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/poll.h>
37#include <linux/cdev.h>
38#include <linux/swap.h>
39#include <linux/vmalloc.h>
40#include <linux/highmem.h>
41#include <linux/io.h>
42#include <linux/jiffies.h>
43#include <asm/pgtable.h>
44#include <linux/delay.h>
45#include <linux/export.h>
46#include <linux/uio.h>
47
48#include <rdma/ib.h>
49
50#include "qib.h"
51#include "qib_common.h"
52#include "qib_user_sdma.h"
53
54#undef pr_fmt
55#define pr_fmt(fmt) QIB_DRV_NAME ": " fmt
56
57static int qib_open(struct inode *, struct file *);
58static int qib_close(struct inode *, struct file *);
59static ssize_t qib_write(struct file *, const char __user *, size_t, loff_t *);
60static ssize_t qib_write_iter(struct kiocb *, struct iov_iter *);
61static unsigned int qib_poll(struct file *, struct poll_table_struct *);
62static int qib_mmapf(struct file *, struct vm_area_struct *);
63
64/*
65 * This is really, really weird shit - write() and writev() here
66 * have completely unrelated semantics.  Sucky userland ABI,
67 * film at 11.
68 */
69static const struct file_operations qib_file_ops = {
70	.owner = THIS_MODULE,
71	.write = qib_write,
72	.write_iter = qib_write_iter,
73	.open = qib_open,
74	.release = qib_close,
75	.poll = qib_poll,
76	.mmap = qib_mmapf,
77	.llseek = noop_llseek,
78};
79
80/*
81 * Convert kernel virtual addresses to physical addresses so they don't
82 * potentially conflict with the chip addresses used as mmap offsets.
83 * It doesn't really matter what mmap offset we use as long as we can
84 * interpret it correctly.
85 */
86static u64 cvt_kvaddr(void *p)
87{
88	struct page *page;
89	u64 paddr = 0;
90
91	page = vmalloc_to_page(p);
92	if (page)
93		paddr = page_to_pfn(page) << PAGE_SHIFT;
94
95	return paddr;
96}
97
98static int qib_get_base_info(struct file *fp, void __user *ubase,
99			     size_t ubase_size)
100{
101	struct qib_ctxtdata *rcd = ctxt_fp(fp);
102	int ret = 0;
103	struct qib_base_info *kinfo = NULL;
104	struct qib_devdata *dd = rcd->dd;
105	struct qib_pportdata *ppd = rcd->ppd;
106	unsigned subctxt_cnt;
107	int shared, master;
108	size_t sz;
109
110	subctxt_cnt = rcd->subctxt_cnt;
111	if (!subctxt_cnt) {
112		shared = 0;
113		master = 0;
114		subctxt_cnt = 1;
115	} else {
116		shared = 1;
117		master = !subctxt_fp(fp);
118	}
119
120	sz = sizeof(*kinfo);
121	/* If context sharing is not requested, allow the old size structure */
122	if (!shared)
123		sz -= 7 * sizeof(u64);
124	if (ubase_size < sz) {
125		ret = -EINVAL;
126		goto bail;
127	}
128
129	kinfo = kzalloc(sizeof(*kinfo), GFP_KERNEL);
130	if (kinfo == NULL) {
131		ret = -ENOMEM;
132		goto bail;
133	}
134
135	ret = dd->f_get_base_info(rcd, kinfo);
136	if (ret < 0)
137		goto bail;
138
139	kinfo->spi_rcvhdr_cnt = dd->rcvhdrcnt;
140	kinfo->spi_rcvhdrent_size = dd->rcvhdrentsize;
141	kinfo->spi_tidegrcnt = rcd->rcvegrcnt;
142	kinfo->spi_rcv_egrbufsize = dd->rcvegrbufsize;
143	/*
144	 * have to mmap whole thing
145	 */
146	kinfo->spi_rcv_egrbuftotlen =
147		rcd->rcvegrbuf_chunks * rcd->rcvegrbuf_size;
148	kinfo->spi_rcv_egrperchunk = rcd->rcvegrbufs_perchunk;
149	kinfo->spi_rcv_egrchunksize = kinfo->spi_rcv_egrbuftotlen /
150		rcd->rcvegrbuf_chunks;
151	kinfo->spi_tidcnt = dd->rcvtidcnt / subctxt_cnt;
152	if (master)
153		kinfo->spi_tidcnt += dd->rcvtidcnt % subctxt_cnt;
154	/*
155	 * for this use, may be cfgctxts summed over all chips that
156	 * are are configured and present
157	 */
158	kinfo->spi_nctxts = dd->cfgctxts;
159	/* unit (chip/board) our context is on */
160	kinfo->spi_unit = dd->unit;
161	kinfo->spi_port = ppd->port;
162	/* for now, only a single page */
163	kinfo->spi_tid_maxsize = PAGE_SIZE;
164
165	/*
166	 * Doing this per context, and based on the skip value, etc.  This has
167	 * to be the actual buffer size, since the protocol code treats it
168	 * as an array.
169	 *
170	 * These have to be set to user addresses in the user code via mmap.
171	 * These values are used on return to user code for the mmap target
172	 * addresses only.  For 32 bit, same 44 bit address problem, so use
173	 * the physical address, not virtual.  Before 2.6.11, using the
174	 * page_address() macro worked, but in 2.6.11, even that returns the
175	 * full 64 bit address (upper bits all 1's).  So far, using the
176	 * physical addresses (or chip offsets, for chip mapping) works, but
177	 * no doubt some future kernel release will change that, and we'll be
178	 * on to yet another method of dealing with this.
179	 * Normally only one of rcvhdr_tailaddr or rhf_offset is useful
180	 * since the chips with non-zero rhf_offset don't normally
181	 * enable tail register updates to host memory, but for testing,
182	 * both can be enabled and used.
183	 */
184	kinfo->spi_rcvhdr_base = (u64) rcd->rcvhdrq_phys;
185	kinfo->spi_rcvhdr_tailaddr = (u64) rcd->rcvhdrqtailaddr_phys;
186	kinfo->spi_rhf_offset = dd->rhf_offset;
187	kinfo->spi_rcv_egrbufs = (u64) rcd->rcvegr_phys;
188	kinfo->spi_pioavailaddr = (u64) dd->pioavailregs_phys;
189	/* setup per-unit (not port) status area for user programs */
190	kinfo->spi_status = (u64) kinfo->spi_pioavailaddr +
191		(char *) ppd->statusp -
192		(char *) dd->pioavailregs_dma;
193	kinfo->spi_uregbase = (u64) dd->uregbase + dd->ureg_align * rcd->ctxt;
194	if (!shared) {
195		kinfo->spi_piocnt = rcd->piocnt;
196		kinfo->spi_piobufbase = (u64) rcd->piobufs;
197		kinfo->spi_sendbuf_status = cvt_kvaddr(rcd->user_event_mask);
198	} else if (master) {
199		kinfo->spi_piocnt = (rcd->piocnt / subctxt_cnt) +
200				    (rcd->piocnt % subctxt_cnt);
201		/* Master's PIO buffers are after all the slave's */
202		kinfo->spi_piobufbase = (u64) rcd->piobufs +
203			dd->palign *
204			(rcd->piocnt - kinfo->spi_piocnt);
205	} else {
206		unsigned slave = subctxt_fp(fp) - 1;
207
208		kinfo->spi_piocnt = rcd->piocnt / subctxt_cnt;
209		kinfo->spi_piobufbase = (u64) rcd->piobufs +
210			dd->palign * kinfo->spi_piocnt * slave;
211	}
212
213	if (shared) {
214		kinfo->spi_sendbuf_status =
215			cvt_kvaddr(&rcd->user_event_mask[subctxt_fp(fp)]);
216		/* only spi_subctxt_* fields should be set in this block! */
217		kinfo->spi_subctxt_uregbase = cvt_kvaddr(rcd->subctxt_uregbase);
218
219		kinfo->spi_subctxt_rcvegrbuf =
220			cvt_kvaddr(rcd->subctxt_rcvegrbuf);
221		kinfo->spi_subctxt_rcvhdr_base =
222			cvt_kvaddr(rcd->subctxt_rcvhdr_base);
223	}
224
225	/*
226	 * All user buffers are 2KB buffers.  If we ever support
227	 * giving 4KB buffers to user processes, this will need some
228	 * work.  Can't use piobufbase directly, because it has
229	 * both 2K and 4K buffer base values.
230	 */
231	kinfo->spi_pioindex = (kinfo->spi_piobufbase - dd->pio2k_bufbase) /
232		dd->palign;
233	kinfo->spi_pioalign = dd->palign;
234	kinfo->spi_qpair = QIB_KD_QP;
235	/*
236	 * user mode PIO buffers are always 2KB, even when 4KB can
237	 * be received, and sent via the kernel; this is ibmaxlen
238	 * for 2K MTU.
239	 */
240	kinfo->spi_piosize = dd->piosize2k - 2 * sizeof(u32);
241	kinfo->spi_mtu = ppd->ibmaxlen; /* maxlen, not ibmtu */
242	kinfo->spi_ctxt = rcd->ctxt;
243	kinfo->spi_subctxt = subctxt_fp(fp);
244	kinfo->spi_sw_version = QIB_KERN_SWVERSION;
245	kinfo->spi_sw_version |= 1U << 31; /* QLogic-built, not kernel.org */
246	kinfo->spi_hw_version = dd->revision;
247
248	if (master)
249		kinfo->spi_runtime_flags |= QIB_RUNTIME_MASTER;
250
251	sz = (ubase_size < sizeof(*kinfo)) ? ubase_size : sizeof(*kinfo);
252	if (copy_to_user(ubase, kinfo, sz))
253		ret = -EFAULT;
254bail:
255	kfree(kinfo);
256	return ret;
257}
258
259/**
260 * qib_tid_update - update a context TID
261 * @rcd: the context
262 * @fp: the qib device file
263 * @ti: the TID information
264 *
265 * The new implementation as of Oct 2004 is that the driver assigns
266 * the tid and returns it to the caller.   To reduce search time, we
267 * keep a cursor for each context, walking the shadow tid array to find
268 * one that's not in use.
269 *
270 * For now, if we can't allocate the full list, we fail, although
271 * in the long run, we'll allocate as many as we can, and the
272 * caller will deal with that by trying the remaining pages later.
273 * That means that when we fail, we have to mark the tids as not in
274 * use again, in our shadow copy.
275 *
276 * It's up to the caller to free the tids when they are done.
277 * We'll unlock the pages as they free them.
278 *
279 * Also, right now we are locking one page at a time, but since
280 * the intended use of this routine is for a single group of
281 * virtually contiguous pages, that should change to improve
282 * performance.
283 */
284static int qib_tid_update(struct qib_ctxtdata *rcd, struct file *fp,
285			  const struct qib_tid_info *ti)
286{
287	int ret = 0, ntids;
288	u32 tid, ctxttid, cnt, i, tidcnt, tidoff;
289	u16 *tidlist;
290	struct qib_devdata *dd = rcd->dd;
291	u64 physaddr;
292	unsigned long vaddr;
293	u64 __iomem *tidbase;
294	unsigned long tidmap[8];
295	struct page **pagep = NULL;
296	unsigned subctxt = subctxt_fp(fp);
297
298	if (!dd->pageshadow) {
299		ret = -ENOMEM;
300		goto done;
301	}
302
303	cnt = ti->tidcnt;
304	if (!cnt) {
305		ret = -EFAULT;
306		goto done;
307	}
308	ctxttid = rcd->ctxt * dd->rcvtidcnt;
309	if (!rcd->subctxt_cnt) {
310		tidcnt = dd->rcvtidcnt;
311		tid = rcd->tidcursor;
312		tidoff = 0;
313	} else if (!subctxt) {
314		tidcnt = (dd->rcvtidcnt / rcd->subctxt_cnt) +
315			 (dd->rcvtidcnt % rcd->subctxt_cnt);
316		tidoff = dd->rcvtidcnt - tidcnt;
317		ctxttid += tidoff;
318		tid = tidcursor_fp(fp);
319	} else {
320		tidcnt = dd->rcvtidcnt / rcd->subctxt_cnt;
321		tidoff = tidcnt * (subctxt - 1);
322		ctxttid += tidoff;
323		tid = tidcursor_fp(fp);
324	}
325	if (cnt > tidcnt) {
326		/* make sure it all fits in tid_pg_list */
327		qib_devinfo(dd->pcidev,
328			"Process tried to allocate %u TIDs, only trying max (%u)\n",
329			cnt, tidcnt);
330		cnt = tidcnt;
331	}
332	pagep = (struct page **) rcd->tid_pg_list;
333	tidlist = (u16 *) &pagep[dd->rcvtidcnt];
334	pagep += tidoff;
335	tidlist += tidoff;
336
337	memset(tidmap, 0, sizeof(tidmap));
338	/* before decrement; chip actual # */
339	ntids = tidcnt;
340	tidbase = (u64 __iomem *) (((char __iomem *) dd->kregbase) +
341				   dd->rcvtidbase +
342				   ctxttid * sizeof(*tidbase));
343
344	/* virtual address of first page in transfer */
345	vaddr = ti->tidvaddr;
346	if (!access_ok(VERIFY_WRITE, (void __user *) vaddr,
347		       cnt * PAGE_SIZE)) {
348		ret = -EFAULT;
349		goto done;
350	}
351	ret = qib_get_user_pages(vaddr, cnt, pagep);
352	if (ret) {
353		/*
354		 * if (ret == -EBUSY)
355		 * We can't continue because the pagep array won't be
356		 * initialized. This should never happen,
357		 * unless perhaps the user has mpin'ed the pages
358		 * themselves.
359		 */
360		qib_devinfo(
361			dd->pcidev,
362			"Failed to lock addr %p, %u pages: errno %d\n",
363			(void *) vaddr, cnt, -ret);
364		goto done;
365	}
366	for (i = 0; i < cnt; i++, vaddr += PAGE_SIZE) {
367		for (; ntids--; tid++) {
368			if (tid == tidcnt)
369				tid = 0;
370			if (!dd->pageshadow[ctxttid + tid])
371				break;
372		}
373		if (ntids < 0) {
374			/*
375			 * Oops, wrapped all the way through their TIDs,
376			 * and didn't have enough free; see comments at
377			 * start of routine
378			 */
379			i--;    /* last tidlist[i] not filled in */
380			ret = -ENOMEM;
381			break;
382		}
383		tidlist[i] = tid + tidoff;
384		/* we "know" system pages and TID pages are same size */
385		dd->pageshadow[ctxttid + tid] = pagep[i];
386		dd->physshadow[ctxttid + tid] =
387			qib_map_page(dd->pcidev, pagep[i], 0, PAGE_SIZE,
388				     PCI_DMA_FROMDEVICE);
389		/*
390		 * don't need atomic or it's overhead
391		 */
392		__set_bit(tid, tidmap);
393		physaddr = dd->physshadow[ctxttid + tid];
394		/* PERFORMANCE: below should almost certainly be cached */
395		dd->f_put_tid(dd, &tidbase[tid],
396				  RCVHQ_RCV_TYPE_EXPECTED, physaddr);
397		/*
398		 * don't check this tid in qib_ctxtshadow, since we
399		 * just filled it in; start with the next one.
400		 */
401		tid++;
402	}
403
404	if (ret) {
405		u32 limit;
406cleanup:
407		/* jump here if copy out of updated info failed... */
408		/* same code that's in qib_free_tid() */
409		limit = sizeof(tidmap) * BITS_PER_BYTE;
410		if (limit > tidcnt)
411			/* just in case size changes in future */
412			limit = tidcnt;
413		tid = find_first_bit((const unsigned long *)tidmap, limit);
414		for (; tid < limit; tid++) {
415			if (!test_bit(tid, tidmap))
416				continue;
417			if (dd->pageshadow[ctxttid + tid]) {
418				dma_addr_t phys;
419
420				phys = dd->physshadow[ctxttid + tid];
421				dd->physshadow[ctxttid + tid] = dd->tidinvalid;
422				/* PERFORMANCE: below should almost certainly
423				 * be cached
424				 */
425				dd->f_put_tid(dd, &tidbase[tid],
426					      RCVHQ_RCV_TYPE_EXPECTED,
427					      dd->tidinvalid);
428				pci_unmap_page(dd->pcidev, phys, PAGE_SIZE,
429					       PCI_DMA_FROMDEVICE);
430				dd->pageshadow[ctxttid + tid] = NULL;
431			}
432		}
433		qib_release_user_pages(pagep, cnt);
434	} else {
435		/*
436		 * Copy the updated array, with qib_tid's filled in, back
437		 * to user.  Since we did the copy in already, this "should
438		 * never fail" If it does, we have to clean up...
439		 */
440		if (copy_to_user((void __user *)
441				 (unsigned long) ti->tidlist,
442				 tidlist, cnt * sizeof(*tidlist))) {
443			ret = -EFAULT;
444			goto cleanup;
445		}
446		if (copy_to_user((void __user *) (unsigned long) ti->tidmap,
447				 tidmap, sizeof(tidmap))) {
448			ret = -EFAULT;
449			goto cleanup;
450		}
451		if (tid == tidcnt)
452			tid = 0;
453		if (!rcd->subctxt_cnt)
454			rcd->tidcursor = tid;
455		else
456			tidcursor_fp(fp) = tid;
457	}
458
459done:
460	return ret;
461}
462
463/**
464 * qib_tid_free - free a context TID
465 * @rcd: the context
466 * @subctxt: the subcontext
467 * @ti: the TID info
468 *
469 * right now we are unlocking one page at a time, but since
470 * the intended use of this routine is for a single group of
471 * virtually contiguous pages, that should change to improve
472 * performance.  We check that the TID is in range for this context
473 * but otherwise don't check validity; if user has an error and
474 * frees the wrong tid, it's only their own data that can thereby
475 * be corrupted.  We do check that the TID was in use, for sanity
476 * We always use our idea of the saved address, not the address that
477 * they pass in to us.
478 */
479static int qib_tid_free(struct qib_ctxtdata *rcd, unsigned subctxt,
480			const struct qib_tid_info *ti)
481{
482	int ret = 0;
483	u32 tid, ctxttid, cnt, limit, tidcnt;
484	struct qib_devdata *dd = rcd->dd;
485	u64 __iomem *tidbase;
486	unsigned long tidmap[8];
487
488	if (!dd->pageshadow) {
489		ret = -ENOMEM;
490		goto done;
491	}
492
493	if (copy_from_user(tidmap, (void __user *)(unsigned long)ti->tidmap,
494			   sizeof(tidmap))) {
495		ret = -EFAULT;
496		goto done;
497	}
498
499	ctxttid = rcd->ctxt * dd->rcvtidcnt;
500	if (!rcd->subctxt_cnt)
501		tidcnt = dd->rcvtidcnt;
502	else if (!subctxt) {
503		tidcnt = (dd->rcvtidcnt / rcd->subctxt_cnt) +
504			 (dd->rcvtidcnt % rcd->subctxt_cnt);
505		ctxttid += dd->rcvtidcnt - tidcnt;
506	} else {
507		tidcnt = dd->rcvtidcnt / rcd->subctxt_cnt;
508		ctxttid += tidcnt * (subctxt - 1);
509	}
510	tidbase = (u64 __iomem *) ((char __iomem *)(dd->kregbase) +
511				   dd->rcvtidbase +
512				   ctxttid * sizeof(*tidbase));
513
514	limit = sizeof(tidmap) * BITS_PER_BYTE;
515	if (limit > tidcnt)
516		/* just in case size changes in future */
517		limit = tidcnt;
518	tid = find_first_bit(tidmap, limit);
519	for (cnt = 0; tid < limit; tid++) {
520		/*
521		 * small optimization; if we detect a run of 3 or so without
522		 * any set, use find_first_bit again.  That's mainly to
523		 * accelerate the case where we wrapped, so we have some at
524		 * the beginning, and some at the end, and a big gap
525		 * in the middle.
526		 */
527		if (!test_bit(tid, tidmap))
528			continue;
529		cnt++;
530		if (dd->pageshadow[ctxttid + tid]) {
531			struct page *p;
532			dma_addr_t phys;
533
534			p = dd->pageshadow[ctxttid + tid];
535			dd->pageshadow[ctxttid + tid] = NULL;
536			phys = dd->physshadow[ctxttid + tid];
537			dd->physshadow[ctxttid + tid] = dd->tidinvalid;
538			/* PERFORMANCE: below should almost certainly be
539			 * cached
540			 */
541			dd->f_put_tid(dd, &tidbase[tid],
542				      RCVHQ_RCV_TYPE_EXPECTED, dd->tidinvalid);
543			pci_unmap_page(dd->pcidev, phys, PAGE_SIZE,
544				       PCI_DMA_FROMDEVICE);
545			qib_release_user_pages(&p, 1);
546		}
547	}
548done:
549	return ret;
550}
551
552/**
553 * qib_set_part_key - set a partition key
554 * @rcd: the context
555 * @key: the key
556 *
557 * We can have up to 4 active at a time (other than the default, which is
558 * always allowed).  This is somewhat tricky, since multiple contexts may set
559 * the same key, so we reference count them, and clean up at exit.  All 4
560 * partition keys are packed into a single qlogic_ib register.  It's an
561 * error for a process to set the same pkey multiple times.  We provide no
562 * mechanism to de-allocate a pkey at this time, we may eventually need to
563 * do that.  I've used the atomic operations, and no locking, and only make
564 * a single pass through what's available.  This should be more than
565 * adequate for some time. I'll think about spinlocks or the like if and as
566 * it's necessary.
567 */
568static int qib_set_part_key(struct qib_ctxtdata *rcd, u16 key)
569{
570	struct qib_pportdata *ppd = rcd->ppd;
571	int i, any = 0, pidx = -1;
572	u16 lkey = key & 0x7FFF;
573	int ret;
574
575	if (lkey == (QIB_DEFAULT_P_KEY & 0x7FFF)) {
576		/* nothing to do; this key always valid */
577		ret = 0;
578		goto bail;
579	}
580
581	if (!lkey) {
582		ret = -EINVAL;
583		goto bail;
584	}
585
586	/*
587	 * Set the full membership bit, because it has to be
588	 * set in the register or the packet, and it seems
589	 * cleaner to set in the register than to force all
590	 * callers to set it.
591	 */
592	key |= 0x8000;
593
594	for (i = 0; i < ARRAY_SIZE(rcd->pkeys); i++) {
595		if (!rcd->pkeys[i] && pidx == -1)
596			pidx = i;
597		if (rcd->pkeys[i] == key) {
598			ret = -EEXIST;
599			goto bail;
600		}
601	}
602	if (pidx == -1) {
603		ret = -EBUSY;
604		goto bail;
605	}
606	for (any = i = 0; i < ARRAY_SIZE(ppd->pkeys); i++) {
607		if (!ppd->pkeys[i]) {
608			any++;
609			continue;
610		}
611		if (ppd->pkeys[i] == key) {
612			atomic_t *pkrefs = &ppd->pkeyrefs[i];
613
614			if (atomic_inc_return(pkrefs) > 1) {
615				rcd->pkeys[pidx] = key;
616				ret = 0;
617				goto bail;
618			} else {
619				/*
620				 * lost race, decrement count, catch below
621				 */
622				atomic_dec(pkrefs);
623				any++;
624			}
625		}
626		if ((ppd->pkeys[i] & 0x7FFF) == lkey) {
627			/*
628			 * It makes no sense to have both the limited and
629			 * full membership PKEY set at the same time since
630			 * the unlimited one will disable the limited one.
631			 */
632			ret = -EEXIST;
633			goto bail;
634		}
635	}
636	if (!any) {
637		ret = -EBUSY;
638		goto bail;
639	}
640	for (any = i = 0; i < ARRAY_SIZE(ppd->pkeys); i++) {
641		if (!ppd->pkeys[i] &&
642		    atomic_inc_return(&ppd->pkeyrefs[i]) == 1) {
643			rcd->pkeys[pidx] = key;
644			ppd->pkeys[i] = key;
645			(void) ppd->dd->f_set_ib_cfg(ppd, QIB_IB_CFG_PKEYS, 0);
646			ret = 0;
647			goto bail;
648		}
649	}
650	ret = -EBUSY;
651
652bail:
653	return ret;
654}
655
656/**
657 * qib_manage_rcvq - manage a context's receive queue
658 * @rcd: the context
659 * @subctxt: the subcontext
660 * @start_stop: action to carry out
661 *
662 * start_stop == 0 disables receive on the context, for use in queue
663 * overflow conditions.  start_stop==1 re-enables, to be used to
664 * re-init the software copy of the head register
665 */
666static int qib_manage_rcvq(struct qib_ctxtdata *rcd, unsigned subctxt,
667			   int start_stop)
668{
669	struct qib_devdata *dd = rcd->dd;
670	unsigned int rcvctrl_op;
671
672	if (subctxt)
673		goto bail;
674	/* atomically clear receive enable ctxt. */
675	if (start_stop) {
676		/*
677		 * On enable, force in-memory copy of the tail register to
678		 * 0, so that protocol code doesn't have to worry about
679		 * whether or not the chip has yet updated the in-memory
680		 * copy or not on return from the system call. The chip
681		 * always resets it's tail register back to 0 on a
682		 * transition from disabled to enabled.
683		 */
684		if (rcd->rcvhdrtail_kvaddr)
685			qib_clear_rcvhdrtail(rcd);
686		rcvctrl_op = QIB_RCVCTRL_CTXT_ENB;
687	} else
688		rcvctrl_op = QIB_RCVCTRL_CTXT_DIS;
689	dd->f_rcvctrl(rcd->ppd, rcvctrl_op, rcd->ctxt);
690	/* always; new head should be equal to new tail; see above */
691bail:
692	return 0;
693}
694
695static void qib_clean_part_key(struct qib_ctxtdata *rcd,
696			       struct qib_devdata *dd)
697{
698	int i, j, pchanged = 0;
699	u64 oldpkey;
700	struct qib_pportdata *ppd = rcd->ppd;
701
702	/* for debugging only */
703	oldpkey = (u64) ppd->pkeys[0] |
704		((u64) ppd->pkeys[1] << 16) |
705		((u64) ppd->pkeys[2] << 32) |
706		((u64) ppd->pkeys[3] << 48);
707
708	for (i = 0; i < ARRAY_SIZE(rcd->pkeys); i++) {
709		if (!rcd->pkeys[i])
710			continue;
711		for (j = 0; j < ARRAY_SIZE(ppd->pkeys); j++) {
712			/* check for match independent of the global bit */
713			if ((ppd->pkeys[j] & 0x7fff) !=
714			    (rcd->pkeys[i] & 0x7fff))
715				continue;
716			if (atomic_dec_and_test(&ppd->pkeyrefs[j])) {
717				ppd->pkeys[j] = 0;
718				pchanged++;
719			}
720			break;
721		}
722		rcd->pkeys[i] = 0;
723	}
724	if (pchanged)
725		(void) ppd->dd->f_set_ib_cfg(ppd, QIB_IB_CFG_PKEYS, 0);
726}
727
728/* common code for the mappings on dma_alloc_coherent mem */
729static int qib_mmap_mem(struct vm_area_struct *vma, struct qib_ctxtdata *rcd,
730			unsigned len, void *kvaddr, u32 write_ok, char *what)
731{
732	struct qib_devdata *dd = rcd->dd;
733	unsigned long pfn;
734	int ret;
735
736	if ((vma->vm_end - vma->vm_start) > len) {
737		qib_devinfo(dd->pcidev,
738			 "FAIL on %s: len %lx > %x\n", what,
739			 vma->vm_end - vma->vm_start, len);
740		ret = -EFAULT;
741		goto bail;
742	}
743
744	/*
745	 * shared context user code requires rcvhdrq mapped r/w, others
746	 * only allowed readonly mapping.
747	 */
748	if (!write_ok) {
749		if (vma->vm_flags & VM_WRITE) {
750			qib_devinfo(dd->pcidev,
751				 "%s must be mapped readonly\n", what);
752			ret = -EPERM;
753			goto bail;
754		}
755
756		/* don't allow them to later change with mprotect */
757		vma->vm_flags &= ~VM_MAYWRITE;
758	}
759
760	pfn = virt_to_phys(kvaddr) >> PAGE_SHIFT;
761	ret = remap_pfn_range(vma, vma->vm_start, pfn,
762			      len, vma->vm_page_prot);
763	if (ret)
764		qib_devinfo(dd->pcidev,
765			"%s ctxt%u mmap of %lx, %x bytes failed: %d\n",
766			what, rcd->ctxt, pfn, len, ret);
767bail:
768	return ret;
769}
770
771static int mmap_ureg(struct vm_area_struct *vma, struct qib_devdata *dd,
772		     u64 ureg)
773{
774	unsigned long phys;
775	unsigned long sz;
776	int ret;
777
778	/*
779	 * This is real hardware, so use io_remap.  This is the mechanism
780	 * for the user process to update the head registers for their ctxt
781	 * in the chip.
782	 */
783	sz = dd->flags & QIB_HAS_HDRSUPP ? 2 * PAGE_SIZE : PAGE_SIZE;
784	if ((vma->vm_end - vma->vm_start) > sz) {
785		qib_devinfo(dd->pcidev,
786			"FAIL mmap userreg: reqlen %lx > PAGE\n",
787			vma->vm_end - vma->vm_start);
788		ret = -EFAULT;
789	} else {
790		phys = dd->physaddr + ureg;
791		vma->vm_page_prot = pgprot_noncached(vma->vm_page_prot);
792
793		vma->vm_flags |= VM_DONTCOPY | VM_DONTEXPAND;
794		ret = io_remap_pfn_range(vma, vma->vm_start,
795					 phys >> PAGE_SHIFT,
796					 vma->vm_end - vma->vm_start,
797					 vma->vm_page_prot);
798	}
799	return ret;
800}
801
802static int mmap_piobufs(struct vm_area_struct *vma,
803			struct qib_devdata *dd,
804			struct qib_ctxtdata *rcd,
805			unsigned piobufs, unsigned piocnt)
806{
807	unsigned long phys;
808	int ret;
809
810	/*
811	 * When we map the PIO buffers in the chip, we want to map them as
812	 * writeonly, no read possible; unfortunately, x86 doesn't allow
813	 * for this in hardware, but we still prevent users from asking
814	 * for it.
815	 */
816	if ((vma->vm_end - vma->vm_start) > (piocnt * dd->palign)) {
817		qib_devinfo(dd->pcidev,
818			"FAIL mmap piobufs: reqlen %lx > PAGE\n",
819			 vma->vm_end - vma->vm_start);
820		ret = -EINVAL;
821		goto bail;
822	}
823
824	phys = dd->physaddr + piobufs;
825
826#if defined(__powerpc__)
827	/* There isn't a generic way to specify writethrough mappings */
828	pgprot_val(vma->vm_page_prot) |= _PAGE_NO_CACHE;
829	pgprot_val(vma->vm_page_prot) |= _PAGE_WRITETHRU;
830	pgprot_val(vma->vm_page_prot) &= ~_PAGE_GUARDED;
831#endif
832
833	/*
834	 * don't allow them to later change to readable with mprotect (for when
835	 * not initially mapped readable, as is normally the case)
836	 */
837	vma->vm_flags &= ~VM_MAYREAD;
838	vma->vm_flags |= VM_DONTCOPY | VM_DONTEXPAND;
839
840	/* We used PAT if wc_cookie == 0 */
841	if (!dd->wc_cookie)
842		vma->vm_page_prot = pgprot_writecombine(vma->vm_page_prot);
843
844	ret = io_remap_pfn_range(vma, vma->vm_start, phys >> PAGE_SHIFT,
845				 vma->vm_end - vma->vm_start,
846				 vma->vm_page_prot);
847bail:
848	return ret;
849}
850
851static int mmap_rcvegrbufs(struct vm_area_struct *vma,
852			   struct qib_ctxtdata *rcd)
853{
854	struct qib_devdata *dd = rcd->dd;
855	unsigned long start, size;
856	size_t total_size, i;
857	unsigned long pfn;
858	int ret;
859
860	size = rcd->rcvegrbuf_size;
861	total_size = rcd->rcvegrbuf_chunks * size;
862	if ((vma->vm_end - vma->vm_start) > total_size) {
863		qib_devinfo(dd->pcidev,
864			"FAIL on egr bufs: reqlen %lx > actual %lx\n",
865			 vma->vm_end - vma->vm_start,
866			 (unsigned long) total_size);
867		ret = -EINVAL;
868		goto bail;
869	}
870
871	if (vma->vm_flags & VM_WRITE) {
872		qib_devinfo(dd->pcidev,
873			"Can't map eager buffers as writable (flags=%lx)\n",
874			vma->vm_flags);
875		ret = -EPERM;
876		goto bail;
877	}
878	/* don't allow them to later change to writeable with mprotect */
879	vma->vm_flags &= ~VM_MAYWRITE;
880
881	start = vma->vm_start;
882
883	for (i = 0; i < rcd->rcvegrbuf_chunks; i++, start += size) {
884		pfn = virt_to_phys(rcd->rcvegrbuf[i]) >> PAGE_SHIFT;
885		ret = remap_pfn_range(vma, start, pfn, size,
886				      vma->vm_page_prot);
887		if (ret < 0)
888			goto bail;
889	}
890	ret = 0;
891
892bail:
893	return ret;
894}
895
896/*
897 * qib_file_vma_fault - handle a VMA page fault.
898 */
899static int qib_file_vma_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
900{
901	struct page *page;
902
903	page = vmalloc_to_page((void *)(vmf->pgoff << PAGE_SHIFT));
904	if (!page)
905		return VM_FAULT_SIGBUS;
906
907	get_page(page);
908	vmf->page = page;
909
910	return 0;
911}
912
913static struct vm_operations_struct qib_file_vm_ops = {
914	.fault = qib_file_vma_fault,
915};
916
917static int mmap_kvaddr(struct vm_area_struct *vma, u64 pgaddr,
918		       struct qib_ctxtdata *rcd, unsigned subctxt)
919{
920	struct qib_devdata *dd = rcd->dd;
921	unsigned subctxt_cnt;
922	unsigned long len;
923	void *addr;
924	size_t size;
925	int ret = 0;
926
927	subctxt_cnt = rcd->subctxt_cnt;
928	size = rcd->rcvegrbuf_chunks * rcd->rcvegrbuf_size;
929
930	/*
931	 * Each process has all the subctxt uregbase, rcvhdrq, and
932	 * rcvegrbufs mmapped - as an array for all the processes,
933	 * and also separately for this process.
934	 */
935	if (pgaddr == cvt_kvaddr(rcd->subctxt_uregbase)) {
936		addr = rcd->subctxt_uregbase;
937		size = PAGE_SIZE * subctxt_cnt;
938	} else if (pgaddr == cvt_kvaddr(rcd->subctxt_rcvhdr_base)) {
939		addr = rcd->subctxt_rcvhdr_base;
940		size = rcd->rcvhdrq_size * subctxt_cnt;
941	} else if (pgaddr == cvt_kvaddr(rcd->subctxt_rcvegrbuf)) {
942		addr = rcd->subctxt_rcvegrbuf;
943		size *= subctxt_cnt;
944	} else if (pgaddr == cvt_kvaddr(rcd->subctxt_uregbase +
945					PAGE_SIZE * subctxt)) {
946		addr = rcd->subctxt_uregbase + PAGE_SIZE * subctxt;
947		size = PAGE_SIZE;
948	} else if (pgaddr == cvt_kvaddr(rcd->subctxt_rcvhdr_base +
949					rcd->rcvhdrq_size * subctxt)) {
950		addr = rcd->subctxt_rcvhdr_base +
951			rcd->rcvhdrq_size * subctxt;
952		size = rcd->rcvhdrq_size;
953	} else if (pgaddr == cvt_kvaddr(&rcd->user_event_mask[subctxt])) {
954		addr = rcd->user_event_mask;
955		size = PAGE_SIZE;
956	} else if (pgaddr == cvt_kvaddr(rcd->subctxt_rcvegrbuf +
957					size * subctxt)) {
958		addr = rcd->subctxt_rcvegrbuf + size * subctxt;
959		/* rcvegrbufs are read-only on the slave */
960		if (vma->vm_flags & VM_WRITE) {
961			qib_devinfo(dd->pcidev,
962				 "Can't map eager buffers as writable (flags=%lx)\n",
963				 vma->vm_flags);
964			ret = -EPERM;
965			goto bail;
966		}
967		/*
968		 * Don't allow permission to later change to writeable
969		 * with mprotect.
970		 */
971		vma->vm_flags &= ~VM_MAYWRITE;
972	} else
973		goto bail;
974	len = vma->vm_end - vma->vm_start;
975	if (len > size) {
976		ret = -EINVAL;
977		goto bail;
978	}
979
980	vma->vm_pgoff = (unsigned long) addr >> PAGE_SHIFT;
981	vma->vm_ops = &qib_file_vm_ops;
982	vma->vm_flags |= VM_DONTEXPAND | VM_DONTDUMP;
983	ret = 1;
984
985bail:
986	return ret;
987}
988
989/**
990 * qib_mmapf - mmap various structures into user space
991 * @fp: the file pointer
992 * @vma: the VM area
993 *
994 * We use this to have a shared buffer between the kernel and the user code
995 * for the rcvhdr queue, egr buffers, and the per-context user regs and pio
996 * buffers in the chip.  We have the open and close entries so we can bump
997 * the ref count and keep the driver from being unloaded while still mapped.
998 */
999static int qib_mmapf(struct file *fp, struct vm_area_struct *vma)
1000{
1001	struct qib_ctxtdata *rcd;
1002	struct qib_devdata *dd;
1003	u64 pgaddr, ureg;
1004	unsigned piobufs, piocnt;
1005	int ret, match = 1;
1006
1007	rcd = ctxt_fp(fp);
1008	if (!rcd || !(vma->vm_flags & VM_SHARED)) {
1009		ret = -EINVAL;
1010		goto bail;
1011	}
1012	dd = rcd->dd;
1013
1014	/*
1015	 * This is the qib_do_user_init() code, mapping the shared buffers
1016	 * and per-context user registers into the user process. The address
1017	 * referred to by vm_pgoff is the file offset passed via mmap().
1018	 * For shared contexts, this is the kernel vmalloc() address of the
1019	 * pages to share with the master.
1020	 * For non-shared or master ctxts, this is a physical address.
1021	 * We only do one mmap for each space mapped.
1022	 */
1023	pgaddr = vma->vm_pgoff << PAGE_SHIFT;
1024
1025	/*
1026	 * Check for 0 in case one of the allocations failed, but user
1027	 * called mmap anyway.
1028	 */
1029	if (!pgaddr)  {
1030		ret = -EINVAL;
1031		goto bail;
1032	}
1033
1034	/*
1035	 * Physical addresses must fit in 40 bits for our hardware.
1036	 * Check for kernel virtual addresses first, anything else must
1037	 * match a HW or memory address.
1038	 */
1039	ret = mmap_kvaddr(vma, pgaddr, rcd, subctxt_fp(fp));
1040	if (ret) {
1041		if (ret > 0)
1042			ret = 0;
1043		goto bail;
1044	}
1045
1046	ureg = dd->uregbase + dd->ureg_align * rcd->ctxt;
1047	if (!rcd->subctxt_cnt) {
1048		/* ctxt is not shared */
1049		piocnt = rcd->piocnt;
1050		piobufs = rcd->piobufs;
1051	} else if (!subctxt_fp(fp)) {
1052		/* caller is the master */
1053		piocnt = (rcd->piocnt / rcd->subctxt_cnt) +
1054			 (rcd->piocnt % rcd->subctxt_cnt);
1055		piobufs = rcd->piobufs +
1056			dd->palign * (rcd->piocnt - piocnt);
1057	} else {
1058		unsigned slave = subctxt_fp(fp) - 1;
1059
1060		/* caller is a slave */
1061		piocnt = rcd->piocnt / rcd->subctxt_cnt;
1062		piobufs = rcd->piobufs + dd->palign * piocnt * slave;
1063	}
1064
1065	if (pgaddr == ureg)
1066		ret = mmap_ureg(vma, dd, ureg);
1067	else if (pgaddr == piobufs)
1068		ret = mmap_piobufs(vma, dd, rcd, piobufs, piocnt);
1069	else if (pgaddr == dd->pioavailregs_phys)
1070		/* in-memory copy of pioavail registers */
1071		ret = qib_mmap_mem(vma, rcd, PAGE_SIZE,
1072				   (void *) dd->pioavailregs_dma, 0,
1073				   "pioavail registers");
1074	else if (pgaddr == rcd->rcvegr_phys)
1075		ret = mmap_rcvegrbufs(vma, rcd);
1076	else if (pgaddr == (u64) rcd->rcvhdrq_phys)
1077		/*
1078		 * The rcvhdrq itself; multiple pages, contiguous
1079		 * from an i/o perspective.  Shared contexts need
1080		 * to map r/w, so we allow writing.
1081		 */
1082		ret = qib_mmap_mem(vma, rcd, rcd->rcvhdrq_size,
1083				   rcd->rcvhdrq, 1, "rcvhdrq");
1084	else if (pgaddr == (u64) rcd->rcvhdrqtailaddr_phys)
1085		/* in-memory copy of rcvhdrq tail register */
1086		ret = qib_mmap_mem(vma, rcd, PAGE_SIZE,
1087				   rcd->rcvhdrtail_kvaddr, 0,
1088				   "rcvhdrq tail");
1089	else
1090		match = 0;
1091	if (!match)
1092		ret = -EINVAL;
1093
1094	vma->vm_private_data = NULL;
1095
1096	if (ret < 0)
1097		qib_devinfo(dd->pcidev,
1098			 "mmap Failure %d: off %llx len %lx\n",
1099			 -ret, (unsigned long long)pgaddr,
1100			 vma->vm_end - vma->vm_start);
1101bail:
1102	return ret;
1103}
1104
1105static unsigned int qib_poll_urgent(struct qib_ctxtdata *rcd,
1106				    struct file *fp,
1107				    struct poll_table_struct *pt)
1108{
1109	struct qib_devdata *dd = rcd->dd;
1110	unsigned pollflag;
1111
1112	poll_wait(fp, &rcd->wait, pt);
1113
1114	spin_lock_irq(&dd->uctxt_lock);
1115	if (rcd->urgent != rcd->urgent_poll) {
1116		pollflag = POLLIN | POLLRDNORM;
1117		rcd->urgent_poll = rcd->urgent;
1118	} else {
1119		pollflag = 0;
1120		set_bit(QIB_CTXT_WAITING_URG, &rcd->flag);
1121	}
1122	spin_unlock_irq(&dd->uctxt_lock);
1123
1124	return pollflag;
1125}
1126
1127static unsigned int qib_poll_next(struct qib_ctxtdata *rcd,
1128				  struct file *fp,
1129				  struct poll_table_struct *pt)
1130{
1131	struct qib_devdata *dd = rcd->dd;
1132	unsigned pollflag;
1133
1134	poll_wait(fp, &rcd->wait, pt);
1135
1136	spin_lock_irq(&dd->uctxt_lock);
1137	if (dd->f_hdrqempty(rcd)) {
1138		set_bit(QIB_CTXT_WAITING_RCV, &rcd->flag);
1139		dd->f_rcvctrl(rcd->ppd, QIB_RCVCTRL_INTRAVAIL_ENB, rcd->ctxt);
1140		pollflag = 0;
1141	} else
1142		pollflag = POLLIN | POLLRDNORM;
1143	spin_unlock_irq(&dd->uctxt_lock);
1144
1145	return pollflag;
1146}
1147
1148static unsigned int qib_poll(struct file *fp, struct poll_table_struct *pt)
1149{
1150	struct qib_ctxtdata *rcd;
1151	unsigned pollflag;
1152
1153	rcd = ctxt_fp(fp);
1154	if (!rcd)
1155		pollflag = POLLERR;
1156	else if (rcd->poll_type == QIB_POLL_TYPE_URGENT)
1157		pollflag = qib_poll_urgent(rcd, fp, pt);
1158	else  if (rcd->poll_type == QIB_POLL_TYPE_ANYRCV)
1159		pollflag = qib_poll_next(rcd, fp, pt);
1160	else /* invalid */
1161		pollflag = POLLERR;
1162
1163	return pollflag;
1164}
1165
1166static void assign_ctxt_affinity(struct file *fp, struct qib_devdata *dd)
1167{
1168	struct qib_filedata *fd = fp->private_data;
1169	const unsigned int weight = cpumask_weight(&current->cpus_allowed);
1170	const struct cpumask *local_mask = cpumask_of_pcibus(dd->pcidev->bus);
1171	int local_cpu;
1172
1173	/*
1174	 * If process has NOT already set it's affinity, select and
1175	 * reserve a processor for it on the local NUMA node.
1176	 */
1177	if ((weight >= qib_cpulist_count) &&
1178		(cpumask_weight(local_mask) <= qib_cpulist_count)) {
1179		for_each_cpu(local_cpu, local_mask)
1180			if (!test_and_set_bit(local_cpu, qib_cpulist)) {
1181				fd->rec_cpu_num = local_cpu;
1182				return;
1183			}
1184	}
1185
1186	/*
1187	 * If process has NOT already set it's affinity, select and
1188	 * reserve a processor for it, as a rendevous for all
1189	 * users of the driver.  If they don't actually later
1190	 * set affinity to this cpu, or set it to some other cpu,
1191	 * it just means that sooner or later we don't recommend
1192	 * a cpu, and let the scheduler do it's best.
1193	 */
1194	if (weight >= qib_cpulist_count) {
1195		int cpu;
1196
1197		cpu = find_first_zero_bit(qib_cpulist,
1198					  qib_cpulist_count);
1199		if (cpu == qib_cpulist_count)
1200			qib_dev_err(dd,
1201			"no cpus avail for affinity PID %u\n",
1202			current->pid);
1203		else {
1204			__set_bit(cpu, qib_cpulist);
1205			fd->rec_cpu_num = cpu;
1206		}
1207	}
1208}
1209
1210/*
1211 * Check that userland and driver are compatible for subcontexts.
1212 */
1213static int qib_compatible_subctxts(int user_swmajor, int user_swminor)
1214{
1215	/* this code is written long-hand for clarity */
1216	if (QIB_USER_SWMAJOR != user_swmajor) {
1217		/* no promise of compatibility if major mismatch */
1218		return 0;
1219	}
1220	if (QIB_USER_SWMAJOR == 1) {
1221		switch (QIB_USER_SWMINOR) {
1222		case 0:
1223		case 1:
1224		case 2:
1225			/* no subctxt implementation so cannot be compatible */
1226			return 0;
1227		case 3:
1228			/* 3 is only compatible with itself */
1229			return user_swminor == 3;
1230		default:
1231			/* >= 4 are compatible (or are expected to be) */
1232			return user_swminor <= QIB_USER_SWMINOR;
1233		}
1234	}
1235	/* make no promises yet for future major versions */
1236	return 0;
1237}
1238
1239static int init_subctxts(struct qib_devdata *dd,
1240			 struct qib_ctxtdata *rcd,
1241			 const struct qib_user_info *uinfo)
1242{
1243	int ret = 0;
1244	unsigned num_subctxts;
1245	size_t size;
1246
1247	/*
1248	 * If the user is requesting zero subctxts,
1249	 * skip the subctxt allocation.
1250	 */
1251	if (uinfo->spu_subctxt_cnt <= 0)
1252		goto bail;
1253	num_subctxts = uinfo->spu_subctxt_cnt;
1254
1255	/* Check for subctxt compatibility */
1256	if (!qib_compatible_subctxts(uinfo->spu_userversion >> 16,
1257		uinfo->spu_userversion & 0xffff)) {
1258		qib_devinfo(dd->pcidev,
1259			 "Mismatched user version (%d.%d) and driver version (%d.%d) while context sharing. Ensure that driver and library are from the same release.\n",
1260			 (int) (uinfo->spu_userversion >> 16),
1261			 (int) (uinfo->spu_userversion & 0xffff),
1262			 QIB_USER_SWMAJOR, QIB_USER_SWMINOR);
1263		goto bail;
1264	}
1265	if (num_subctxts > QLOGIC_IB_MAX_SUBCTXT) {
1266		ret = -EINVAL;
1267		goto bail;
1268	}
1269
1270	rcd->subctxt_uregbase = vmalloc_user(PAGE_SIZE * num_subctxts);
1271	if (!rcd->subctxt_uregbase) {
1272		ret = -ENOMEM;
1273		goto bail;
1274	}
1275	/* Note: rcd->rcvhdrq_size isn't initialized yet. */
1276	size = ALIGN(dd->rcvhdrcnt * dd->rcvhdrentsize *
1277		     sizeof(u32), PAGE_SIZE) * num_subctxts;
1278	rcd->subctxt_rcvhdr_base = vmalloc_user(size);
1279	if (!rcd->subctxt_rcvhdr_base) {
1280		ret = -ENOMEM;
1281		goto bail_ureg;
1282	}
1283
1284	rcd->subctxt_rcvegrbuf = vmalloc_user(rcd->rcvegrbuf_chunks *
1285					      rcd->rcvegrbuf_size *
1286					      num_subctxts);
1287	if (!rcd->subctxt_rcvegrbuf) {
1288		ret = -ENOMEM;
1289		goto bail_rhdr;
1290	}
1291
1292	rcd->subctxt_cnt = uinfo->spu_subctxt_cnt;
1293	rcd->subctxt_id = uinfo->spu_subctxt_id;
1294	rcd->active_slaves = 1;
1295	rcd->redirect_seq_cnt = 1;
1296	set_bit(QIB_CTXT_MASTER_UNINIT, &rcd->flag);
1297	goto bail;
1298
1299bail_rhdr:
1300	vfree(rcd->subctxt_rcvhdr_base);
1301bail_ureg:
1302	vfree(rcd->subctxt_uregbase);
1303	rcd->subctxt_uregbase = NULL;
1304bail:
1305	return ret;
1306}
1307
1308static int setup_ctxt(struct qib_pportdata *ppd, int ctxt,
1309		      struct file *fp, const struct qib_user_info *uinfo)
1310{
1311	struct qib_filedata *fd = fp->private_data;
1312	struct qib_devdata *dd = ppd->dd;
1313	struct qib_ctxtdata *rcd;
1314	void *ptmp = NULL;
1315	int ret;
1316	int numa_id;
1317
1318	assign_ctxt_affinity(fp, dd);
1319
1320	numa_id = qib_numa_aware ? ((fd->rec_cpu_num != -1) ?
1321		cpu_to_node(fd->rec_cpu_num) :
1322		numa_node_id()) : dd->assigned_node_id;
1323
1324	rcd = qib_create_ctxtdata(ppd, ctxt, numa_id);
1325
1326	/*
1327	 * Allocate memory for use in qib_tid_update() at open to
1328	 * reduce cost of expected send setup per message segment
1329	 */
1330	if (rcd)
1331		ptmp = kmalloc(dd->rcvtidcnt * sizeof(u16) +
1332			       dd->rcvtidcnt * sizeof(struct page **),
1333			       GFP_KERNEL);
1334
1335	if (!rcd || !ptmp) {
1336		qib_dev_err(dd,
1337			"Unable to allocate ctxtdata memory, failing open\n");
1338		ret = -ENOMEM;
1339		goto bailerr;
1340	}
1341	rcd->userversion = uinfo->spu_userversion;
1342	ret = init_subctxts(dd, rcd, uinfo);
1343	if (ret)
1344		goto bailerr;
1345	rcd->tid_pg_list = ptmp;
1346	rcd->pid = current->pid;
1347	init_waitqueue_head(&dd->rcd[ctxt]->wait);
1348	strlcpy(rcd->comm, current->comm, sizeof(rcd->comm));
1349	ctxt_fp(fp) = rcd;
1350	qib_stats.sps_ctxts++;
1351	dd->freectxts--;
1352	ret = 0;
1353	goto bail;
1354
1355bailerr:
1356	if (fd->rec_cpu_num != -1)
1357		__clear_bit(fd->rec_cpu_num, qib_cpulist);
1358
1359	dd->rcd[ctxt] = NULL;
1360	kfree(rcd);
1361	kfree(ptmp);
1362bail:
1363	return ret;
1364}
1365
1366static inline int usable(struct qib_pportdata *ppd)
1367{
1368	struct qib_devdata *dd = ppd->dd;
1369
1370	return dd && (dd->flags & QIB_PRESENT) && dd->kregbase && ppd->lid &&
1371		(ppd->lflags & QIBL_LINKACTIVE);
1372}
1373
1374/*
1375 * Select a context on the given device, either using a requested port
1376 * or the port based on the context number.
1377 */
1378static int choose_port_ctxt(struct file *fp, struct qib_devdata *dd, u32 port,
1379			    const struct qib_user_info *uinfo)
1380{
1381	struct qib_pportdata *ppd = NULL;
1382	int ret, ctxt;
1383
1384	if (port) {
1385		if (!usable(dd->pport + port - 1)) {
1386			ret = -ENETDOWN;
1387			goto done;
1388		} else
1389			ppd = dd->pport + port - 1;
1390	}
1391	for (ctxt = dd->first_user_ctxt; ctxt < dd->cfgctxts && dd->rcd[ctxt];
1392	     ctxt++)
1393		;
1394	if (ctxt == dd->cfgctxts) {
1395		ret = -EBUSY;
1396		goto done;
1397	}
1398	if (!ppd) {
1399		u32 pidx = ctxt % dd->num_pports;
1400
1401		if (usable(dd->pport + pidx))
1402			ppd = dd->pport + pidx;
1403		else {
1404			for (pidx = 0; pidx < dd->num_pports && !ppd;
1405			     pidx++)
1406				if (usable(dd->pport + pidx))
1407					ppd = dd->pport + pidx;
1408		}
1409	}
1410	ret = ppd ? setup_ctxt(ppd, ctxt, fp, uinfo) : -ENETDOWN;
1411done:
1412	return ret;
1413}
1414
1415static int find_free_ctxt(int unit, struct file *fp,
1416			  const struct qib_user_info *uinfo)
1417{
1418	struct qib_devdata *dd = qib_lookup(unit);
1419	int ret;
1420
1421	if (!dd || (uinfo->spu_port && uinfo->spu_port > dd->num_pports))
1422		ret = -ENODEV;
1423	else
1424		ret = choose_port_ctxt(fp, dd, uinfo->spu_port, uinfo);
1425
1426	return ret;
1427}
1428
1429static int get_a_ctxt(struct file *fp, const struct qib_user_info *uinfo,
1430		      unsigned alg)
1431{
1432	struct qib_devdata *udd = NULL;
1433	int ret = 0, devmax, npresent, nup, ndev, dusable = 0, i;
1434	u32 port = uinfo->spu_port, ctxt;
1435
1436	devmax = qib_count_units(&npresent, &nup);
1437	if (!npresent) {
1438		ret = -ENXIO;
1439		goto done;
1440	}
1441	if (nup == 0) {
1442		ret = -ENETDOWN;
1443		goto done;
1444	}
1445
1446	if (alg == QIB_PORT_ALG_ACROSS) {
1447		unsigned inuse = ~0U;
1448
1449		/* find device (with ACTIVE ports) with fewest ctxts in use */
1450		for (ndev = 0; ndev < devmax; ndev++) {
1451			struct qib_devdata *dd = qib_lookup(ndev);
1452			unsigned cused = 0, cfree = 0, pusable = 0;
1453
1454			if (!dd)
1455				continue;
1456			if (port && port <= dd->num_pports &&
1457			    usable(dd->pport + port - 1))
1458				pusable = 1;
1459			else
1460				for (i = 0; i < dd->num_pports; i++)
1461					if (usable(dd->pport + i))
1462						pusable++;
1463			if (!pusable)
1464				continue;
1465			for (ctxt = dd->first_user_ctxt; ctxt < dd->cfgctxts;
1466			     ctxt++)
1467				if (dd->rcd[ctxt])
1468					cused++;
1469				else
1470					cfree++;
1471			if (cfree && cused < inuse) {
1472				udd = dd;
1473				inuse = cused;
1474			}
1475		}
1476		if (udd) {
1477			ret = choose_port_ctxt(fp, udd, port, uinfo);
1478			goto done;
1479		}
1480	} else {
1481		for (ndev = 0; ndev < devmax; ndev++) {
1482			struct qib_devdata *dd = qib_lookup(ndev);
1483
1484			if (dd) {
1485				ret = choose_port_ctxt(fp, dd, port, uinfo);
1486				if (!ret)
1487					goto done;
1488				if (ret == -EBUSY)
1489					dusable++;
1490			}
1491		}
1492	}
1493	ret = dusable ? -EBUSY : -ENETDOWN;
1494
1495done:
1496	return ret;
1497}
1498
1499static int find_shared_ctxt(struct file *fp,
1500			    const struct qib_user_info *uinfo)
1501{
1502	int devmax, ndev, i;
1503	int ret = 0;
1504
1505	devmax = qib_count_units(NULL, NULL);
1506
1507	for (ndev = 0; ndev < devmax; ndev++) {
1508		struct qib_devdata *dd = qib_lookup(ndev);
1509
1510		/* device portion of usable() */
1511		if (!(dd && (dd->flags & QIB_PRESENT) && dd->kregbase))
1512			continue;
1513		for (i = dd->first_user_ctxt; i < dd->cfgctxts; i++) {
1514			struct qib_ctxtdata *rcd = dd->rcd[i];
1515
1516			/* Skip ctxts which are not yet open */
1517			if (!rcd || !rcd->cnt)
1518				continue;
1519			/* Skip ctxt if it doesn't match the requested one */
1520			if (rcd->subctxt_id != uinfo->spu_subctxt_id)
1521				continue;
1522			/* Verify the sharing process matches the master */
1523			if (rcd->subctxt_cnt != uinfo->spu_subctxt_cnt ||
1524			    rcd->userversion != uinfo->spu_userversion ||
1525			    rcd->cnt >= rcd->subctxt_cnt) {
1526				ret = -EINVAL;
1527				goto done;
1528			}
1529			ctxt_fp(fp) = rcd;
1530			subctxt_fp(fp) = rcd->cnt++;
1531			rcd->subpid[subctxt_fp(fp)] = current->pid;
1532			tidcursor_fp(fp) = 0;
1533			rcd->active_slaves |= 1 << subctxt_fp(fp);
1534			ret = 1;
1535			goto done;
1536		}
1537	}
1538
1539done:
1540	return ret;
1541}
1542
1543static int qib_open(struct inode *in, struct file *fp)
1544{
1545	/* The real work is performed later in qib_assign_ctxt() */
1546	fp->private_data = kzalloc(sizeof(struct qib_filedata), GFP_KERNEL);
1547	if (fp->private_data) /* no cpu affinity by default */
1548		((struct qib_filedata *)fp->private_data)->rec_cpu_num = -1;
1549	return fp->private_data ? 0 : -ENOMEM;
1550}
1551
1552static int find_hca(unsigned int cpu, int *unit)
1553{
1554	int ret = 0, devmax, npresent, nup, ndev;
1555
1556	*unit = -1;
1557
1558	devmax = qib_count_units(&npresent, &nup);
1559	if (!npresent) {
1560		ret = -ENXIO;
1561		goto done;
1562	}
1563	if (!nup) {
1564		ret = -ENETDOWN;
1565		goto done;
1566	}
1567	for (ndev = 0; ndev < devmax; ndev++) {
1568		struct qib_devdata *dd = qib_lookup(ndev);
1569
1570		if (dd) {
1571			if (pcibus_to_node(dd->pcidev->bus) < 0) {
1572				ret = -EINVAL;
1573				goto done;
1574			}
1575			if (cpu_to_node(cpu) ==
1576				pcibus_to_node(dd->pcidev->bus)) {
1577				*unit = ndev;
1578				goto done;
1579			}
1580		}
1581	}
1582done:
1583	return ret;
1584}
1585
1586static int do_qib_user_sdma_queue_create(struct file *fp)
1587{
1588	struct qib_filedata *fd = fp->private_data;
1589	struct qib_ctxtdata *rcd = fd->rcd;
1590	struct qib_devdata *dd = rcd->dd;
1591
1592	if (dd->flags & QIB_HAS_SEND_DMA) {
1593
1594		fd->pq = qib_user_sdma_queue_create(&dd->pcidev->dev,
1595						    dd->unit,
1596						    rcd->ctxt,
1597						    fd->subctxt);
1598		if (!fd->pq)
1599			return -ENOMEM;
1600	}
1601
1602	return 0;
1603}
1604
1605/*
1606 * Get ctxt early, so can set affinity prior to memory allocation.
1607 */
1608static int qib_assign_ctxt(struct file *fp, const struct qib_user_info *uinfo)
1609{
1610	int ret;
1611	int i_minor;
1612	unsigned swmajor, swminor, alg = QIB_PORT_ALG_ACROSS;
1613
1614	/* Check to be sure we haven't already initialized this file */
1615	if (ctxt_fp(fp)) {
1616		ret = -EINVAL;
1617		goto done;
1618	}
1619
1620	/* for now, if major version is different, bail */
1621	swmajor = uinfo->spu_userversion >> 16;
1622	if (swmajor != QIB_USER_SWMAJOR) {
1623		ret = -ENODEV;
1624		goto done;
1625	}
1626
1627	swminor = uinfo->spu_userversion & 0xffff;
1628
1629	if (swminor >= 11 && uinfo->spu_port_alg < QIB_PORT_ALG_COUNT)
1630		alg = uinfo->spu_port_alg;
1631
1632	mutex_lock(&qib_mutex);
1633
1634	if (qib_compatible_subctxts(swmajor, swminor) &&
1635	    uinfo->spu_subctxt_cnt) {
1636		ret = find_shared_ctxt(fp, uinfo);
1637		if (ret > 0) {
1638			ret = do_qib_user_sdma_queue_create(fp);
1639			if (!ret)
1640				assign_ctxt_affinity(fp, (ctxt_fp(fp))->dd);
1641			goto done_ok;
1642		}
1643	}
1644
1645	i_minor = iminor(file_inode(fp)) - QIB_USER_MINOR_BASE;
1646	if (i_minor)
1647		ret = find_free_ctxt(i_minor - 1, fp, uinfo);
1648	else {
1649		int unit;
1650		const unsigned int cpu = cpumask_first(&current->cpus_allowed);
1651		const unsigned int weight =
1652			cpumask_weight(&current->cpus_allowed);
1653
1654		if (weight == 1 && !test_bit(cpu, qib_cpulist))
1655			if (!find_hca(cpu, &unit) && unit >= 0)
1656				if (!find_free_ctxt(unit, fp, uinfo)) {
1657					ret = 0;
1658					goto done_chk_sdma;
1659				}
1660		ret = get_a_ctxt(fp, uinfo, alg);
1661	}
1662
1663done_chk_sdma:
1664	if (!ret)
1665		ret = do_qib_user_sdma_queue_create(fp);
1666done_ok:
1667	mutex_unlock(&qib_mutex);
1668
1669done:
1670	return ret;
1671}
1672
1673
1674static int qib_do_user_init(struct file *fp,
1675			    const struct qib_user_info *uinfo)
1676{
1677	int ret;
1678	struct qib_ctxtdata *rcd = ctxt_fp(fp);
1679	struct qib_devdata *dd;
1680	unsigned uctxt;
1681
1682	/* Subctxts don't need to initialize anything since master did it. */
1683	if (subctxt_fp(fp)) {
1684		ret = wait_event_interruptible(rcd->wait,
1685			!test_bit(QIB_CTXT_MASTER_UNINIT, &rcd->flag));
1686		goto bail;
1687	}
1688
1689	dd = rcd->dd;
1690
1691	/* some ctxts may get extra buffers, calculate that here */
1692	uctxt = rcd->ctxt - dd->first_user_ctxt;
1693	if (uctxt < dd->ctxts_extrabuf) {
1694		rcd->piocnt = dd->pbufsctxt + 1;
1695		rcd->pio_base = rcd->piocnt * uctxt;
1696	} else {
1697		rcd->piocnt = dd->pbufsctxt;
1698		rcd->pio_base = rcd->piocnt * uctxt +
1699			dd->ctxts_extrabuf;
1700	}
1701
1702	/*
1703	 * All user buffers are 2KB buffers.  If we ever support
1704	 * giving 4KB buffers to user processes, this will need some
1705	 * work.  Can't use piobufbase directly, because it has
1706	 * both 2K and 4K buffer base values.  So check and handle.
1707	 */
1708	if ((rcd->pio_base + rcd->piocnt) > dd->piobcnt2k) {
1709		if (rcd->pio_base >= dd->piobcnt2k) {
1710			qib_dev_err(dd,
1711				    "%u:ctxt%u: no 2KB buffers available\n",
1712				    dd->unit, rcd->ctxt);
1713			ret = -ENOBUFS;
1714			goto bail;
1715		}
1716		rcd->piocnt = dd->piobcnt2k - rcd->pio_base;
1717		qib_dev_err(dd, "Ctxt%u: would use 4KB bufs, using %u\n",
1718			    rcd->ctxt, rcd->piocnt);
1719	}
1720
1721	rcd->piobufs = dd->pio2k_bufbase + rcd->pio_base * dd->palign;
1722	qib_chg_pioavailkernel(dd, rcd->pio_base, rcd->piocnt,
1723			       TXCHK_CHG_TYPE_USER, rcd);
1724	/*
1725	 * try to ensure that processes start up with consistent avail update
1726	 * for their own range, at least.   If system very quiet, it might
1727	 * have the in-memory copy out of date at startup for this range of
1728	 * buffers, when a context gets re-used.  Do after the chg_pioavail
1729	 * and before the rest of setup, so it's "almost certain" the dma
1730	 * will have occurred (can't 100% guarantee, but should be many
1731	 * decimals of 9s, with this ordering), given how much else happens
1732	 * after this.
1733	 */
1734	dd->f_sendctrl(dd->pport, QIB_SENDCTRL_AVAIL_BLIP);
1735
1736	/*
1737	 * Now allocate the rcvhdr Q and eager TIDs; skip the TID
1738	 * array for time being.  If rcd->ctxt > chip-supported,
1739	 * we need to do extra stuff here to handle by handling overflow
1740	 * through ctxt 0, someday
1741	 */
1742	ret = qib_create_rcvhdrq(dd, rcd);
1743	if (!ret)
1744		ret = qib_setup_eagerbufs(rcd);
1745	if (ret)
1746		goto bail_pio;
1747
1748	rcd->tidcursor = 0; /* start at beginning after open */
1749
1750	/* initialize poll variables... */
1751	rcd->urgent = 0;
1752	rcd->urgent_poll = 0;
1753
1754	/*
1755	 * Now enable the ctxt for receive.
1756	 * For chips that are set to DMA the tail register to memory
1757	 * when they change (and when the update bit transitions from
1758	 * 0 to 1.  So for those chips, we turn it off and then back on.
1759	 * This will (very briefly) affect any other open ctxts, but the
1760	 * duration is very short, and therefore isn't an issue.  We
1761	 * explicitly set the in-memory tail copy to 0 beforehand, so we
1762	 * don't have to wait to be sure the DMA update has happened
1763	 * (chip resets head/tail to 0 on transition to enable).
1764	 */
1765	if (rcd->rcvhdrtail_kvaddr)
1766		qib_clear_rcvhdrtail(rcd);
1767
1768	dd->f_rcvctrl(rcd->ppd, QIB_RCVCTRL_CTXT_ENB | QIB_RCVCTRL_TIDFLOW_ENB,
1769		      rcd->ctxt);
1770
1771	/* Notify any waiting slaves */
1772	if (rcd->subctxt_cnt) {
1773		clear_bit(QIB_CTXT_MASTER_UNINIT, &rcd->flag);
1774		wake_up(&rcd->wait);
1775	}
1776	return 0;
1777
1778bail_pio:
1779	qib_chg_pioavailkernel(dd, rcd->pio_base, rcd->piocnt,
1780			       TXCHK_CHG_TYPE_KERN, rcd);
1781bail:
1782	return ret;
1783}
1784
1785/**
1786 * unlock_exptid - unlock any expected TID entries context still had in use
1787 * @rcd: ctxt
1788 *
1789 * We don't actually update the chip here, because we do a bulk update
1790 * below, using f_clear_tids.
1791 */
1792static void unlock_expected_tids(struct qib_ctxtdata *rcd)
1793{
1794	struct qib_devdata *dd = rcd->dd;
1795	int ctxt_tidbase = rcd->ctxt * dd->rcvtidcnt;
1796	int i, cnt = 0, maxtid = ctxt_tidbase + dd->rcvtidcnt;
1797
1798	for (i = ctxt_tidbase; i < maxtid; i++) {
1799		struct page *p = dd->pageshadow[i];
1800		dma_addr_t phys;
1801
1802		if (!p)
1803			continue;
1804
1805		phys = dd->physshadow[i];
1806		dd->physshadow[i] = dd->tidinvalid;
1807		dd->pageshadow[i] = NULL;
1808		pci_unmap_page(dd->pcidev, phys, PAGE_SIZE,
1809			       PCI_DMA_FROMDEVICE);
1810		qib_release_user_pages(&p, 1);
1811		cnt++;
1812	}
1813}
1814
1815static int qib_close(struct inode *in, struct file *fp)
1816{
1817	int ret = 0;
1818	struct qib_filedata *fd;
1819	struct qib_ctxtdata *rcd;
1820	struct qib_devdata *dd;
1821	unsigned long flags;
1822	unsigned ctxt;
1823	pid_t pid;
1824
1825	mutex_lock(&qib_mutex);
1826
1827	fd = fp->private_data;
1828	fp->private_data = NULL;
1829	rcd = fd->rcd;
1830	if (!rcd) {
1831		mutex_unlock(&qib_mutex);
1832		goto bail;
1833	}
1834
1835	dd = rcd->dd;
1836
1837	/* ensure all pio buffer writes in progress are flushed */
1838	qib_flush_wc();
1839
1840	/* drain user sdma queue */
1841	if (fd->pq) {
1842		qib_user_sdma_queue_drain(rcd->ppd, fd->pq);
1843		qib_user_sdma_queue_destroy(fd->pq);
1844	}
1845
1846	if (fd->rec_cpu_num != -1)
1847		__clear_bit(fd->rec_cpu_num, qib_cpulist);
1848
1849	if (--rcd->cnt) {
1850		/*
1851		 * XXX If the master closes the context before the slave(s),
1852		 * revoke the mmap for the eager receive queue so
1853		 * the slave(s) don't wait for receive data forever.
1854		 */
1855		rcd->active_slaves &= ~(1 << fd->subctxt);
1856		rcd->subpid[fd->subctxt] = 0;
1857		mutex_unlock(&qib_mutex);
1858		goto bail;
1859	}
1860
1861	/* early; no interrupt users after this */
1862	spin_lock_irqsave(&dd->uctxt_lock, flags);
1863	ctxt = rcd->ctxt;
1864	dd->rcd[ctxt] = NULL;
1865	pid = rcd->pid;
1866	rcd->pid = 0;
1867	spin_unlock_irqrestore(&dd->uctxt_lock, flags);
1868
1869	if (rcd->rcvwait_to || rcd->piowait_to ||
1870	    rcd->rcvnowait || rcd->pionowait) {
1871		rcd->rcvwait_to = 0;
1872		rcd->piowait_to = 0;
1873		rcd->rcvnowait = 0;
1874		rcd->pionowait = 0;
1875	}
1876	if (rcd->flag)
1877		rcd->flag = 0;
1878
1879	if (dd->kregbase) {
1880		/* atomically clear receive enable ctxt and intr avail. */
1881		dd->f_rcvctrl(rcd->ppd, QIB_RCVCTRL_CTXT_DIS |
1882				  QIB_RCVCTRL_INTRAVAIL_DIS, ctxt);
1883
1884		/* clean up the pkeys for this ctxt user */
1885		qib_clean_part_key(rcd, dd);
1886		qib_disarm_piobufs(dd, rcd->pio_base, rcd->piocnt);
1887		qib_chg_pioavailkernel(dd, rcd->pio_base,
1888				       rcd->piocnt, TXCHK_CHG_TYPE_KERN, NULL);
1889
1890		dd->f_clear_tids(dd, rcd);
1891
1892		if (dd->pageshadow)
1893			unlock_expected_tids(rcd);
1894		qib_stats.sps_ctxts--;
1895		dd->freectxts++;
1896	}
1897
1898	mutex_unlock(&qib_mutex);
1899	qib_free_ctxtdata(dd, rcd); /* after releasing the mutex */
1900
1901bail:
1902	kfree(fd);
1903	return ret;
1904}
1905
1906static int qib_ctxt_info(struct file *fp, struct qib_ctxt_info __user *uinfo)
1907{
1908	struct qib_ctxt_info info;
1909	int ret;
1910	size_t sz;
1911	struct qib_ctxtdata *rcd = ctxt_fp(fp);
1912	struct qib_filedata *fd;
1913
1914	fd = fp->private_data;
1915
1916	info.num_active = qib_count_active_units();
1917	info.unit = rcd->dd->unit;
1918	info.port = rcd->ppd->port;
1919	info.ctxt = rcd->ctxt;
1920	info.subctxt =  subctxt_fp(fp);
1921	/* Number of user ctxts available for this device. */
1922	info.num_ctxts = rcd->dd->cfgctxts - rcd->dd->first_user_ctxt;
1923	info.num_subctxts = rcd->subctxt_cnt;
1924	info.rec_cpu = fd->rec_cpu_num;
1925	sz = sizeof(info);
1926
1927	if (copy_to_user(uinfo, &info, sz)) {
1928		ret = -EFAULT;
1929		goto bail;
1930	}
1931	ret = 0;
1932
1933bail:
1934	return ret;
1935}
1936
1937static int qib_sdma_get_inflight(struct qib_user_sdma_queue *pq,
1938				 u32 __user *inflightp)
1939{
1940	const u32 val = qib_user_sdma_inflight_counter(pq);
1941
1942	if (put_user(val, inflightp))
1943		return -EFAULT;
1944
1945	return 0;
1946}
1947
1948static int qib_sdma_get_complete(struct qib_pportdata *ppd,
1949				 struct qib_user_sdma_queue *pq,
1950				 u32 __user *completep)
1951{
1952	u32 val;
1953	int err;
1954
1955	if (!pq)
1956		return -EINVAL;
1957
1958	err = qib_user_sdma_make_progress(ppd, pq);
1959	if (err < 0)
1960		return err;
1961
1962	val = qib_user_sdma_complete_counter(pq);
1963	if (put_user(val, completep))
1964		return -EFAULT;
1965
1966	return 0;
1967}
1968
1969static int disarm_req_delay(struct qib_ctxtdata *rcd)
1970{
1971	int ret = 0;
1972
1973	if (!usable(rcd->ppd)) {
1974		int i;
1975		/*
1976		 * if link is down, or otherwise not usable, delay
1977		 * the caller up to 30 seconds, so we don't thrash
1978		 * in trying to get the chip back to ACTIVE, and
1979		 * set flag so they make the call again.
1980		 */
1981		if (rcd->user_event_mask) {
1982			/*
1983			 * subctxt_cnt is 0 if not shared, so do base
1984			 * separately, first, then remaining subctxt, if any
1985			 */
1986			set_bit(_QIB_EVENT_DISARM_BUFS_BIT,
1987				&rcd->user_event_mask[0]);
1988			for (i = 1; i < rcd->subctxt_cnt; i++)
1989				set_bit(_QIB_EVENT_DISARM_BUFS_BIT,
1990					&rcd->user_event_mask[i]);
1991		}
1992		for (i = 0; !usable(rcd->ppd) && i < 300; i++)
1993			msleep(100);
1994		ret = -ENETDOWN;
1995	}
1996	return ret;
1997}
1998
1999/*
2000 * Find all user contexts in use, and set the specified bit in their
2001 * event mask.
2002 * See also find_ctxt() for a similar use, that is specific to send buffers.
2003 */
2004int qib_set_uevent_bits(struct qib_pportdata *ppd, const int evtbit)
2005{
2006	struct qib_ctxtdata *rcd;
2007	unsigned ctxt;
2008	int ret = 0;
2009	unsigned long flags;
2010
2011	spin_lock_irqsave(&ppd->dd->uctxt_lock, flags);
2012	for (ctxt = ppd->dd->first_user_ctxt; ctxt < ppd->dd->cfgctxts;
2013	     ctxt++) {
2014		rcd = ppd->dd->rcd[ctxt];
2015		if (!rcd)
2016			continue;
2017		if (rcd->user_event_mask) {
2018			int i;
2019			/*
2020			 * subctxt_cnt is 0 if not shared, so do base
2021			 * separately, first, then remaining subctxt, if any
2022			 */
2023			set_bit(evtbit, &rcd->user_event_mask[0]);
2024			for (i = 1; i < rcd->subctxt_cnt; i++)
2025				set_bit(evtbit, &rcd->user_event_mask[i]);
2026		}
2027		ret = 1;
2028		break;
2029	}
2030	spin_unlock_irqrestore(&ppd->dd->uctxt_lock, flags);
2031
2032	return ret;
2033}
2034
2035/*
2036 * clear the event notifier events for this context.
2037 * For the DISARM_BUFS case, we also take action (this obsoletes
2038 * the older QIB_CMD_DISARM_BUFS, but we keep it for backwards
2039 * compatibility.
2040 * Other bits don't currently require actions, just atomically clear.
2041 * User process then performs actions appropriate to bit having been
2042 * set, if desired, and checks again in future.
2043 */
2044static int qib_user_event_ack(struct qib_ctxtdata *rcd, int subctxt,
2045			      unsigned long events)
2046{
2047	int ret = 0, i;
2048
2049	for (i = 0; i <= _QIB_MAX_EVENT_BIT; i++) {
2050		if (!test_bit(i, &events))
2051			continue;
2052		if (i == _QIB_EVENT_DISARM_BUFS_BIT) {
2053			(void)qib_disarm_piobufs_ifneeded(rcd);
2054			ret = disarm_req_delay(rcd);
2055		} else
2056			clear_bit(i, &rcd->user_event_mask[subctxt]);
2057	}
2058	return ret;
2059}
2060
2061static ssize_t qib_write(struct file *fp, const char __user *data,
2062			 size_t count, loff_t *off)
2063{
2064	const struct qib_cmd __user *ucmd;
2065	struct qib_ctxtdata *rcd;
2066	const void __user *src;
2067	size_t consumed, copy = 0;
2068	struct qib_cmd cmd;
2069	ssize_t ret = 0;
2070	void *dest;
2071
2072	if (WARN_ON_ONCE(!ib_safe_file_access(fp)))
2073		return -EACCES;
2074
2075	if (count < sizeof(cmd.type)) {
2076		ret = -EINVAL;
2077		goto bail;
2078	}
2079
2080	ucmd = (const struct qib_cmd __user *) data;
2081
2082	if (copy_from_user(&cmd.type, &ucmd->type, sizeof(cmd.type))) {
2083		ret = -EFAULT;
2084		goto bail;
2085	}
2086
2087	consumed = sizeof(cmd.type);
2088
2089	switch (cmd.type) {
2090	case QIB_CMD_ASSIGN_CTXT:
2091	case QIB_CMD_USER_INIT:
2092		copy = sizeof(cmd.cmd.user_info);
2093		dest = &cmd.cmd.user_info;
2094		src = &ucmd->cmd.user_info;
2095		break;
2096
2097	case QIB_CMD_RECV_CTRL:
2098		copy = sizeof(cmd.cmd.recv_ctrl);
2099		dest = &cmd.cmd.recv_ctrl;
2100		src = &ucmd->cmd.recv_ctrl;
2101		break;
2102
2103	case QIB_CMD_CTXT_INFO:
2104		copy = sizeof(cmd.cmd.ctxt_info);
2105		dest = &cmd.cmd.ctxt_info;
2106		src = &ucmd->cmd.ctxt_info;
2107		break;
2108
2109	case QIB_CMD_TID_UPDATE:
2110	case QIB_CMD_TID_FREE:
2111		copy = sizeof(cmd.cmd.tid_info);
2112		dest = &cmd.cmd.tid_info;
2113		src = &ucmd->cmd.tid_info;
2114		break;
2115
2116	case QIB_CMD_SET_PART_KEY:
2117		copy = sizeof(cmd.cmd.part_key);
2118		dest = &cmd.cmd.part_key;
2119		src = &ucmd->cmd.part_key;
2120		break;
2121
2122	case QIB_CMD_DISARM_BUFS:
2123	case QIB_CMD_PIOAVAILUPD: /* force an update of PIOAvail reg */
2124		copy = 0;
2125		src = NULL;
2126		dest = NULL;
2127		break;
2128
2129	case QIB_CMD_POLL_TYPE:
2130		copy = sizeof(cmd.cmd.poll_type);
2131		dest = &cmd.cmd.poll_type;
2132		src = &ucmd->cmd.poll_type;
2133		break;
2134
2135	case QIB_CMD_ARMLAUNCH_CTRL:
2136		copy = sizeof(cmd.cmd.armlaunch_ctrl);
2137		dest = &cmd.cmd.armlaunch_ctrl;
2138		src = &ucmd->cmd.armlaunch_ctrl;
2139		break;
2140
2141	case QIB_CMD_SDMA_INFLIGHT:
2142		copy = sizeof(cmd.cmd.sdma_inflight);
2143		dest = &cmd.cmd.sdma_inflight;
2144		src = &ucmd->cmd.sdma_inflight;
2145		break;
2146
2147	case QIB_CMD_SDMA_COMPLETE:
2148		copy = sizeof(cmd.cmd.sdma_complete);
2149		dest = &cmd.cmd.sdma_complete;
2150		src = &ucmd->cmd.sdma_complete;
2151		break;
2152
2153	case QIB_CMD_ACK_EVENT:
2154		copy = sizeof(cmd.cmd.event_mask);
2155		dest = &cmd.cmd.event_mask;
2156		src = &ucmd->cmd.event_mask;
2157		break;
2158
2159	default:
2160		ret = -EINVAL;
2161		goto bail;
2162	}
2163
2164	if (copy) {
2165		if ((count - consumed) < copy) {
2166			ret = -EINVAL;
2167			goto bail;
2168		}
2169		if (copy_from_user(dest, src, copy)) {
2170			ret = -EFAULT;
2171			goto bail;
2172		}
2173		consumed += copy;
2174	}
2175
2176	rcd = ctxt_fp(fp);
2177	if (!rcd && cmd.type != QIB_CMD_ASSIGN_CTXT) {
2178		ret = -EINVAL;
2179		goto bail;
2180	}
2181
2182	switch (cmd.type) {
2183	case QIB_CMD_ASSIGN_CTXT:
2184		ret = qib_assign_ctxt(fp, &cmd.cmd.user_info);
2185		if (ret)
2186			goto bail;
2187		break;
2188
2189	case QIB_CMD_USER_INIT:
2190		ret = qib_do_user_init(fp, &cmd.cmd.user_info);
2191		if (ret)
2192			goto bail;
2193		ret = qib_get_base_info(fp, (void __user *) (unsigned long)
2194					cmd.cmd.user_info.spu_base_info,
2195					cmd.cmd.user_info.spu_base_info_size);
2196		break;
2197
2198	case QIB_CMD_RECV_CTRL:
2199		ret = qib_manage_rcvq(rcd, subctxt_fp(fp), cmd.cmd.recv_ctrl);
2200		break;
2201
2202	case QIB_CMD_CTXT_INFO:
2203		ret = qib_ctxt_info(fp, (struct qib_ctxt_info __user *)
2204				    (unsigned long) cmd.cmd.ctxt_info);
2205		break;
2206
2207	case QIB_CMD_TID_UPDATE:
2208		ret = qib_tid_update(rcd, fp, &cmd.cmd.tid_info);
2209		break;
2210
2211	case QIB_CMD_TID_FREE:
2212		ret = qib_tid_free(rcd, subctxt_fp(fp), &cmd.cmd.tid_info);
2213		break;
2214
2215	case QIB_CMD_SET_PART_KEY:
2216		ret = qib_set_part_key(rcd, cmd.cmd.part_key);
2217		break;
2218
2219	case QIB_CMD_DISARM_BUFS:
2220		(void)qib_disarm_piobufs_ifneeded(rcd);
2221		ret = disarm_req_delay(rcd);
2222		break;
2223
2224	case QIB_CMD_PIOAVAILUPD:
2225		qib_force_pio_avail_update(rcd->dd);
2226		break;
2227
2228	case QIB_CMD_POLL_TYPE:
2229		rcd->poll_type = cmd.cmd.poll_type;
2230		break;
2231
2232	case QIB_CMD_ARMLAUNCH_CTRL:
2233		rcd->dd->f_set_armlaunch(rcd->dd, cmd.cmd.armlaunch_ctrl);
2234		break;
2235
2236	case QIB_CMD_SDMA_INFLIGHT:
2237		ret = qib_sdma_get_inflight(user_sdma_queue_fp(fp),
2238					    (u32 __user *) (unsigned long)
2239					    cmd.cmd.sdma_inflight);
2240		break;
2241
2242	case QIB_CMD_SDMA_COMPLETE:
2243		ret = qib_sdma_get_complete(rcd->ppd,
2244					    user_sdma_queue_fp(fp),
2245					    (u32 __user *) (unsigned long)
2246					    cmd.cmd.sdma_complete);
2247		break;
2248
2249	case QIB_CMD_ACK_EVENT:
2250		ret = qib_user_event_ack(rcd, subctxt_fp(fp),
2251					 cmd.cmd.event_mask);
2252		break;
2253	}
2254
2255	if (ret >= 0)
2256		ret = consumed;
2257
2258bail:
2259	return ret;
2260}
2261
2262static ssize_t qib_write_iter(struct kiocb *iocb, struct iov_iter *from)
2263{
2264	struct qib_filedata *fp = iocb->ki_filp->private_data;
2265	struct qib_ctxtdata *rcd = ctxt_fp(iocb->ki_filp);
2266	struct qib_user_sdma_queue *pq = fp->pq;
2267
2268	if (!iter_is_iovec(from) || !from->nr_segs || !pq)
2269		return -EINVAL;
2270
2271	return qib_user_sdma_writev(rcd, pq, from->iov, from->nr_segs);
2272}
2273
2274static struct class *qib_class;
2275static dev_t qib_dev;
2276
2277int qib_cdev_init(int minor, const char *name,
2278		  const struct file_operations *fops,
2279		  struct cdev **cdevp, struct device **devp)
2280{
2281	const dev_t dev = MKDEV(MAJOR(qib_dev), minor);
2282	struct cdev *cdev;
2283	struct device *device = NULL;
2284	int ret;
2285
2286	cdev = cdev_alloc();
2287	if (!cdev) {
2288		pr_err("Could not allocate cdev for minor %d, %s\n",
2289		       minor, name);
2290		ret = -ENOMEM;
2291		goto done;
2292	}
2293
2294	cdev->owner = THIS_MODULE;
2295	cdev->ops = fops;
2296	kobject_set_name(&cdev->kobj, name);
2297
2298	ret = cdev_add(cdev, dev, 1);
2299	if (ret < 0) {
2300		pr_err("Could not add cdev for minor %d, %s (err %d)\n",
2301		       minor, name, -ret);
2302		goto err_cdev;
2303	}
2304
2305	device = device_create(qib_class, NULL, dev, NULL, "%s", name);
2306	if (!IS_ERR(device))
2307		goto done;
2308	ret = PTR_ERR(device);
2309	device = NULL;
2310	pr_err("Could not create device for minor %d, %s (err %d)\n",
2311	       minor, name, -ret);
2312err_cdev:
2313	cdev_del(cdev);
2314	cdev = NULL;
2315done:
2316	*cdevp = cdev;
2317	*devp = device;
2318	return ret;
2319}
2320
2321void qib_cdev_cleanup(struct cdev **cdevp, struct device **devp)
2322{
2323	struct device *device = *devp;
2324
2325	if (device) {
2326		device_unregister(device);
2327		*devp = NULL;
2328	}
2329
2330	if (*cdevp) {
2331		cdev_del(*cdevp);
2332		*cdevp = NULL;
2333	}
2334}
2335
2336static struct cdev *wildcard_cdev;
2337static struct device *wildcard_device;
2338
2339int __init qib_dev_init(void)
2340{
2341	int ret;
2342
2343	ret = alloc_chrdev_region(&qib_dev, 0, QIB_NMINORS, QIB_DRV_NAME);
2344	if (ret < 0) {
2345		pr_err("Could not allocate chrdev region (err %d)\n", -ret);
2346		goto done;
2347	}
2348
2349	qib_class = class_create(THIS_MODULE, "ipath");
2350	if (IS_ERR(qib_class)) {
2351		ret = PTR_ERR(qib_class);
2352		pr_err("Could not create device class (err %d)\n", -ret);
2353		unregister_chrdev_region(qib_dev, QIB_NMINORS);
2354	}
2355
2356done:
2357	return ret;
2358}
2359
2360void qib_dev_cleanup(void)
2361{
2362	if (qib_class) {
2363		class_destroy(qib_class);
2364		qib_class = NULL;
2365	}
2366
2367	unregister_chrdev_region(qib_dev, QIB_NMINORS);
2368}
2369
2370static atomic_t user_count = ATOMIC_INIT(0);
2371
2372static void qib_user_remove(struct qib_devdata *dd)
2373{
2374	if (atomic_dec_return(&user_count) == 0)
2375		qib_cdev_cleanup(&wildcard_cdev, &wildcard_device);
2376
2377	qib_cdev_cleanup(&dd->user_cdev, &dd->user_device);
2378}
2379
2380static int qib_user_add(struct qib_devdata *dd)
2381{
2382	char name[10];
2383	int ret;
2384
2385	if (atomic_inc_return(&user_count) == 1) {
2386		ret = qib_cdev_init(0, "ipath", &qib_file_ops,
2387				    &wildcard_cdev, &wildcard_device);
2388		if (ret)
2389			goto done;
2390	}
2391
2392	snprintf(name, sizeof(name), "ipath%d", dd->unit);
2393	ret = qib_cdev_init(dd->unit + 1, name, &qib_file_ops,
2394			    &dd->user_cdev, &dd->user_device);
2395	if (ret)
2396		qib_user_remove(dd);
2397done:
2398	return ret;
2399}
2400
2401/*
2402 * Create per-unit files in /dev
2403 */
2404int qib_device_create(struct qib_devdata *dd)
2405{
2406	int r, ret;
2407
2408	r = qib_user_add(dd);
2409	ret = qib_diag_add(dd);
2410	if (r && !ret)
2411		ret = r;
2412	return ret;
2413}
2414
2415/*
2416 * Remove per-unit files in /dev
2417 * void, core kernel returns no errors for this stuff
2418 */
2419void qib_device_remove(struct qib_devdata *dd)
2420{
2421	qib_user_remove(dd);
2422	qib_diag_remove(dd);
2423}
2424