IB/hfi1: Add missing error code assignment before test
[cascardo/linux.git] / drivers / infiniband / hw / hfi1 / file_ops.c
1 /*
2  * Copyright(c) 2015, 2016 Intel Corporation.
3  *
4  * This file is provided under a dual BSD/GPLv2 license.  When using or
5  * redistributing this file, you may do so under either license.
6  *
7  * GPL LICENSE SUMMARY
8  *
9  * This program is free software; you can redistribute it and/or modify
10  * it under the terms of version 2 of the GNU General Public License as
11  * published by the Free Software Foundation.
12  *
13  * This program is distributed in the hope that it will be useful, but
14  * WITHOUT ANY WARRANTY; without even the implied warranty of
15  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
16  * General Public License for more details.
17  *
18  * BSD LICENSE
19  *
20  * Redistribution and use in source and binary forms, with or without
21  * modification, are permitted provided that the following conditions
22  * are met:
23  *
24  *  - Redistributions of source code must retain the above copyright
25  *    notice, this list of conditions and the following disclaimer.
26  *  - Redistributions in binary form must reproduce the above copyright
27  *    notice, this list of conditions and the following disclaimer in
28  *    the documentation and/or other materials provided with the
29  *    distribution.
30  *  - Neither the name of Intel Corporation nor the names of its
31  *    contributors may be used to endorse or promote products derived
32  *    from this software without specific prior written permission.
33  *
34  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
35  * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
36  * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
37  * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
38  * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
39  * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
40  * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
41  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
42  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
43  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
44  * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
45  *
46  */
47 #include <linux/poll.h>
48 #include <linux/cdev.h>
49 #include <linux/vmalloc.h>
50 #include <linux/io.h>
51
52 #include <rdma/ib.h>
53
54 #include "hfi.h"
55 #include "pio.h"
56 #include "device.h"
57 #include "common.h"
58 #include "trace.h"
59 #include "user_sdma.h"
60 #include "user_exp_rcv.h"
61 #include "eprom.h"
62 #include "aspm.h"
63 #include "mmu_rb.h"
64
65 #undef pr_fmt
66 #define pr_fmt(fmt) DRIVER_NAME ": " fmt
67
68 #define SEND_CTXT_HALT_TIMEOUT 1000 /* msecs */
69
70 /*
71  * File operation functions
72  */
73 static int hfi1_file_open(struct inode *, struct file *);
74 static int hfi1_file_close(struct inode *, struct file *);
75 static ssize_t hfi1_write_iter(struct kiocb *, struct iov_iter *);
76 static unsigned int hfi1_poll(struct file *, struct poll_table_struct *);
77 static int hfi1_file_mmap(struct file *, struct vm_area_struct *);
78
79 static u64 kvirt_to_phys(void *);
80 static int assign_ctxt(struct file *, struct hfi1_user_info *);
81 static int init_subctxts(struct hfi1_ctxtdata *, const struct hfi1_user_info *);
82 static int user_init(struct file *);
83 static int get_ctxt_info(struct file *, void __user *, __u32);
84 static int get_base_info(struct file *, void __user *, __u32);
85 static int setup_ctxt(struct file *);
86 static int setup_subctxt(struct hfi1_ctxtdata *);
87 static int get_user_context(struct file *, struct hfi1_user_info *, int);
88 static int find_shared_ctxt(struct file *, const struct hfi1_user_info *);
89 static int allocate_ctxt(struct file *, struct hfi1_devdata *,
90                          struct hfi1_user_info *);
91 static unsigned int poll_urgent(struct file *, struct poll_table_struct *);
92 static unsigned int poll_next(struct file *, struct poll_table_struct *);
93 static int user_event_ack(struct hfi1_ctxtdata *, int, unsigned long);
94 static int set_ctxt_pkey(struct hfi1_ctxtdata *, unsigned, u16);
95 static int manage_rcvq(struct hfi1_ctxtdata *, unsigned, int);
96 static int vma_fault(struct vm_area_struct *, struct vm_fault *);
97 static long hfi1_file_ioctl(struct file *fp, unsigned int cmd,
98                             unsigned long arg);
99
100 static const struct file_operations hfi1_file_ops = {
101         .owner = THIS_MODULE,
102         .write_iter = hfi1_write_iter,
103         .open = hfi1_file_open,
104         .release = hfi1_file_close,
105         .unlocked_ioctl = hfi1_file_ioctl,
106         .poll = hfi1_poll,
107         .mmap = hfi1_file_mmap,
108         .llseek = noop_llseek,
109 };
110
111 static struct vm_operations_struct vm_ops = {
112         .fault = vma_fault,
113 };
114
115 /*
116  * Types of memories mapped into user processes' space
117  */
118 enum mmap_types {
119         PIO_BUFS = 1,
120         PIO_BUFS_SOP,
121         PIO_CRED,
122         RCV_HDRQ,
123         RCV_EGRBUF,
124         UREGS,
125         EVENTS,
126         STATUS,
127         RTAIL,
128         SUBCTXT_UREGS,
129         SUBCTXT_RCV_HDRQ,
130         SUBCTXT_EGRBUF,
131         SDMA_COMP
132 };
133
134 /*
135  * Masks and offsets defining the mmap tokens
136  */
137 #define HFI1_MMAP_OFFSET_MASK   0xfffULL
138 #define HFI1_MMAP_OFFSET_SHIFT  0
139 #define HFI1_MMAP_SUBCTXT_MASK  0xfULL
140 #define HFI1_MMAP_SUBCTXT_SHIFT 12
141 #define HFI1_MMAP_CTXT_MASK     0xffULL
142 #define HFI1_MMAP_CTXT_SHIFT    16
143 #define HFI1_MMAP_TYPE_MASK     0xfULL
144 #define HFI1_MMAP_TYPE_SHIFT    24
145 #define HFI1_MMAP_MAGIC_MASK    0xffffffffULL
146 #define HFI1_MMAP_MAGIC_SHIFT   32
147
148 #define HFI1_MMAP_MAGIC         0xdabbad00
149
150 #define HFI1_MMAP_TOKEN_SET(field, val) \
151         (((val) & HFI1_MMAP_##field##_MASK) << HFI1_MMAP_##field##_SHIFT)
152 #define HFI1_MMAP_TOKEN_GET(field, token) \
153         (((token) >> HFI1_MMAP_##field##_SHIFT) & HFI1_MMAP_##field##_MASK)
154 #define HFI1_MMAP_TOKEN(type, ctxt, subctxt, addr)   \
155         (HFI1_MMAP_TOKEN_SET(MAGIC, HFI1_MMAP_MAGIC) | \
156         HFI1_MMAP_TOKEN_SET(TYPE, type) | \
157         HFI1_MMAP_TOKEN_SET(CTXT, ctxt) | \
158         HFI1_MMAP_TOKEN_SET(SUBCTXT, subctxt) | \
159         HFI1_MMAP_TOKEN_SET(OFFSET, (offset_in_page(addr))))
160
161 #define dbg(fmt, ...)                           \
162         pr_info(fmt, ##__VA_ARGS__)
163
164 static inline int is_valid_mmap(u64 token)
165 {
166         return (HFI1_MMAP_TOKEN_GET(MAGIC, token) == HFI1_MMAP_MAGIC);
167 }
168
169 static int hfi1_file_open(struct inode *inode, struct file *fp)
170 {
171         struct hfi1_filedata *fd;
172         struct hfi1_devdata *dd = container_of(inode->i_cdev,
173                                                struct hfi1_devdata,
174                                                user_cdev);
175
176         /* Just take a ref now. Not all opens result in a context assign */
177         kobject_get(&dd->kobj);
178
179         /* The real work is performed later in assign_ctxt() */
180
181         fd = kzalloc(sizeof(*fd), GFP_KERNEL);
182
183         if (fd) {
184                 fd->rec_cpu_num = -1; /* no cpu affinity by default */
185                 fd->mm = current->mm;
186         }
187
188         fp->private_data = fd;
189
190         return fd ? 0 : -ENOMEM;
191 }
192
193 static long hfi1_file_ioctl(struct file *fp, unsigned int cmd,
194                             unsigned long arg)
195 {
196         struct hfi1_filedata *fd = fp->private_data;
197         struct hfi1_ctxtdata *uctxt = fd->uctxt;
198         struct hfi1_user_info uinfo;
199         struct hfi1_tid_info tinfo;
200         int ret = 0;
201         unsigned long addr;
202         int uval = 0;
203         unsigned long ul_uval = 0;
204         u16 uval16 = 0;
205
206         hfi1_cdbg(IOCTL, "IOCTL recv: 0x%x", cmd);
207         if (cmd != HFI1_IOCTL_ASSIGN_CTXT &&
208             cmd != HFI1_IOCTL_GET_VERS &&
209             !uctxt)
210                 return -EINVAL;
211
212         switch (cmd) {
213         case HFI1_IOCTL_ASSIGN_CTXT:
214                 if (uctxt)
215                         return -EINVAL;
216
217                 if (copy_from_user(&uinfo,
218                                    (struct hfi1_user_info __user *)arg,
219                                    sizeof(uinfo)))
220                         return -EFAULT;
221
222                 ret = assign_ctxt(fp, &uinfo);
223                 if (ret < 0)
224                         return ret;
225                 ret = setup_ctxt(fp);
226                 if (ret)
227                         return ret;
228                 ret = user_init(fp);
229                 break;
230         case HFI1_IOCTL_CTXT_INFO:
231                 ret = get_ctxt_info(fp, (void __user *)(unsigned long)arg,
232                                     sizeof(struct hfi1_ctxt_info));
233                 break;
234         case HFI1_IOCTL_USER_INFO:
235                 ret = get_base_info(fp, (void __user *)(unsigned long)arg,
236                                     sizeof(struct hfi1_base_info));
237                 break;
238         case HFI1_IOCTL_CREDIT_UPD:
239                 if (uctxt)
240                         sc_return_credits(uctxt->sc);
241                 break;
242
243         case HFI1_IOCTL_TID_UPDATE:
244                 if (copy_from_user(&tinfo,
245                                    (struct hfi11_tid_info __user *)arg,
246                                    sizeof(tinfo)))
247                         return -EFAULT;
248
249                 ret = hfi1_user_exp_rcv_setup(fp, &tinfo);
250                 if (!ret) {
251                         /*
252                          * Copy the number of tidlist entries we used
253                          * and the length of the buffer we registered.
254                          * These fields are adjacent in the structure so
255                          * we can copy them at the same time.
256                          */
257                         addr = arg + offsetof(struct hfi1_tid_info, tidcnt);
258                         if (copy_to_user((void __user *)addr, &tinfo.tidcnt,
259                                          sizeof(tinfo.tidcnt) +
260                                          sizeof(tinfo.length)))
261                                 ret = -EFAULT;
262                 }
263                 break;
264
265         case HFI1_IOCTL_TID_FREE:
266                 if (copy_from_user(&tinfo,
267                                    (struct hfi11_tid_info __user *)arg,
268                                    sizeof(tinfo)))
269                         return -EFAULT;
270
271                 ret = hfi1_user_exp_rcv_clear(fp, &tinfo);
272                 if (ret)
273                         break;
274                 addr = arg + offsetof(struct hfi1_tid_info, tidcnt);
275                 if (copy_to_user((void __user *)addr, &tinfo.tidcnt,
276                                  sizeof(tinfo.tidcnt)))
277                         ret = -EFAULT;
278                 break;
279
280         case HFI1_IOCTL_TID_INVAL_READ:
281                 if (copy_from_user(&tinfo,
282                                    (struct hfi11_tid_info __user *)arg,
283                                    sizeof(tinfo)))
284                         return -EFAULT;
285
286                 ret = hfi1_user_exp_rcv_invalid(fp, &tinfo);
287                 if (ret)
288                         break;
289                 addr = arg + offsetof(struct hfi1_tid_info, tidcnt);
290                 if (copy_to_user((void __user *)addr, &tinfo.tidcnt,
291                                  sizeof(tinfo.tidcnt)))
292                         ret = -EFAULT;
293                 break;
294
295         case HFI1_IOCTL_RECV_CTRL:
296                 ret = get_user(uval, (int __user *)arg);
297                 if (ret != 0)
298                         return -EFAULT;
299                 ret = manage_rcvq(uctxt, fd->subctxt, uval);
300                 break;
301
302         case HFI1_IOCTL_POLL_TYPE:
303                 ret = get_user(uval, (int __user *)arg);
304                 if (ret != 0)
305                         return -EFAULT;
306                 uctxt->poll_type = (typeof(uctxt->poll_type))uval;
307                 break;
308
309         case HFI1_IOCTL_ACK_EVENT:
310                 ret = get_user(ul_uval, (unsigned long __user *)arg);
311                 if (ret != 0)
312                         return -EFAULT;
313                 ret = user_event_ack(uctxt, fd->subctxt, ul_uval);
314                 break;
315
316         case HFI1_IOCTL_SET_PKEY:
317                 ret = get_user(uval16, (u16 __user *)arg);
318                 if (ret != 0)
319                         return -EFAULT;
320                 if (HFI1_CAP_IS_USET(PKEY_CHECK))
321                         ret = set_ctxt_pkey(uctxt, fd->subctxt, uval16);
322                 else
323                         return -EPERM;
324                 break;
325
326         case HFI1_IOCTL_CTXT_RESET: {
327                 struct send_context *sc;
328                 struct hfi1_devdata *dd;
329
330                 if (!uctxt || !uctxt->dd || !uctxt->sc)
331                         return -EINVAL;
332
333                 /*
334                  * There is no protection here. User level has to
335                  * guarantee that no one will be writing to the send
336                  * context while it is being re-initialized.
337                  * If user level breaks that guarantee, it will break
338                  * it's own context and no one else's.
339                  */
340                 dd = uctxt->dd;
341                 sc = uctxt->sc;
342                 /*
343                  * Wait until the interrupt handler has marked the
344                  * context as halted or frozen. Report error if we time
345                  * out.
346                  */
347                 wait_event_interruptible_timeout(
348                         sc->halt_wait, (sc->flags & SCF_HALTED),
349                         msecs_to_jiffies(SEND_CTXT_HALT_TIMEOUT));
350                 if (!(sc->flags & SCF_HALTED))
351                         return -ENOLCK;
352
353                 /*
354                  * If the send context was halted due to a Freeze,
355                  * wait until the device has been "unfrozen" before
356                  * resetting the context.
357                  */
358                 if (sc->flags & SCF_FROZEN) {
359                         wait_event_interruptible_timeout(
360                                 dd->event_queue,
361                                 !(ACCESS_ONCE(dd->flags) & HFI1_FROZEN),
362                                 msecs_to_jiffies(SEND_CTXT_HALT_TIMEOUT));
363                         if (dd->flags & HFI1_FROZEN)
364                                 return -ENOLCK;
365
366                         if (dd->flags & HFI1_FORCED_FREEZE)
367                                 /*
368                                  * Don't allow context reset if we are into
369                                  * forced freeze
370                                  */
371                                 return -ENODEV;
372
373                         sc_disable(sc);
374                         ret = sc_enable(sc);
375                         hfi1_rcvctrl(dd, HFI1_RCVCTRL_CTXT_ENB,
376                                      uctxt->ctxt);
377                 } else {
378                         ret = sc_restart(sc);
379                 }
380                 if (!ret)
381                         sc_return_credits(sc);
382                 break;
383         }
384
385         case HFI1_IOCTL_GET_VERS:
386                 uval = HFI1_USER_SWVERSION;
387                 if (put_user(uval, (int __user *)arg))
388                         return -EFAULT;
389                 break;
390
391         default:
392                 return -EINVAL;
393         }
394
395         return ret;
396 }
397
398 static ssize_t hfi1_write_iter(struct kiocb *kiocb, struct iov_iter *from)
399 {
400         struct hfi1_filedata *fd = kiocb->ki_filp->private_data;
401         struct hfi1_user_sdma_pkt_q *pq = fd->pq;
402         struct hfi1_user_sdma_comp_q *cq = fd->cq;
403         int done = 0, reqs = 0;
404         unsigned long dim = from->nr_segs;
405
406         if (!cq || !pq)
407                 return -EIO;
408
409         if (!iter_is_iovec(from) || !dim)
410                 return -EINVAL;
411
412         hfi1_cdbg(SDMA, "SDMA request from %u:%u (%lu)",
413                   fd->uctxt->ctxt, fd->subctxt, dim);
414
415         if (atomic_read(&pq->n_reqs) == pq->n_max_reqs)
416                 return -ENOSPC;
417
418         while (dim) {
419                 int ret;
420                 unsigned long count = 0;
421
422                 ret = hfi1_user_sdma_process_request(
423                         kiocb->ki_filp, (struct iovec *)(from->iov + done),
424                         dim, &count);
425                 if (ret) {
426                         reqs = ret;
427                         break;
428                 }
429                 dim -= count;
430                 done += count;
431                 reqs++;
432         }
433
434         return reqs;
435 }
436
437 static int hfi1_file_mmap(struct file *fp, struct vm_area_struct *vma)
438 {
439         struct hfi1_filedata *fd = fp->private_data;
440         struct hfi1_ctxtdata *uctxt = fd->uctxt;
441         struct hfi1_devdata *dd;
442         unsigned long flags, pfn;
443         u64 token = vma->vm_pgoff << PAGE_SHIFT,
444                 memaddr = 0;
445         u8 subctxt, mapio = 0, vmf = 0, type;
446         ssize_t memlen = 0;
447         int ret = 0;
448         u16 ctxt;
449
450         if (!is_valid_mmap(token) || !uctxt ||
451             !(vma->vm_flags & VM_SHARED)) {
452                 ret = -EINVAL;
453                 goto done;
454         }
455         dd = uctxt->dd;
456         ctxt = HFI1_MMAP_TOKEN_GET(CTXT, token);
457         subctxt = HFI1_MMAP_TOKEN_GET(SUBCTXT, token);
458         type = HFI1_MMAP_TOKEN_GET(TYPE, token);
459         if (ctxt != uctxt->ctxt || subctxt != fd->subctxt) {
460                 ret = -EINVAL;
461                 goto done;
462         }
463
464         flags = vma->vm_flags;
465
466         switch (type) {
467         case PIO_BUFS:
468         case PIO_BUFS_SOP:
469                 memaddr = ((dd->physaddr + TXE_PIO_SEND) +
470                                 /* chip pio base */
471                            (uctxt->sc->hw_context * BIT(16))) +
472                                 /* 64K PIO space / ctxt */
473                         (type == PIO_BUFS_SOP ?
474                                 (TXE_PIO_SIZE / 2) : 0); /* sop? */
475                 /*
476                  * Map only the amount allocated to the context, not the
477                  * entire available context's PIO space.
478                  */
479                 memlen = PAGE_ALIGN(uctxt->sc->credits * PIO_BLOCK_SIZE);
480                 flags &= ~VM_MAYREAD;
481                 flags |= VM_DONTCOPY | VM_DONTEXPAND;
482                 vma->vm_page_prot = pgprot_writecombine(vma->vm_page_prot);
483                 mapio = 1;
484                 break;
485         case PIO_CRED:
486                 if (flags & VM_WRITE) {
487                         ret = -EPERM;
488                         goto done;
489                 }
490                 /*
491                  * The credit return location for this context could be on the
492                  * second or third page allocated for credit returns (if number
493                  * of enabled contexts > 64 and 128 respectively).
494                  */
495                 memaddr = dd->cr_base[uctxt->numa_id].pa +
496                         (((u64)uctxt->sc->hw_free -
497                           (u64)dd->cr_base[uctxt->numa_id].va) & PAGE_MASK);
498                 memlen = PAGE_SIZE;
499                 flags &= ~VM_MAYWRITE;
500                 flags |= VM_DONTCOPY | VM_DONTEXPAND;
501                 /*
502                  * The driver has already allocated memory for credit
503                  * returns and programmed it into the chip. Has that
504                  * memory been flagged as non-cached?
505                  */
506                 /* vma->vm_page_prot = pgprot_noncached(vma->vm_page_prot); */
507                 mapio = 1;
508                 break;
509         case RCV_HDRQ:
510                 memaddr = uctxt->rcvhdrq_phys;
511                 memlen = uctxt->rcvhdrq_size;
512                 break;
513         case RCV_EGRBUF: {
514                 unsigned long addr;
515                 int i;
516                 /*
517                  * The RcvEgr buffer need to be handled differently
518                  * as multiple non-contiguous pages need to be mapped
519                  * into the user process.
520                  */
521                 memlen = uctxt->egrbufs.size;
522                 if ((vma->vm_end - vma->vm_start) != memlen) {
523                         dd_dev_err(dd, "Eager buffer map size invalid (%lu != %lu)\n",
524                                    (vma->vm_end - vma->vm_start), memlen);
525                         ret = -EINVAL;
526                         goto done;
527                 }
528                 if (vma->vm_flags & VM_WRITE) {
529                         ret = -EPERM;
530                         goto done;
531                 }
532                 vma->vm_flags &= ~VM_MAYWRITE;
533                 addr = vma->vm_start;
534                 for (i = 0 ; i < uctxt->egrbufs.numbufs; i++) {
535                         ret = remap_pfn_range(
536                                 vma, addr,
537                                 uctxt->egrbufs.buffers[i].phys >> PAGE_SHIFT,
538                                 uctxt->egrbufs.buffers[i].len,
539                                 vma->vm_page_prot);
540                         if (ret < 0)
541                                 goto done;
542                         addr += uctxt->egrbufs.buffers[i].len;
543                 }
544                 ret = 0;
545                 goto done;
546         }
547         case UREGS:
548                 /*
549                  * Map only the page that contains this context's user
550                  * registers.
551                  */
552                 memaddr = (unsigned long)
553                         (dd->physaddr + RXE_PER_CONTEXT_USER)
554                         + (uctxt->ctxt * RXE_PER_CONTEXT_SIZE);
555                 /*
556                  * TidFlow table is on the same page as the rest of the
557                  * user registers.
558                  */
559                 memlen = PAGE_SIZE;
560                 flags |= VM_DONTCOPY | VM_DONTEXPAND;
561                 vma->vm_page_prot = pgprot_noncached(vma->vm_page_prot);
562                 mapio = 1;
563                 break;
564         case EVENTS:
565                 /*
566                  * Use the page where this context's flags are. User level
567                  * knows where it's own bitmap is within the page.
568                  */
569                 memaddr = (unsigned long)(dd->events +
570                                           ((uctxt->ctxt - dd->first_user_ctxt) *
571                                            HFI1_MAX_SHARED_CTXTS)) & PAGE_MASK;
572                 memlen = PAGE_SIZE;
573                 /*
574                  * v3.7 removes VM_RESERVED but the effect is kept by
575                  * using VM_IO.
576                  */
577                 flags |= VM_IO | VM_DONTEXPAND;
578                 vmf = 1;
579                 break;
580         case STATUS:
581                 memaddr = kvirt_to_phys((void *)dd->status);
582                 memlen = PAGE_SIZE;
583                 flags |= VM_IO | VM_DONTEXPAND;
584                 break;
585         case RTAIL:
586                 if (!HFI1_CAP_IS_USET(DMA_RTAIL)) {
587                         /*
588                          * If the memory allocation failed, the context alloc
589                          * also would have failed, so we would never get here
590                          */
591                         ret = -EINVAL;
592                         goto done;
593                 }
594                 if (flags & VM_WRITE) {
595                         ret = -EPERM;
596                         goto done;
597                 }
598                 memaddr = uctxt->rcvhdrqtailaddr_phys;
599                 memlen = PAGE_SIZE;
600                 flags &= ~VM_MAYWRITE;
601                 break;
602         case SUBCTXT_UREGS:
603                 memaddr = (u64)uctxt->subctxt_uregbase;
604                 memlen = PAGE_SIZE;
605                 flags |= VM_IO | VM_DONTEXPAND;
606                 vmf = 1;
607                 break;
608         case SUBCTXT_RCV_HDRQ:
609                 memaddr = (u64)uctxt->subctxt_rcvhdr_base;
610                 memlen = uctxt->rcvhdrq_size * uctxt->subctxt_cnt;
611                 flags |= VM_IO | VM_DONTEXPAND;
612                 vmf = 1;
613                 break;
614         case SUBCTXT_EGRBUF:
615                 memaddr = (u64)uctxt->subctxt_rcvegrbuf;
616                 memlen = uctxt->egrbufs.size * uctxt->subctxt_cnt;
617                 flags |= VM_IO | VM_DONTEXPAND;
618                 flags &= ~VM_MAYWRITE;
619                 vmf = 1;
620                 break;
621         case SDMA_COMP: {
622                 struct hfi1_user_sdma_comp_q *cq = fd->cq;
623
624                 if (!cq) {
625                         ret = -EFAULT;
626                         goto done;
627                 }
628                 memaddr = (u64)cq->comps;
629                 memlen = PAGE_ALIGN(sizeof(*cq->comps) * cq->nentries);
630                 flags |= VM_IO | VM_DONTEXPAND;
631                 vmf = 1;
632                 break;
633         }
634         default:
635                 ret = -EINVAL;
636                 break;
637         }
638
639         if ((vma->vm_end - vma->vm_start) != memlen) {
640                 hfi1_cdbg(PROC, "%u:%u Memory size mismatch %lu:%lu",
641                           uctxt->ctxt, fd->subctxt,
642                           (vma->vm_end - vma->vm_start), memlen);
643                 ret = -EINVAL;
644                 goto done;
645         }
646
647         vma->vm_flags = flags;
648         hfi1_cdbg(PROC,
649                   "%u:%u type:%u io/vf:%d/%d, addr:0x%llx, len:%lu(%lu), flags:0x%lx\n",
650                     ctxt, subctxt, type, mapio, vmf, memaddr, memlen,
651                     vma->vm_end - vma->vm_start, vma->vm_flags);
652         pfn = (unsigned long)(memaddr >> PAGE_SHIFT);
653         if (vmf) {
654                 vma->vm_pgoff = pfn;
655                 vma->vm_ops = &vm_ops;
656                 ret = 0;
657         } else if (mapio) {
658                 ret = io_remap_pfn_range(vma, vma->vm_start, pfn, memlen,
659                                          vma->vm_page_prot);
660         } else {
661                 ret = remap_pfn_range(vma, vma->vm_start, pfn, memlen,
662                                       vma->vm_page_prot);
663         }
664 done:
665         return ret;
666 }
667
668 /*
669  * Local (non-chip) user memory is not mapped right away but as it is
670  * accessed by the user-level code.
671  */
672 static int vma_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
673 {
674         struct page *page;
675
676         page = vmalloc_to_page((void *)(vmf->pgoff << PAGE_SHIFT));
677         if (!page)
678                 return VM_FAULT_SIGBUS;
679
680         get_page(page);
681         vmf->page = page;
682
683         return 0;
684 }
685
686 static unsigned int hfi1_poll(struct file *fp, struct poll_table_struct *pt)
687 {
688         struct hfi1_ctxtdata *uctxt;
689         unsigned pollflag;
690
691         uctxt = ((struct hfi1_filedata *)fp->private_data)->uctxt;
692         if (!uctxt)
693                 pollflag = POLLERR;
694         else if (uctxt->poll_type == HFI1_POLL_TYPE_URGENT)
695                 pollflag = poll_urgent(fp, pt);
696         else  if (uctxt->poll_type == HFI1_POLL_TYPE_ANYRCV)
697                 pollflag = poll_next(fp, pt);
698         else /* invalid */
699                 pollflag = POLLERR;
700
701         return pollflag;
702 }
703
704 static int hfi1_file_close(struct inode *inode, struct file *fp)
705 {
706         struct hfi1_filedata *fdata = fp->private_data;
707         struct hfi1_ctxtdata *uctxt = fdata->uctxt;
708         struct hfi1_devdata *dd = container_of(inode->i_cdev,
709                                                struct hfi1_devdata,
710                                                user_cdev);
711         unsigned long flags, *ev;
712
713         fp->private_data = NULL;
714
715         if (!uctxt)
716                 goto done;
717
718         hfi1_cdbg(PROC, "freeing ctxt %u:%u", uctxt->ctxt, fdata->subctxt);
719         mutex_lock(&hfi1_mutex);
720
721         flush_wc();
722         /* drain user sdma queue */
723         hfi1_user_sdma_free_queues(fdata);
724
725         /* release the cpu */
726         hfi1_put_proc_affinity(fdata->rec_cpu_num);
727
728         /*
729          * Clear any left over, unhandled events so the next process that
730          * gets this context doesn't get confused.
731          */
732         ev = dd->events + ((uctxt->ctxt - dd->first_user_ctxt) *
733                            HFI1_MAX_SHARED_CTXTS) + fdata->subctxt;
734         *ev = 0;
735
736         if (--uctxt->cnt) {
737                 uctxt->active_slaves &= ~(1 << fdata->subctxt);
738                 mutex_unlock(&hfi1_mutex);
739                 goto done;
740         }
741
742         spin_lock_irqsave(&dd->uctxt_lock, flags);
743         /*
744          * Disable receive context and interrupt available, reset all
745          * RcvCtxtCtrl bits to default values.
746          */
747         hfi1_rcvctrl(dd, HFI1_RCVCTRL_CTXT_DIS |
748                      HFI1_RCVCTRL_TIDFLOW_DIS |
749                      HFI1_RCVCTRL_INTRAVAIL_DIS |
750                      HFI1_RCVCTRL_TAILUPD_DIS |
751                      HFI1_RCVCTRL_ONE_PKT_EGR_DIS |
752                      HFI1_RCVCTRL_NO_RHQ_DROP_DIS |
753                      HFI1_RCVCTRL_NO_EGR_DROP_DIS, uctxt->ctxt);
754         /* Clear the context's J_KEY */
755         hfi1_clear_ctxt_jkey(dd, uctxt->ctxt);
756         /*
757          * Reset context integrity checks to default.
758          * (writes to CSRs probably belong in chip.c)
759          */
760         write_kctxt_csr(dd, uctxt->sc->hw_context, SEND_CTXT_CHECK_ENABLE,
761                         hfi1_pkt_default_send_ctxt_mask(dd, uctxt->sc->type));
762         sc_disable(uctxt->sc);
763         spin_unlock_irqrestore(&dd->uctxt_lock, flags);
764
765         dd->rcd[uctxt->ctxt] = NULL;
766
767         hfi1_user_exp_rcv_free(fdata);
768         hfi1_clear_ctxt_pkey(dd, uctxt->ctxt);
769
770         uctxt->rcvwait_to = 0;
771         uctxt->piowait_to = 0;
772         uctxt->rcvnowait = 0;
773         uctxt->pionowait = 0;
774         uctxt->event_flags = 0;
775
776         hfi1_stats.sps_ctxts--;
777         if (++dd->freectxts == dd->num_user_contexts)
778                 aspm_enable_all(dd);
779         mutex_unlock(&hfi1_mutex);
780         hfi1_free_ctxtdata(dd, uctxt);
781 done:
782         kobject_put(&dd->kobj);
783         kfree(fdata);
784         return 0;
785 }
786
787 /*
788  * Convert kernel *virtual* addresses to physical addresses.
789  * This is used to vmalloc'ed addresses.
790  */
791 static u64 kvirt_to_phys(void *addr)
792 {
793         struct page *page;
794         u64 paddr = 0;
795
796         page = vmalloc_to_page(addr);
797         if (page)
798                 paddr = page_to_pfn(page) << PAGE_SHIFT;
799
800         return paddr;
801 }
802
803 static int assign_ctxt(struct file *fp, struct hfi1_user_info *uinfo)
804 {
805         int i_minor, ret = 0;
806         unsigned int swmajor, swminor;
807
808         swmajor = uinfo->userversion >> 16;
809         if (swmajor != HFI1_USER_SWMAJOR) {
810                 ret = -ENODEV;
811                 goto done;
812         }
813
814         swminor = uinfo->userversion & 0xffff;
815
816         mutex_lock(&hfi1_mutex);
817         /* First, lets check if we need to setup a shared context? */
818         if (uinfo->subctxt_cnt) {
819                 struct hfi1_filedata *fd = fp->private_data;
820
821                 ret = find_shared_ctxt(fp, uinfo);
822                 if (ret < 0)
823                         goto done_unlock;
824                 if (ret) {
825                         fd->rec_cpu_num =
826                                 hfi1_get_proc_affinity(fd->uctxt->numa_id);
827                 }
828         }
829
830         /*
831          * We execute the following block if we couldn't find a
832          * shared context or if context sharing is not required.
833          */
834         if (!ret) {
835                 i_minor = iminor(file_inode(fp)) - HFI1_USER_MINOR_BASE;
836                 ret = get_user_context(fp, uinfo, i_minor);
837         }
838 done_unlock:
839         mutex_unlock(&hfi1_mutex);
840 done:
841         return ret;
842 }
843
844 static int get_user_context(struct file *fp, struct hfi1_user_info *uinfo,
845                             int devno)
846 {
847         struct hfi1_devdata *dd = NULL;
848         int devmax, npresent, nup;
849
850         devmax = hfi1_count_units(&npresent, &nup);
851         if (!npresent)
852                 return -ENXIO;
853
854         if (!nup)
855                 return -ENETDOWN;
856
857         dd = hfi1_lookup(devno);
858         if (!dd)
859                 return -ENODEV;
860         else if (!dd->freectxts)
861                 return -EBUSY;
862
863         return allocate_ctxt(fp, dd, uinfo);
864 }
865
866 static int find_shared_ctxt(struct file *fp,
867                             const struct hfi1_user_info *uinfo)
868 {
869         int devmax, ndev, i;
870         int ret = 0;
871         struct hfi1_filedata *fd = fp->private_data;
872
873         devmax = hfi1_count_units(NULL, NULL);
874
875         for (ndev = 0; ndev < devmax; ndev++) {
876                 struct hfi1_devdata *dd = hfi1_lookup(ndev);
877
878                 if (!(dd && (dd->flags & HFI1_PRESENT) && dd->kregbase))
879                         continue;
880                 for (i = dd->first_user_ctxt; i < dd->num_rcv_contexts; i++) {
881                         struct hfi1_ctxtdata *uctxt = dd->rcd[i];
882
883                         /* Skip ctxts which are not yet open */
884                         if (!uctxt || !uctxt->cnt)
885                                 continue;
886                         /* Skip ctxt if it doesn't match the requested one */
887                         if (memcmp(uctxt->uuid, uinfo->uuid,
888                                    sizeof(uctxt->uuid)) ||
889                             uctxt->jkey != generate_jkey(current_uid()) ||
890                             uctxt->subctxt_id != uinfo->subctxt_id ||
891                             uctxt->subctxt_cnt != uinfo->subctxt_cnt)
892                                 continue;
893
894                         /* Verify the sharing process matches the master */
895                         if (uctxt->userversion != uinfo->userversion ||
896                             uctxt->cnt >= uctxt->subctxt_cnt) {
897                                 ret = -EINVAL;
898                                 goto done;
899                         }
900                         fd->uctxt = uctxt;
901                         fd->subctxt  = uctxt->cnt++;
902                         uctxt->active_slaves |= 1 << fd->subctxt;
903                         ret = 1;
904                         goto done;
905                 }
906         }
907
908 done:
909         return ret;
910 }
911
912 static int allocate_ctxt(struct file *fp, struct hfi1_devdata *dd,
913                          struct hfi1_user_info *uinfo)
914 {
915         struct hfi1_filedata *fd = fp->private_data;
916         struct hfi1_ctxtdata *uctxt;
917         unsigned ctxt;
918         int ret, numa;
919
920         if (dd->flags & HFI1_FROZEN) {
921                 /*
922                  * Pick an error that is unique from all other errors
923                  * that are returned so the user process knows that
924                  * it tried to allocate while the SPC was frozen.  It
925                  * it should be able to retry with success in a short
926                  * while.
927                  */
928                 return -EIO;
929         }
930
931         for (ctxt = dd->first_user_ctxt; ctxt < dd->num_rcv_contexts; ctxt++)
932                 if (!dd->rcd[ctxt])
933                         break;
934
935         if (ctxt == dd->num_rcv_contexts)
936                 return -EBUSY;
937
938         /*
939          * If we don't have a NUMA node requested, preference is towards
940          * device NUMA node.
941          */
942         fd->rec_cpu_num = hfi1_get_proc_affinity(dd->node);
943         if (fd->rec_cpu_num != -1)
944                 numa = cpu_to_node(fd->rec_cpu_num);
945         else
946                 numa = numa_node_id();
947         uctxt = hfi1_create_ctxtdata(dd->pport, ctxt, numa);
948         if (!uctxt) {
949                 dd_dev_err(dd,
950                            "Unable to allocate ctxtdata memory, failing open\n");
951                 return -ENOMEM;
952         }
953         hfi1_cdbg(PROC, "[%u:%u] pid %u assigned to CPU %d (NUMA %u)",
954                   uctxt->ctxt, fd->subctxt, current->pid, fd->rec_cpu_num,
955                   uctxt->numa_id);
956
957         /*
958          * Allocate and enable a PIO send context.
959          */
960         uctxt->sc = sc_alloc(dd, SC_USER, uctxt->rcvhdrqentsize,
961                              uctxt->dd->node);
962         if (!uctxt->sc)
963                 return -ENOMEM;
964
965         hfi1_cdbg(PROC, "allocated send context %u(%u)\n", uctxt->sc->sw_index,
966                   uctxt->sc->hw_context);
967         ret = sc_enable(uctxt->sc);
968         if (ret)
969                 return ret;
970         /*
971          * Setup shared context resources if the user-level has requested
972          * shared contexts and this is the 'master' process.
973          * This has to be done here so the rest of the sub-contexts find the
974          * proper master.
975          */
976         if (uinfo->subctxt_cnt && !fd->subctxt) {
977                 ret = init_subctxts(uctxt, uinfo);
978                 /*
979                  * On error, we don't need to disable and de-allocate the
980                  * send context because it will be done during file close
981                  */
982                 if (ret)
983                         return ret;
984         }
985         uctxt->userversion = uinfo->userversion;
986         uctxt->flags = hfi1_cap_mask; /* save current flag state */
987         init_waitqueue_head(&uctxt->wait);
988         strlcpy(uctxt->comm, current->comm, sizeof(uctxt->comm));
989         memcpy(uctxt->uuid, uinfo->uuid, sizeof(uctxt->uuid));
990         uctxt->jkey = generate_jkey(current_uid());
991         INIT_LIST_HEAD(&uctxt->sdma_queues);
992         spin_lock_init(&uctxt->sdma_qlock);
993         hfi1_stats.sps_ctxts++;
994         /*
995          * Disable ASPM when there are open user/PSM contexts to avoid
996          * issues with ASPM L1 exit latency
997          */
998         if (dd->freectxts-- == dd->num_user_contexts)
999                 aspm_disable_all(dd);
1000         fd->uctxt = uctxt;
1001
1002         return 0;
1003 }
1004
1005 static int init_subctxts(struct hfi1_ctxtdata *uctxt,
1006                          const struct hfi1_user_info *uinfo)
1007 {
1008         unsigned num_subctxts;
1009
1010         num_subctxts = uinfo->subctxt_cnt;
1011         if (num_subctxts > HFI1_MAX_SHARED_CTXTS)
1012                 return -EINVAL;
1013
1014         uctxt->subctxt_cnt = uinfo->subctxt_cnt;
1015         uctxt->subctxt_id = uinfo->subctxt_id;
1016         uctxt->active_slaves = 1;
1017         uctxt->redirect_seq_cnt = 1;
1018         set_bit(HFI1_CTXT_MASTER_UNINIT, &uctxt->event_flags);
1019
1020         return 0;
1021 }
1022
1023 static int setup_subctxt(struct hfi1_ctxtdata *uctxt)
1024 {
1025         int ret = 0;
1026         unsigned num_subctxts = uctxt->subctxt_cnt;
1027
1028         uctxt->subctxt_uregbase = vmalloc_user(PAGE_SIZE);
1029         if (!uctxt->subctxt_uregbase) {
1030                 ret = -ENOMEM;
1031                 goto bail;
1032         }
1033         /* We can take the size of the RcvHdr Queue from the master */
1034         uctxt->subctxt_rcvhdr_base = vmalloc_user(uctxt->rcvhdrq_size *
1035                                                   num_subctxts);
1036         if (!uctxt->subctxt_rcvhdr_base) {
1037                 ret = -ENOMEM;
1038                 goto bail_ureg;
1039         }
1040
1041         uctxt->subctxt_rcvegrbuf = vmalloc_user(uctxt->egrbufs.size *
1042                                                 num_subctxts);
1043         if (!uctxt->subctxt_rcvegrbuf) {
1044                 ret = -ENOMEM;
1045                 goto bail_rhdr;
1046         }
1047         goto bail;
1048 bail_rhdr:
1049         vfree(uctxt->subctxt_rcvhdr_base);
1050 bail_ureg:
1051         vfree(uctxt->subctxt_uregbase);
1052         uctxt->subctxt_uregbase = NULL;
1053 bail:
1054         return ret;
1055 }
1056
1057 static int user_init(struct file *fp)
1058 {
1059         unsigned int rcvctrl_ops = 0;
1060         struct hfi1_filedata *fd = fp->private_data;
1061         struct hfi1_ctxtdata *uctxt = fd->uctxt;
1062
1063         /* make sure that the context has already been setup */
1064         if (!test_bit(HFI1_CTXT_SETUP_DONE, &uctxt->event_flags))
1065                 return -EFAULT;
1066
1067         /* initialize poll variables... */
1068         uctxt->urgent = 0;
1069         uctxt->urgent_poll = 0;
1070
1071         /*
1072          * Now enable the ctxt for receive.
1073          * For chips that are set to DMA the tail register to memory
1074          * when they change (and when the update bit transitions from
1075          * 0 to 1.  So for those chips, we turn it off and then back on.
1076          * This will (very briefly) affect any other open ctxts, but the
1077          * duration is very short, and therefore isn't an issue.  We
1078          * explicitly set the in-memory tail copy to 0 beforehand, so we
1079          * don't have to wait to be sure the DMA update has happened
1080          * (chip resets head/tail to 0 on transition to enable).
1081          */
1082         if (uctxt->rcvhdrtail_kvaddr)
1083                 clear_rcvhdrtail(uctxt);
1084
1085         /* Setup J_KEY before enabling the context */
1086         hfi1_set_ctxt_jkey(uctxt->dd, uctxt->ctxt, uctxt->jkey);
1087
1088         rcvctrl_ops = HFI1_RCVCTRL_CTXT_ENB;
1089         if (HFI1_CAP_UGET_MASK(uctxt->flags, HDRSUPP))
1090                 rcvctrl_ops |= HFI1_RCVCTRL_TIDFLOW_ENB;
1091         /*
1092          * Ignore the bit in the flags for now until proper
1093          * support for multiple packet per rcv array entry is
1094          * added.
1095          */
1096         if (!HFI1_CAP_UGET_MASK(uctxt->flags, MULTI_PKT_EGR))
1097                 rcvctrl_ops |= HFI1_RCVCTRL_ONE_PKT_EGR_ENB;
1098         if (HFI1_CAP_UGET_MASK(uctxt->flags, NODROP_EGR_FULL))
1099                 rcvctrl_ops |= HFI1_RCVCTRL_NO_EGR_DROP_ENB;
1100         if (HFI1_CAP_UGET_MASK(uctxt->flags, NODROP_RHQ_FULL))
1101                 rcvctrl_ops |= HFI1_RCVCTRL_NO_RHQ_DROP_ENB;
1102         /*
1103          * The RcvCtxtCtrl.TailUpd bit has to be explicitly written.
1104          * We can't rely on the correct value to be set from prior
1105          * uses of the chip or ctxt. Therefore, add the rcvctrl op
1106          * for both cases.
1107          */
1108         if (HFI1_CAP_UGET_MASK(uctxt->flags, DMA_RTAIL))
1109                 rcvctrl_ops |= HFI1_RCVCTRL_TAILUPD_ENB;
1110         else
1111                 rcvctrl_ops |= HFI1_RCVCTRL_TAILUPD_DIS;
1112         hfi1_rcvctrl(uctxt->dd, rcvctrl_ops, uctxt->ctxt);
1113
1114         /* Notify any waiting slaves */
1115         if (uctxt->subctxt_cnt) {
1116                 clear_bit(HFI1_CTXT_MASTER_UNINIT, &uctxt->event_flags);
1117                 wake_up(&uctxt->wait);
1118         }
1119
1120         return 0;
1121 }
1122
1123 static int get_ctxt_info(struct file *fp, void __user *ubase, __u32 len)
1124 {
1125         struct hfi1_ctxt_info cinfo;
1126         struct hfi1_filedata *fd = fp->private_data;
1127         struct hfi1_ctxtdata *uctxt = fd->uctxt;
1128         int ret = 0;
1129
1130         memset(&cinfo, 0, sizeof(cinfo));
1131         cinfo.runtime_flags = (((uctxt->flags >> HFI1_CAP_MISC_SHIFT) &
1132                                 HFI1_CAP_MISC_MASK) << HFI1_CAP_USER_SHIFT) |
1133                         HFI1_CAP_UGET_MASK(uctxt->flags, MASK) |
1134                         HFI1_CAP_KGET_MASK(uctxt->flags, K2U);
1135         /* adjust flag if this fd is not able to cache */
1136         if (!fd->handler)
1137                 cinfo.runtime_flags |= HFI1_CAP_TID_UNMAP; /* no caching */
1138
1139         cinfo.num_active = hfi1_count_active_units();
1140         cinfo.unit = uctxt->dd->unit;
1141         cinfo.ctxt = uctxt->ctxt;
1142         cinfo.subctxt = fd->subctxt;
1143         cinfo.rcvtids = roundup(uctxt->egrbufs.alloced,
1144                                 uctxt->dd->rcv_entries.group_size) +
1145                 uctxt->expected_count;
1146         cinfo.credits = uctxt->sc->credits;
1147         cinfo.numa_node = uctxt->numa_id;
1148         cinfo.rec_cpu = fd->rec_cpu_num;
1149         cinfo.send_ctxt = uctxt->sc->hw_context;
1150
1151         cinfo.egrtids = uctxt->egrbufs.alloced;
1152         cinfo.rcvhdrq_cnt = uctxt->rcvhdrq_cnt;
1153         cinfo.rcvhdrq_entsize = uctxt->rcvhdrqentsize << 2;
1154         cinfo.sdma_ring_size = fd->cq->nentries;
1155         cinfo.rcvegr_size = uctxt->egrbufs.rcvtid_size;
1156
1157         trace_hfi1_ctxt_info(uctxt->dd, uctxt->ctxt, fd->subctxt, cinfo);
1158         if (copy_to_user(ubase, &cinfo, sizeof(cinfo)))
1159                 ret = -EFAULT;
1160
1161         return ret;
1162 }
1163
1164 static int setup_ctxt(struct file *fp)
1165 {
1166         struct hfi1_filedata *fd = fp->private_data;
1167         struct hfi1_ctxtdata *uctxt = fd->uctxt;
1168         struct hfi1_devdata *dd = uctxt->dd;
1169         int ret = 0;
1170
1171         /*
1172          * Context should be set up only once, including allocation and
1173          * programming of eager buffers. This is done if context sharing
1174          * is not requested or by the master process.
1175          */
1176         if (!uctxt->subctxt_cnt || !fd->subctxt) {
1177                 ret = hfi1_init_ctxt(uctxt->sc);
1178                 if (ret)
1179                         goto done;
1180
1181                 /* Now allocate the RcvHdr queue and eager buffers. */
1182                 ret = hfi1_create_rcvhdrq(dd, uctxt);
1183                 if (ret)
1184                         goto done;
1185                 ret = hfi1_setup_eagerbufs(uctxt);
1186                 if (ret)
1187                         goto done;
1188                 if (uctxt->subctxt_cnt && !fd->subctxt) {
1189                         ret = setup_subctxt(uctxt);
1190                         if (ret)
1191                                 goto done;
1192                 }
1193         } else {
1194                 ret = wait_event_interruptible(uctxt->wait, !test_bit(
1195                                                HFI1_CTXT_MASTER_UNINIT,
1196                                                &uctxt->event_flags));
1197                 if (ret)
1198                         goto done;
1199         }
1200
1201         ret = hfi1_user_sdma_alloc_queues(uctxt, fp);
1202         if (ret)
1203                 goto done;
1204         /*
1205          * Expected receive has to be setup for all processes (including
1206          * shared contexts). However, it has to be done after the master
1207          * context has been fully configured as it depends on the
1208          * eager/expected split of the RcvArray entries.
1209          * Setting it up here ensures that the subcontexts will be waiting
1210          * (due to the above wait_event_interruptible() until the master
1211          * is setup.
1212          */
1213         ret = hfi1_user_exp_rcv_init(fp);
1214         if (ret)
1215                 goto done;
1216
1217         set_bit(HFI1_CTXT_SETUP_DONE, &uctxt->event_flags);
1218 done:
1219         return ret;
1220 }
1221
1222 static int get_base_info(struct file *fp, void __user *ubase, __u32 len)
1223 {
1224         struct hfi1_base_info binfo;
1225         struct hfi1_filedata *fd = fp->private_data;
1226         struct hfi1_ctxtdata *uctxt = fd->uctxt;
1227         struct hfi1_devdata *dd = uctxt->dd;
1228         ssize_t sz;
1229         unsigned offset;
1230         int ret = 0;
1231
1232         trace_hfi1_uctxtdata(uctxt->dd, uctxt);
1233
1234         memset(&binfo, 0, sizeof(binfo));
1235         binfo.hw_version = dd->revision;
1236         binfo.sw_version = HFI1_KERN_SWVERSION;
1237         binfo.bthqp = kdeth_qp;
1238         binfo.jkey = uctxt->jkey;
1239         /*
1240          * If more than 64 contexts are enabled the allocated credit
1241          * return will span two or three contiguous pages. Since we only
1242          * map the page containing the context's credit return address,
1243          * we need to calculate the offset in the proper page.
1244          */
1245         offset = ((u64)uctxt->sc->hw_free -
1246                   (u64)dd->cr_base[uctxt->numa_id].va) % PAGE_SIZE;
1247         binfo.sc_credits_addr = HFI1_MMAP_TOKEN(PIO_CRED, uctxt->ctxt,
1248                                                 fd->subctxt, offset);
1249         binfo.pio_bufbase = HFI1_MMAP_TOKEN(PIO_BUFS, uctxt->ctxt,
1250                                             fd->subctxt,
1251                                             uctxt->sc->base_addr);
1252         binfo.pio_bufbase_sop = HFI1_MMAP_TOKEN(PIO_BUFS_SOP,
1253                                                 uctxt->ctxt,
1254                                                 fd->subctxt,
1255                                                 uctxt->sc->base_addr);
1256         binfo.rcvhdr_bufbase = HFI1_MMAP_TOKEN(RCV_HDRQ, uctxt->ctxt,
1257                                                fd->subctxt,
1258                                                uctxt->rcvhdrq);
1259         binfo.rcvegr_bufbase = HFI1_MMAP_TOKEN(RCV_EGRBUF, uctxt->ctxt,
1260                                                fd->subctxt,
1261                                                uctxt->egrbufs.rcvtids[0].phys);
1262         binfo.sdma_comp_bufbase = HFI1_MMAP_TOKEN(SDMA_COMP, uctxt->ctxt,
1263                                                  fd->subctxt, 0);
1264         /*
1265          * user regs are at
1266          * (RXE_PER_CONTEXT_USER + (ctxt * RXE_PER_CONTEXT_SIZE))
1267          */
1268         binfo.user_regbase = HFI1_MMAP_TOKEN(UREGS, uctxt->ctxt,
1269                                             fd->subctxt, 0);
1270         offset = offset_in_page((((uctxt->ctxt - dd->first_user_ctxt) *
1271                     HFI1_MAX_SHARED_CTXTS) + fd->subctxt) *
1272                   sizeof(*dd->events));
1273         binfo.events_bufbase = HFI1_MMAP_TOKEN(EVENTS, uctxt->ctxt,
1274                                               fd->subctxt,
1275                                               offset);
1276         binfo.status_bufbase = HFI1_MMAP_TOKEN(STATUS, uctxt->ctxt,
1277                                               fd->subctxt,
1278                                               dd->status);
1279         if (HFI1_CAP_IS_USET(DMA_RTAIL))
1280                 binfo.rcvhdrtail_base = HFI1_MMAP_TOKEN(RTAIL, uctxt->ctxt,
1281                                                        fd->subctxt, 0);
1282         if (uctxt->subctxt_cnt) {
1283                 binfo.subctxt_uregbase = HFI1_MMAP_TOKEN(SUBCTXT_UREGS,
1284                                                         uctxt->ctxt,
1285                                                         fd->subctxt, 0);
1286                 binfo.subctxt_rcvhdrbuf = HFI1_MMAP_TOKEN(SUBCTXT_RCV_HDRQ,
1287                                                          uctxt->ctxt,
1288                                                          fd->subctxt, 0);
1289                 binfo.subctxt_rcvegrbuf = HFI1_MMAP_TOKEN(SUBCTXT_EGRBUF,
1290                                                          uctxt->ctxt,
1291                                                          fd->subctxt, 0);
1292         }
1293         sz = (len < sizeof(binfo)) ? len : sizeof(binfo);
1294         if (copy_to_user(ubase, &binfo, sz))
1295                 ret = -EFAULT;
1296         return ret;
1297 }
1298
1299 static unsigned int poll_urgent(struct file *fp,
1300                                 struct poll_table_struct *pt)
1301 {
1302         struct hfi1_filedata *fd = fp->private_data;
1303         struct hfi1_ctxtdata *uctxt = fd->uctxt;
1304         struct hfi1_devdata *dd = uctxt->dd;
1305         unsigned pollflag;
1306
1307         poll_wait(fp, &uctxt->wait, pt);
1308
1309         spin_lock_irq(&dd->uctxt_lock);
1310         if (uctxt->urgent != uctxt->urgent_poll) {
1311                 pollflag = POLLIN | POLLRDNORM;
1312                 uctxt->urgent_poll = uctxt->urgent;
1313         } else {
1314                 pollflag = 0;
1315                 set_bit(HFI1_CTXT_WAITING_URG, &uctxt->event_flags);
1316         }
1317         spin_unlock_irq(&dd->uctxt_lock);
1318
1319         return pollflag;
1320 }
1321
1322 static unsigned int poll_next(struct file *fp,
1323                               struct poll_table_struct *pt)
1324 {
1325         struct hfi1_filedata *fd = fp->private_data;
1326         struct hfi1_ctxtdata *uctxt = fd->uctxt;
1327         struct hfi1_devdata *dd = uctxt->dd;
1328         unsigned pollflag;
1329
1330         poll_wait(fp, &uctxt->wait, pt);
1331
1332         spin_lock_irq(&dd->uctxt_lock);
1333         if (hdrqempty(uctxt)) {
1334                 set_bit(HFI1_CTXT_WAITING_RCV, &uctxt->event_flags);
1335                 hfi1_rcvctrl(dd, HFI1_RCVCTRL_INTRAVAIL_ENB, uctxt->ctxt);
1336                 pollflag = 0;
1337         } else {
1338                 pollflag = POLLIN | POLLRDNORM;
1339         }
1340         spin_unlock_irq(&dd->uctxt_lock);
1341
1342         return pollflag;
1343 }
1344
1345 /*
1346  * Find all user contexts in use, and set the specified bit in their
1347  * event mask.
1348  * See also find_ctxt() for a similar use, that is specific to send buffers.
1349  */
1350 int hfi1_set_uevent_bits(struct hfi1_pportdata *ppd, const int evtbit)
1351 {
1352         struct hfi1_ctxtdata *uctxt;
1353         struct hfi1_devdata *dd = ppd->dd;
1354         unsigned ctxt;
1355         int ret = 0;
1356         unsigned long flags;
1357
1358         if (!dd->events) {
1359                 ret = -EINVAL;
1360                 goto done;
1361         }
1362
1363         spin_lock_irqsave(&dd->uctxt_lock, flags);
1364         for (ctxt = dd->first_user_ctxt; ctxt < dd->num_rcv_contexts;
1365              ctxt++) {
1366                 uctxt = dd->rcd[ctxt];
1367                 if (uctxt) {
1368                         unsigned long *evs = dd->events +
1369                                 (uctxt->ctxt - dd->first_user_ctxt) *
1370                                 HFI1_MAX_SHARED_CTXTS;
1371                         int i;
1372                         /*
1373                          * subctxt_cnt is 0 if not shared, so do base
1374                          * separately, first, then remaining subctxt, if any
1375                          */
1376                         set_bit(evtbit, evs);
1377                         for (i = 1; i < uctxt->subctxt_cnt; i++)
1378                                 set_bit(evtbit, evs + i);
1379                 }
1380         }
1381         spin_unlock_irqrestore(&dd->uctxt_lock, flags);
1382 done:
1383         return ret;
1384 }
1385
1386 /**
1387  * manage_rcvq - manage a context's receive queue
1388  * @uctxt: the context
1389  * @subctxt: the sub-context
1390  * @start_stop: action to carry out
1391  *
1392  * start_stop == 0 disables receive on the context, for use in queue
1393  * overflow conditions.  start_stop==1 re-enables, to be used to
1394  * re-init the software copy of the head register
1395  */
1396 static int manage_rcvq(struct hfi1_ctxtdata *uctxt, unsigned subctxt,
1397                        int start_stop)
1398 {
1399         struct hfi1_devdata *dd = uctxt->dd;
1400         unsigned int rcvctrl_op;
1401
1402         if (subctxt)
1403                 goto bail;
1404         /* atomically clear receive enable ctxt. */
1405         if (start_stop) {
1406                 /*
1407                  * On enable, force in-memory copy of the tail register to
1408                  * 0, so that protocol code doesn't have to worry about
1409                  * whether or not the chip has yet updated the in-memory
1410                  * copy or not on return from the system call. The chip
1411                  * always resets it's tail register back to 0 on a
1412                  * transition from disabled to enabled.
1413                  */
1414                 if (uctxt->rcvhdrtail_kvaddr)
1415                         clear_rcvhdrtail(uctxt);
1416                 rcvctrl_op = HFI1_RCVCTRL_CTXT_ENB;
1417         } else {
1418                 rcvctrl_op = HFI1_RCVCTRL_CTXT_DIS;
1419         }
1420         hfi1_rcvctrl(dd, rcvctrl_op, uctxt->ctxt);
1421         /* always; new head should be equal to new tail; see above */
1422 bail:
1423         return 0;
1424 }
1425
1426 /*
1427  * clear the event notifier events for this context.
1428  * User process then performs actions appropriate to bit having been
1429  * set, if desired, and checks again in future.
1430  */
1431 static int user_event_ack(struct hfi1_ctxtdata *uctxt, int subctxt,
1432                           unsigned long events)
1433 {
1434         int i;
1435         struct hfi1_devdata *dd = uctxt->dd;
1436         unsigned long *evs;
1437
1438         if (!dd->events)
1439                 return 0;
1440
1441         evs = dd->events + ((uctxt->ctxt - dd->first_user_ctxt) *
1442                             HFI1_MAX_SHARED_CTXTS) + subctxt;
1443
1444         for (i = 0; i <= _HFI1_MAX_EVENT_BIT; i++) {
1445                 if (!test_bit(i, &events))
1446                         continue;
1447                 clear_bit(i, evs);
1448         }
1449         return 0;
1450 }
1451
1452 static int set_ctxt_pkey(struct hfi1_ctxtdata *uctxt, unsigned subctxt,
1453                          u16 pkey)
1454 {
1455         int ret = -ENOENT, i, intable = 0;
1456         struct hfi1_pportdata *ppd = uctxt->ppd;
1457         struct hfi1_devdata *dd = uctxt->dd;
1458
1459         if (pkey == LIM_MGMT_P_KEY || pkey == FULL_MGMT_P_KEY) {
1460                 ret = -EINVAL;
1461                 goto done;
1462         }
1463
1464         for (i = 0; i < ARRAY_SIZE(ppd->pkeys); i++)
1465                 if (pkey == ppd->pkeys[i]) {
1466                         intable = 1;
1467                         break;
1468                 }
1469
1470         if (intable)
1471                 ret = hfi1_set_ctxt_pkey(dd, uctxt->ctxt, pkey);
1472 done:
1473         return ret;
1474 }
1475
1476 static void user_remove(struct hfi1_devdata *dd)
1477 {
1478
1479         hfi1_cdev_cleanup(&dd->user_cdev, &dd->user_device);
1480 }
1481
1482 static int user_add(struct hfi1_devdata *dd)
1483 {
1484         char name[10];
1485         int ret;
1486
1487         snprintf(name, sizeof(name), "%s_%d", class_name(), dd->unit);
1488         ret = hfi1_cdev_init(dd->unit, name, &hfi1_file_ops,
1489                              &dd->user_cdev, &dd->user_device,
1490                              true, &dd->kobj);
1491         if (ret)
1492                 user_remove(dd);
1493
1494         return ret;
1495 }
1496
1497 /*
1498  * Create per-unit files in /dev
1499  */
1500 int hfi1_device_create(struct hfi1_devdata *dd)
1501 {
1502         return user_add(dd);
1503 }
1504
1505 /*
1506  * Remove per-unit files in /dev
1507  * void, core kernel returns no errors for this stuff
1508  */
1509 void hfi1_device_remove(struct hfi1_devdata *dd)
1510 {
1511         user_remove(dd);
1512 }