm fails for two HT chips connected
1589 * in tunnel fashion. Eventually this needs real topology
1590 * information. There may be some issues with dual core numbering
1591 * as well. This needs more work prior to release.
1593 if (!cpus_empty(current->cpus_allowed) &&
1594 !cpus_full(current->cpus_allowed)) {
1595 int ncpus = num_online_cpus(), curcpu = -1, nset = 0;
1596 for (i = 0; i < ncpus; i++)
1597 if (cpu_isset(i, current->cpus_allowed)) {
1598 ipath_cdbg(PROC, "%s[%u] affinity set for "
1599 "cpu %d/%d\n", current->comm,
1600 current->pid, i, ncpus);
1604 if (curcpu != -1 && nset != ncpus) {
1606 prefunit = curcpu / (ncpus / npresent);
1607 ipath_cdbg(PROC,"%s[%u] %d chips, %d cpus, "
1608 "%d cpus/chip, select unit %d\n",
1609 current->comm, current->pid,
1610 npresent, ncpus, ncpus / npresent,
1617 * user ports start at 1, kernel port is 0
1618 * For now, we do round-robin access across all chips
1622 devmax = prefunit + 1;
1624 for (i = 1; i < maxofallports; i++) {
1625 for (ndev = prefunit != -1 ? prefunit : 0; ndev < devmax;
1627 struct ipath_devdata *dd = ipath_lookup(ndev);
1630 continue; /* can't use this unit */
1631 if (i >= dd->ipath_cfgports)
1633 * Maxed out on users of this unit. Try
1637 ret = try_alloc_port(dd, i, fp, uinfo);
1646 ipath_dbg("No ports available (none initialized "
1650 /* if started above 0, retry from 0 */
1652 "%s[%u] no ports on prefunit "
1653 "%d, clear and re-check\n",
1654 current->comm, current->pid,
1656 devmax = ipath_count_units(NULL, NULL,
1662 ipath_dbg("No ports available\n");
1666 ipath_dbg("No boards found\n");
1673 static int find_shared_port(struct file *fp,
1674 const struct ipath_user_info *uinfo)
1676 int devmax, ndev, i;
1679 devmax = ipath_count_units(NULL, NULL, NULL);
1681 for (ndev = 0; ndev < devmax; ndev++) {
1682 struct ipath_devdata *dd = ipath_lookup(ndev);
1686 for (i = 1; i < dd->ipath_cfgports; i++) {
1687 struct ipath_portdata *pd = dd->ipath_pd[i];
1689 /* Skip ports which are not yet open */
1690 if (!pd || !pd->port_cnt)
1692 /* Skip port if it doesn't match the requested one */
1693 if (pd->port_subport_id != uinfo->spu_subport_id)
1695 /* Verify the sharing process matches the master */
1696 if (pd->port_subport_cnt != uinfo->spu_subport_cnt ||
1697 pd->userversion != uinfo->spu_userversion ||
1698 pd->port_cnt >= pd->port_subport_cnt) {
1703 subport_fp(fp) = pd->port_cnt++;
1704 tidcursor_fp(fp) = 0;
1705 pd->active_slaves |= 1 << subport_fp(fp);
1707 "%s[%u] %u sharing %s[%u] unit:port %u:%u\n",
1708 current->comm, current->pid,
1710 pd->port_comm, pd->port_pid,
1711 dd->ipath_unit, pd->port_port);
1721 static int ipath_open(struct inode *in, struct file *fp)
1723 /* The real work is performed later in ipath_assign_port() */
1724 fp->private_data = kzalloc(sizeof(struct ipath_filedata), GFP_KERNEL);
1725 return fp->private_data ? 0 : -ENOMEM;
1729 /* Get port early, so can set affinity prior to memory allocation */
1730 static int ipath_assign_port(struct file *fp,
1731 const struct ipath_user_info *uinfo)
1737 /* Check to be sure we haven't already initialized this file */
1743 /* for now, if major version is different, bail */
1744 if ((uinfo->spu_userversion >> 16) != IPATH_USER_SWMAJOR) {
1745 ipath_dbg("User major version %d not same as driver "
1746 "major %d\n", uinfo->spu_userversion >> 16,
1747 IPATH_USER_SWMAJOR);
1752 swminor = uinfo->spu_userversion & 0xffff;
1753 if (swminor != IPATH_USER_SWMINOR)
1754 ipath_dbg("User minor version %d not same as driver "
1755 "minor %d\n", swminor, IPATH_USER_SWMINOR);
1757 mutex_lock(&ipath_mutex);
1759 if (swminor == IPATH_USER_SWMINOR && uinfo->spu_subport_cnt &&
1760 (ret = find_shared_port(fp, uinfo))) {
1761 mutex_unlock(&ipath_mutex);
1767 i_minor = iminor(fp->f_path.dentry->d_inode) - IPATH_USER_MINOR_BASE;
1768 ipath_cdbg(VERBOSE, "open on dev %lx (minor %d)\n",
1769 (long)fp->f_path.dentry->d_inode->i_rdev, i_minor);
1772 ret = find_free_port(i_minor - 1, fp, uinfo);
1774 ret = find_best_unit(fp, uinfo);
1776 mutex_unlock(&ipath_mutex);
1783 static int ipath_do_user_init(struct file *fp,
1784 const struct ipath_user_info *uinfo)
1787 struct ipath_portdata *pd = port_fp(fp);
1788 struct ipath_devdata *dd;
1791 /* Subports don't need to initialize anything since master did it. */
1792 if (subport_fp(fp)) {
1793 ret = wait_event_interruptible(pd->port_wait,
1794 !test_bit(IPATH_PORT_MASTER_UNINIT, &pd->port_flag));
1800 if (uinfo->spu_rcvhdrsize) {
1801 ret = ipath_setrcvhdrsize(dd, uinfo->spu_rcvhdrsize);
1806 /* for now we do nothing with rcvhdrcnt: uinfo->spu_rcvhdrcnt */
1808 /* for right now, kernel piobufs are at end, so port 1 is at 0 */
1809 pd->port_piobufs = dd->ipath_piobufbase +
1810 dd->ipath_pbufsport * (pd->port_port - 1) * dd->ipath_palign;
1811 ipath_cdbg(VERBOSE, "Set base of piobufs for port %u to 0x%x\n",
1812 pd->port_port, pd->port_piobufs);
1815 * Now allocate the rcvhdr Q and eager TIDs; skip the TID
1816 * array for time being. If pd->port_port > chip-supported,
1817 * we need to do extra stuff here to handle by handling overflow
1818 * through port 0, someday
1820 ret = ipath_create_rcvhdrq(dd, pd);
1822 ret = ipath_create_user_egr(pd);
1827 * set the eager head register for this port to the current values
1828 * of the tail pointers, since we don't know if they were
1829 * updated on last use of the port.
1831 head32 = ipath_read_ureg32(dd, ur_rcvegrindextail, pd->port_port);
1832 ipath_write_ureg(dd, ur_rcvegrindexhead, head32, pd->port_port);
1833 dd->ipath_lastegrheads[pd->port_port] = -1;
1834 dd->ipath_lastrcvhdrqtails[pd->port_port] = -1;
1835 ipath_cdbg(VERBOSE, "Wrote port%d egrhead %x from tail regs\n",
1836 pd->port_port, head32);
1837 pd->port_tidcursor = 0; /* start at beginning after open */
1839 * now enable the port; the tail registers will be written to memory
1840 * by the chip as soon as it sees the write to
1841 * dd->ipath_kregs->kr_rcvctrl. The update only happens on
1842 * transition from 0 to 1, so clear it first, then set it as part of
1843 * enabling the port. This will (very briefly) affect any other
1844 * open ports, but it shouldn't be long enough to be an issue.
1845 * We explictly set the in-memory copy to 0 beforehand, so we don't
1846 * have to wait to be sure the DMA update has happened.
1848 *(volatile u64 *)pd->port_rcvhdrtail_kvaddr = 0ULL;
1849 set_bit(INFINIPATH_R_PORTENABLE_SHIFT + pd->port_port,
1850 &dd->ipath_rcvctrl);
1851 ipath_write_kreg(dd, dd->ipath_kregs->kr_rcvctrl,
1852 dd->ipath_rcvctrl & ~INFINIPATH_R_TAILUPD);
1853 ipath_write_kreg(dd, dd->ipath_kregs->kr_rcvctrl,
1855 /* Notify any waiting slaves */
1856 if (pd->port_subport_cnt) {
1857 clear_bit(IPATH_PORT_MASTER_UNINIT, &pd->port_flag);
1858 wake_up(&pd->port_wait);
1865 * unlock_exptid - unlock any expected TID entries port still had in use
1868 * We don't actually update the chip here, because we do a bulk update
1869 * below, using ipath_f_clear_tids.
1871 static void unlock_expected_tids(struct ipath_portdata *pd)
1873 struct ipath_devdata *dd = pd->port_dd;
1874 int port_tidbase = pd->port_port * dd->ipath_rcvtidcnt;
1875 int i, cnt = 0, maxtid = port_tidbase + dd->ipath_rcvtidcnt;
1877 ipath_cdbg(VERBOSE, "Port %u unlocking any locked expTID pages\n",
1879 for (i = port_tidbase; i < maxtid; i++) {
1880 if (!dd->ipath_pageshadow[i])
1883 pci_unmap_page(dd->pcidev, dd->ipath_physshadow[i],
1884 PAGE_SIZE, PCI_DMA_FROMDEVICE);
1885 ipath_release_user_pages_on_close(&dd->ipath_pageshadow[i],
1887 dd->ipath_pageshadow[i] = NULL;
1889 ipath_stats.sps_pageunlocks++;
1892 ipath_cdbg(VERBOSE, "Port %u locked %u expTID entries\n",
1893 pd->port_port, cnt);
1895 if (ipath_stats.sps_pagelocks || ipath_stats.sps_pageunlocks)
1896 ipath_cdbg(VERBOSE, "%llu pages locked, %llu unlocked\n",
1897 (unsigned long long) ipath_stats.sps_pagelocks,
1898 (unsigned long long)
1899 ipath_stats.sps_pageunlocks);
1902 static int ipath_close(struct inode *in, struct file *fp)
1905 struct ipath_filedata *fd;
1906 struct ipath_portdata *pd;
1907 struct ipath_devdata *dd;
1910 ipath_cdbg(VERBOSE, "close on dev %lx, private data %p\n",
1911 (long)in->i_rdev, fp->private_data);
1913 mutex_lock(&ipath_mutex);
1915 fd = (struct ipath_filedata *) fp->private_data;
1916 fp->private_data = NULL;
1919 mutex_unlock(&ipath_mutex);
1922 if (--pd->port_cnt) {
1924 * XXX If the master closes the port before the slave(s),
1925 * revoke the mmap for the eager receive queue so
1926 * the slave(s) don't wait for receive data forever.
1928 pd->active_slaves &= ~(1 << fd->subport);
1929 mutex_unlock(&ipath_mutex);
1932 port = pd->port_port;
1935 if (pd->port_hdrqfull) {
1936 ipath_cdbg(PROC, "%s[%u] had %u rcvhdrqfull errors "
1937 "during run\n", pd->port_comm, pd->port_pid,
1939 pd->port_hdrqfull = 0;
1942 if (pd->port_rcvwait_to || pd->port_piowait_to
1943 || pd->port_rcvnowait || pd->port_pionowait) {
1944 ipath_cdbg(VERBOSE, "port%u, %u rcv, %u pio wait timeo; "
1945 "%u rcv %u, pio already\n",
1946 pd->port_port, pd->port_rcvwait_to,
1947 pd->port_piowait_to, pd->port_rcvnowait,
1948 pd->port_pionowait);
1949 pd->port_rcvwait_to = pd->port_piowait_to =
1950 pd->port_rcvnowait = pd->port_pionowait = 0;
1952 if (pd->port_flag) {
1953 ipath_dbg("port %u port_flag still set to 0x%lx\n",
1954 pd->port_port, pd->port_flag);
1958 if (dd->ipath_kregbase) {
1960 /* atomically clear receive enable port. */
1961 clear_bit(INFINIPATH_R_PORTENABLE_SHIFT + port,
1962 &dd->ipath_rcvctrl);
1963 ipath_write_kreg( dd, dd->ipath_kregs->kr_rcvctrl,
1965 /* and read back from chip to be sure that nothing
1966 * else is in flight when we do the rest */
1967 (void)ipath_read_kreg64(dd, dd->ipath_kregs->kr_scratch);
1969 /* clean up the pkeys for this port user */
1970 ipath_clean_part_key(pd, dd);
1972 * be paranoid, and never write 0's to these, just use an
1973 * unused part of the port 0 tail page. Of course,
1974 * rcvhdraddr points to a large chunk of memory, so this
1975 * could still trash things, but at least it won't trash
1976 * page 0, and by disabling the port, it should stop "soon",
1977 * even if a packet or two is in already in flight after we
1978 * disabled the port.
1980 ipath_write_kreg_port(dd,
1981 dd->ipath_kregs->kr_rcvhdrtailaddr, port,
1982 dd->ipath_dummy_hdrq_phys);
1983 ipath_write_kreg_port(dd, dd->ipath_kregs->kr_rcvhdraddr,
1984 pd->port_port, dd->ipath_dummy_hdrq_phys);
1986 i = dd->ipath_pbufsport * (port - 1);
1987 ipath_disarm_piobufs(dd, i, dd->ipath_pbufsport);
1989 dd->ipath_f_clear_tids(dd, pd->port_port);
1991 if (dd->ipath_pageshadow)
1992 unlock_expected_tids(pd);
1993 ipath_stats.sps_ports--;
1994 ipath_cdbg(PROC, "%s[%u] closed port %u:%u\n",
1995 pd->port_comm, pd->port_pid,
1996 dd->ipath_unit, port);
2000 dd->ipath_pd[pd->port_port] = NULL; /* before releasing mutex */
2001 mutex_unlock(&ipath_mutex);
2002 ipath_free_pddata(dd, pd); /* after releasing the mutex */
2009 static int ipath_port_info(struct ipath_portdata *pd, u16 subport,
2010 struct ipath_port_info __user *uinfo)
2012 struct ipath_port_info info;
2017 (void) ipath_count_units(NULL, &nup, NULL);
2018 info.num_active = nup;
2019 info.unit = pd->port_dd->ipath_unit;
2020 info.port = pd->port_port;
2021 info.subport = subport;
2022 /* Don't return new fields if old library opened the port. */
2023 if ((pd->userversion & 0xffff) == IPATH_USER_SWMINOR) {
2024 /* Number of user ports available for this device. */
2025 info.num_ports = pd->port_dd->ipath_cfgports - 1;
2026 info.num_subports = pd->port_subport_cnt;
2029 sz = sizeof(info) - 2 * sizeof(u16);
2031 if (copy_to_user(uinfo, &info, sz)) {
2041 static int ipath_get_slave_info(struct ipath_portdata *pd,
2042 void __user *slave_mask_addr)
2046 if (copy_to_user(slave_mask_addr, &pd->active_slaves, sizeof(u32)))
2051 static int ipath_force_pio_avail_update(struct ipath_devdata *dd)
2053 u64 reg = dd->ipath_sendctrl;
2055 clear_bit(IPATH_S_PIOBUFAVAILUPD, ®);
2056 ipath_write_kreg(dd, dd->ipath_kregs->kr_sendctrl, reg);
2057 ipath_write_kreg(dd, dd->ipath_kregs->kr_sendctrl, dd->ipath_sendctrl);
2062 static ssize_t ipath_write(struct file *fp, const char __user *data,
2063 size_t count, loff_t *off)
2065 const struct ipath_cmd __user *ucmd;
2066 struct ipath_portdata *pd;
2067 const void __user *src;
2068 size_t consumed, copy;
2069 struct ipath_cmd cmd;
2073 if (count < sizeof(cmd.type)) {
2078 ucmd = (const struct ipath_cmd __user *) data;
2080 if (copy_from_user(&cmd.type, &ucmd->type, sizeof(cmd.type))) {
2085 consumed = sizeof(cmd.type);
2088 case IPATH_CMD_ASSIGN_PORT:
2089 case __IPATH_CMD_USER_INIT:
2090 case IPATH_CMD_USER_INIT:
2091 copy = sizeof(cmd.cmd.user_info);
2092 dest = &cmd.cmd.user_info;
2093 src = &ucmd->cmd.user_info;
2095 case IPATH_CMD_RECV_CTRL:
2096 copy = sizeof(cmd.cmd.recv_ctrl);
2097 dest = &cmd.cmd.recv_ctrl;
2098 src = &ucmd->cmd.recv_ctrl;
2100 case IPATH_CMD_PORT_INFO:
2101 copy = sizeof(cmd.cmd.port_info);
2102 dest = &cmd.cmd.port_info;
2103 src = &ucmd->cmd.port_info;
2105 case IPATH_CMD_TID_UPDATE:
2106 case IPATH_CMD_TID_FREE:
2107 copy = sizeof(cmd.cmd.tid_info);
2108 dest = &cmd.cmd.tid_info;
2109 src = &ucmd->cmd.tid_info;
2111 case IPATH_CMD_SET_PART_KEY:
2112 copy = sizeof(cmd.cmd.part_key);
2113 dest = &cmd.cmd.part_key;
2114 src = &ucmd->cmd.part_key;
2116 case __IPATH_CMD_SLAVE_INFO:
2117 copy = sizeof(cmd.cmd.slave_mask_addr);
2118 dest = &cmd.cmd.slave_mask_addr;
2119 src = &ucmd->cmd.slave_mask_addr;
2121 case IPATH_CMD_PIOAVAILUPD: // force an update of PIOAvail reg
2132 if ((count - consumed) < copy) {
2137 if (copy_from_user(dest, src, copy)) {
2146 if (!pd && cmd.type != __IPATH_CMD_USER_INIT &&
2147 cmd.type != IPATH_CMD_ASSIGN_PORT) {
2153 case IPATH_CMD_ASSIGN_PORT:
2154 ret = ipath_assign_port(fp, &cmd.cmd.user_info);
2158 case __IPATH_CMD_USER_INIT:
2159 /* backwards compatibility, get port first */
2160 ret = ipath_assign_port(fp, &cmd.cmd.user_info);
2163 /* and fall through to current version. */
2164 case IPATH_CMD_USER_INIT:
2165 ret = ipath_do_user_init(fp, &cmd.cmd.user_info);
2168 ret = ipath_get_base_info(
2169 fp, (void __user *) (unsigned long)
2170 cmd.cmd.user_info.spu_base_info,
2171 cmd.cmd.user_info.spu_base_info_size);
2173 case IPATH_CMD_RECV_CTRL:
2174 ret = ipath_manage_rcvq(pd, subport_fp(fp), cmd.cmd.recv_ctrl);
2176 case IPATH_CMD_PORT_INFO:
2177 ret = ipath_port_info(pd, subport_fp(fp),
2178 (struct ipath_port_info __user *)
2179 (unsigned long) cmd.cmd.port_info);
2181 case IPATH_CMD_TID_UPDATE:
2182 ret = ipath_tid_update(pd, fp, &cmd.cmd.tid_info);
2184 case IPATH_CMD_TID_FREE:
2185 ret = ipath_tid_free(pd, subport_fp(fp), &cmd.cmd.tid_info);
2187 case IPATH_CMD_SET_PART_KEY:
2188 ret = ipath_set_part_key(pd, cmd.cmd.part_key);
2190 case __IPATH_CMD_SLAVE_INFO:
2191 ret = ipath_get_slave_info(pd,
2192 (void __user *) (unsigned long)
2193 cmd.cmd.slave_mask_addr);
2195 case IPATH_CMD_PIOAVAILUPD:
2196 ret = ipath_force_pio_avail_update(pd->port_dd);
2207 static struct class *ipath_class;
2209 static int init_cdev(int minor, char *name, const struct file_operations *fops,
2210 struct cdev **cdevp, struct class_device **class_devp)
2212 const dev_t dev = MKDEV(IPATH_MAJOR, minor);
2213 struct cdev *cdev = NULL;
2214 struct class_device *class_dev = NULL;
2217 cdev = cdev_alloc();
2219 printk(KERN_ERR IPATH_DRV_NAME
2220 ": Could not allocate cdev for minor %d, %s\n",
2226 cdev->owner = THIS_MODULE;
2228 kobject_set_name(&cdev->kobj, name);
2230 ret = cdev_add(cdev, dev, 1);
2232 printk(KERN_ERR IPATH_DRV_NAME
2233 ": Could not add cdev for minor %d, %s (err %d)\n",
2238 class_dev = class_device_create(ipath_class, NULL, dev, NULL, name);
2240 if (IS_ERR(class_dev)) {
2241 ret = PTR_ERR(class_dev);
2242 printk(KERN_ERR IPATH_DRV_NAME ": Could not create "
2243 "class_dev for minor %d, %s (err %d)\n",
2257 *class_devp = class_dev;
2266 int ipath_cdev_init(int minor, char *name, const struct file_operations *fops,
2267 struct cdev **cdevp, struct class_device **class_devp)
2269 return init_cdev(minor, name, fops, cdevp, class_devp);
2272 static void cleanup_cdev(struct cdev **cdevp,
2273 struct class_device **class_devp)
2275 struct class_device *class_dev = *class_devp;
2278 class_device_unregister(class_dev);
2288 void ipath_cdev_cleanup(struct cdev **cdevp,
2289 struct class_device **class_devp)
2291 cleanup_cdev(cdevp, class_devp);
2294 static struct cdev *wildcard_cdev;
2295 static struct class_device *wildcard_class_dev;
2297 static const dev_t dev = MKDEV(IPATH_MAJOR, 0);
2299 static int user_init(void)
2303 ret = register_chrdev_region(dev, IPATH_NMINORS, IPATH_DRV_NAME);
2305 printk(KERN_ERR IPATH_DRV_NAME ": Could not register "
2306 "chrdev region (err %d)\n", -ret);
2310 ipath_class = class_create(THIS_MODULE, IPATH_DRV_NAME);
2312 if (IS_ERR(ipath_class)) {
2313 ret = PTR_ERR(ipath_class);
2314 printk(KERN_ERR IPATH_DRV_NAME ": Could not create "
2315 "device class (err %d)\n", -ret);
2321 unregister_chrdev_region(dev, IPATH_NMINORS);
2326 static void user_cleanup(void)
2329 class_destroy(ipath_class);
2333 unregister_chrdev_region(dev, IPATH_NMINORS);
2336 static atomic_t user_count = ATOMIC_INIT(0);
2337 static atomic_t user_setup = ATOMIC_INIT(0);
2339 int ipath_user_add(struct ipath_devdata *dd)
2344 if (atomic_inc_return(&user_count) == 1) {
2347 ipath_dev_err(dd, "Unable to set up user support: "
2348 "error %d\n", -ret);
2351 ret = init_cdev(0, "ipath", &ipath_file_ops, &wildcard_cdev,
2352 &wildcard_class_dev);
2354 ipath_dev_err(dd, "Could not create wildcard "
2355 "minor: error %d\n", -ret);
2359 atomic_set(&user_setup, 1);
2362 snprintf(name, sizeof(name), "ipath%d", dd->ipath_unit);
2364 ret = init_cdev(dd->ipath_unit + 1, name, &ipath_file_ops,
2365 &dd->user_cdev, &dd->user_class_dev);
2367 ipath_dev_err(dd, "Could not create user minor %d, %s\n",
2368 dd->ipath_unit + 1, name);
2378 void ipath_user_remove(struct ipath_devdata *dd)
2380 cleanup_cdev(&dd->user_cdev, &dd->user_class_dev);
2382 if (atomic_dec_return(&user_count) == 0) {
2383 if (atomic_read(&user_setup) == 0)
2386 cleanup_cdev(&wildcard_cdev, &wildcard_class_dev);
2389 atomic_set(&user_setup, 0);