Merge tag 'dmaengine-5.2-rc1' of git://git.infradead.org/users/vkoul/slave-dma
[linux-2.6-microblaze.git] / drivers / virtio / virtio_ring.c
1 /* Virtio ring implementation.
2  *
3  *  Copyright 2007 Rusty Russell IBM Corporation
4  *
5  *  This program is free software; you can redistribute it and/or modify
6  *  it under the terms of the GNU General Public License as published by
7  *  the Free Software Foundation; either version 2 of the License, or
8  *  (at your option) any later version.
9  *
10  *  This program is distributed in the hope that it will be useful,
11  *  but WITHOUT ANY WARRANTY; without even the implied warranty of
12  *  MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
13  *  GNU General Public License for more details.
14  *
15  *  You should have received a copy of the GNU General Public License
16  *  along with this program; if not, write to the Free Software
17  *  Foundation, Inc., 51 Franklin St, Fifth Floor, Boston, MA  02110-1301  USA
18  */
19 #include <linux/virtio.h>
20 #include <linux/virtio_ring.h>
21 #include <linux/virtio_config.h>
22 #include <linux/device.h>
23 #include <linux/slab.h>
24 #include <linux/module.h>
25 #include <linux/hrtimer.h>
26 #include <linux/dma-mapping.h>
27 #include <xen/xen.h>
28
29 #ifdef DEBUG
30 /* For development, we want to crash whenever the ring is screwed. */
31 #define BAD_RING(_vq, fmt, args...)                             \
32         do {                                                    \
33                 dev_err(&(_vq)->vq.vdev->dev,                   \
34                         "%s:"fmt, (_vq)->vq.name, ##args);      \
35                 BUG();                                          \
36         } while (0)
37 /* Caller is supposed to guarantee no reentry. */
38 #define START_USE(_vq)                                          \
39         do {                                                    \
40                 if ((_vq)->in_use)                              \
41                         panic("%s:in_use = %i\n",               \
42                               (_vq)->vq.name, (_vq)->in_use);   \
43                 (_vq)->in_use = __LINE__;                       \
44         } while (0)
45 #define END_USE(_vq) \
46         do { BUG_ON(!(_vq)->in_use); (_vq)->in_use = 0; } while(0)
47 #define LAST_ADD_TIME_UPDATE(_vq)                               \
48         do {                                                    \
49                 ktime_t now = ktime_get();                      \
50                                                                 \
51                 /* No kick or get, with .1 second between?  Warn. */ \
52                 if ((_vq)->last_add_time_valid)                 \
53                         WARN_ON(ktime_to_ms(ktime_sub(now,      \
54                                 (_vq)->last_add_time)) > 100);  \
55                 (_vq)->last_add_time = now;                     \
56                 (_vq)->last_add_time_valid = true;              \
57         } while (0)
58 #define LAST_ADD_TIME_CHECK(_vq)                                \
59         do {                                                    \
60                 if ((_vq)->last_add_time_valid) {               \
61                         WARN_ON(ktime_to_ms(ktime_sub(ktime_get(), \
62                                       (_vq)->last_add_time)) > 100); \
63                 }                                               \
64         } while (0)
65 #define LAST_ADD_TIME_INVALID(_vq)                              \
66         ((_vq)->last_add_time_valid = false)
67 #else
68 #define BAD_RING(_vq, fmt, args...)                             \
69         do {                                                    \
70                 dev_err(&_vq->vq.vdev->dev,                     \
71                         "%s:"fmt, (_vq)->vq.name, ##args);      \
72                 (_vq)->broken = true;                           \
73         } while (0)
74 #define START_USE(vq)
75 #define END_USE(vq)
76 #define LAST_ADD_TIME_UPDATE(vq)
77 #define LAST_ADD_TIME_CHECK(vq)
78 #define LAST_ADD_TIME_INVALID(vq)
79 #endif
80
81 struct vring_desc_state_split {
82         void *data;                     /* Data for callback. */
83         struct vring_desc *indir_desc;  /* Indirect descriptor, if any. */
84 };
85
86 struct vring_desc_state_packed {
87         void *data;                     /* Data for callback. */
88         struct vring_packed_desc *indir_desc; /* Indirect descriptor, if any. */
89         u16 num;                        /* Descriptor list length. */
90         u16 next;                       /* The next desc state in a list. */
91         u16 last;                       /* The last desc state in a list. */
92 };
93
94 struct vring_desc_extra_packed {
95         dma_addr_t addr;                /* Buffer DMA addr. */
96         u32 len;                        /* Buffer length. */
97         u16 flags;                      /* Descriptor flags. */
98 };
99
100 struct vring_virtqueue {
101         struct virtqueue vq;
102
103         /* Is this a packed ring? */
104         bool packed_ring;
105
106         /* Is DMA API used? */
107         bool use_dma_api;
108
109         /* Can we use weak barriers? */
110         bool weak_barriers;
111
112         /* Other side has made a mess, don't try any more. */
113         bool broken;
114
115         /* Host supports indirect buffers */
116         bool indirect;
117
118         /* Host publishes avail event idx */
119         bool event;
120
121         /* Head of free buffer list. */
122         unsigned int free_head;
123         /* Number we've added since last sync. */
124         unsigned int num_added;
125
126         /* Last used index we've seen. */
127         u16 last_used_idx;
128
129         union {
130                 /* Available for split ring */
131                 struct {
132                         /* Actual memory layout for this queue. */
133                         struct vring vring;
134
135                         /* Last written value to avail->flags */
136                         u16 avail_flags_shadow;
137
138                         /*
139                          * Last written value to avail->idx in
140                          * guest byte order.
141                          */
142                         u16 avail_idx_shadow;
143
144                         /* Per-descriptor state. */
145                         struct vring_desc_state_split *desc_state;
146
147                         /* DMA address and size information */
148                         dma_addr_t queue_dma_addr;
149                         size_t queue_size_in_bytes;
150                 } split;
151
152                 /* Available for packed ring */
153                 struct {
154                         /* Actual memory layout for this queue. */
155                         struct {
156                                 unsigned int num;
157                                 struct vring_packed_desc *desc;
158                                 struct vring_packed_desc_event *driver;
159                                 struct vring_packed_desc_event *device;
160                         } vring;
161
162                         /* Driver ring wrap counter. */
163                         bool avail_wrap_counter;
164
165                         /* Device ring wrap counter. */
166                         bool used_wrap_counter;
167
168                         /* Avail used flags. */
169                         u16 avail_used_flags;
170
171                         /* Index of the next avail descriptor. */
172                         u16 next_avail_idx;
173
174                         /*
175                          * Last written value to driver->flags in
176                          * guest byte order.
177                          */
178                         u16 event_flags_shadow;
179
180                         /* Per-descriptor state. */
181                         struct vring_desc_state_packed *desc_state;
182                         struct vring_desc_extra_packed *desc_extra;
183
184                         /* DMA address and size information */
185                         dma_addr_t ring_dma_addr;
186                         dma_addr_t driver_event_dma_addr;
187                         dma_addr_t device_event_dma_addr;
188                         size_t ring_size_in_bytes;
189                         size_t event_size_in_bytes;
190                 } packed;
191         };
192
193         /* How to notify other side. FIXME: commonalize hcalls! */
194         bool (*notify)(struct virtqueue *vq);
195
196         /* DMA, allocation, and size information */
197         bool we_own_ring;
198
199 #ifdef DEBUG
200         /* They're supposed to lock for us. */
201         unsigned int in_use;
202
203         /* Figure out if their kicks are too delayed. */
204         bool last_add_time_valid;
205         ktime_t last_add_time;
206 #endif
207 };
208
209
210 /*
211  * Helpers.
212  */
213
214 #define to_vvq(_vq) container_of(_vq, struct vring_virtqueue, vq)
215
216 static inline bool virtqueue_use_indirect(struct virtqueue *_vq,
217                                           unsigned int total_sg)
218 {
219         struct vring_virtqueue *vq = to_vvq(_vq);
220
221         /*
222          * If the host supports indirect descriptor tables, and we have multiple
223          * buffers, then go indirect. FIXME: tune this threshold
224          */
225         return (vq->indirect && total_sg > 1 && vq->vq.num_free);
226 }
227
228 /*
229  * Modern virtio devices have feature bits to specify whether they need a
230  * quirk and bypass the IOMMU. If not there, just use the DMA API.
231  *
232  * If there, the interaction between virtio and DMA API is messy.
233  *
234  * On most systems with virtio, physical addresses match bus addresses,
235  * and it doesn't particularly matter whether we use the DMA API.
236  *
237  * On some systems, including Xen and any system with a physical device
238  * that speaks virtio behind a physical IOMMU, we must use the DMA API
239  * for virtio DMA to work at all.
240  *
241  * On other systems, including SPARC and PPC64, virtio-pci devices are
242  * enumerated as though they are behind an IOMMU, but the virtio host
243  * ignores the IOMMU, so we must either pretend that the IOMMU isn't
244  * there or somehow map everything as the identity.
245  *
246  * For the time being, we preserve historic behavior and bypass the DMA
247  * API.
248  *
249  * TODO: install a per-device DMA ops structure that does the right thing
250  * taking into account all the above quirks, and use the DMA API
251  * unconditionally on data path.
252  */
253
254 static bool vring_use_dma_api(struct virtio_device *vdev)
255 {
256         if (!virtio_has_iommu_quirk(vdev))
257                 return true;
258
259         /* Otherwise, we are left to guess. */
260         /*
261          * In theory, it's possible to have a buggy QEMU-supposed
262          * emulated Q35 IOMMU and Xen enabled at the same time.  On
263          * such a configuration, virtio has never worked and will
264          * not work without an even larger kludge.  Instead, enable
265          * the DMA API if we're a Xen guest, which at least allows
266          * all of the sensible Xen configurations to work correctly.
267          */
268         if (xen_domain())
269                 return true;
270
271         return false;
272 }
273
274 size_t virtio_max_dma_size(struct virtio_device *vdev)
275 {
276         size_t max_segment_size = SIZE_MAX;
277
278         if (vring_use_dma_api(vdev))
279                 max_segment_size = dma_max_mapping_size(&vdev->dev);
280
281         return max_segment_size;
282 }
283 EXPORT_SYMBOL_GPL(virtio_max_dma_size);
284
285 static void *vring_alloc_queue(struct virtio_device *vdev, size_t size,
286                               dma_addr_t *dma_handle, gfp_t flag)
287 {
288         if (vring_use_dma_api(vdev)) {
289                 return dma_alloc_coherent(vdev->dev.parent, size,
290                                           dma_handle, flag);
291         } else {
292                 void *queue = alloc_pages_exact(PAGE_ALIGN(size), flag);
293
294                 if (queue) {
295                         phys_addr_t phys_addr = virt_to_phys(queue);
296                         *dma_handle = (dma_addr_t)phys_addr;
297
298                         /*
299                          * Sanity check: make sure we dind't truncate
300                          * the address.  The only arches I can find that
301                          * have 64-bit phys_addr_t but 32-bit dma_addr_t
302                          * are certain non-highmem MIPS and x86
303                          * configurations, but these configurations
304                          * should never allocate physical pages above 32
305                          * bits, so this is fine.  Just in case, throw a
306                          * warning and abort if we end up with an
307                          * unrepresentable address.
308                          */
309                         if (WARN_ON_ONCE(*dma_handle != phys_addr)) {
310                                 free_pages_exact(queue, PAGE_ALIGN(size));
311                                 return NULL;
312                         }
313                 }
314                 return queue;
315         }
316 }
317
318 static void vring_free_queue(struct virtio_device *vdev, size_t size,
319                              void *queue, dma_addr_t dma_handle)
320 {
321         if (vring_use_dma_api(vdev))
322                 dma_free_coherent(vdev->dev.parent, size, queue, dma_handle);
323         else
324                 free_pages_exact(queue, PAGE_ALIGN(size));
325 }
326
327 /*
328  * The DMA ops on various arches are rather gnarly right now, and
329  * making all of the arch DMA ops work on the vring device itself
330  * is a mess.  For now, we use the parent device for DMA ops.
331  */
332 static inline struct device *vring_dma_dev(const struct vring_virtqueue *vq)
333 {
334         return vq->vq.vdev->dev.parent;
335 }
336
337 /* Map one sg entry. */
338 static dma_addr_t vring_map_one_sg(const struct vring_virtqueue *vq,
339                                    struct scatterlist *sg,
340                                    enum dma_data_direction direction)
341 {
342         if (!vq->use_dma_api)
343                 return (dma_addr_t)sg_phys(sg);
344
345         /*
346          * We can't use dma_map_sg, because we don't use scatterlists in
347          * the way it expects (we don't guarantee that the scatterlist
348          * will exist for the lifetime of the mapping).
349          */
350         return dma_map_page(vring_dma_dev(vq),
351                             sg_page(sg), sg->offset, sg->length,
352                             direction);
353 }
354
355 static dma_addr_t vring_map_single(const struct vring_virtqueue *vq,
356                                    void *cpu_addr, size_t size,
357                                    enum dma_data_direction direction)
358 {
359         if (!vq->use_dma_api)
360                 return (dma_addr_t)virt_to_phys(cpu_addr);
361
362         return dma_map_single(vring_dma_dev(vq),
363                               cpu_addr, size, direction);
364 }
365
366 static int vring_mapping_error(const struct vring_virtqueue *vq,
367                                dma_addr_t addr)
368 {
369         if (!vq->use_dma_api)
370                 return 0;
371
372         return dma_mapping_error(vring_dma_dev(vq), addr);
373 }
374
375
376 /*
377  * Split ring specific functions - *_split().
378  */
379
380 static void vring_unmap_one_split(const struct vring_virtqueue *vq,
381                                   struct vring_desc *desc)
382 {
383         u16 flags;
384
385         if (!vq->use_dma_api)
386                 return;
387
388         flags = virtio16_to_cpu(vq->vq.vdev, desc->flags);
389
390         if (flags & VRING_DESC_F_INDIRECT) {
391                 dma_unmap_single(vring_dma_dev(vq),
392                                  virtio64_to_cpu(vq->vq.vdev, desc->addr),
393                                  virtio32_to_cpu(vq->vq.vdev, desc->len),
394                                  (flags & VRING_DESC_F_WRITE) ?
395                                  DMA_FROM_DEVICE : DMA_TO_DEVICE);
396         } else {
397                 dma_unmap_page(vring_dma_dev(vq),
398                                virtio64_to_cpu(vq->vq.vdev, desc->addr),
399                                virtio32_to_cpu(vq->vq.vdev, desc->len),
400                                (flags & VRING_DESC_F_WRITE) ?
401                                DMA_FROM_DEVICE : DMA_TO_DEVICE);
402         }
403 }
404
405 static struct vring_desc *alloc_indirect_split(struct virtqueue *_vq,
406                                                unsigned int total_sg,
407                                                gfp_t gfp)
408 {
409         struct vring_desc *desc;
410         unsigned int i;
411
412         /*
413          * We require lowmem mappings for the descriptors because
414          * otherwise virt_to_phys will give us bogus addresses in the
415          * virtqueue.
416          */
417         gfp &= ~__GFP_HIGHMEM;
418
419         desc = kmalloc_array(total_sg, sizeof(struct vring_desc), gfp);
420         if (!desc)
421                 return NULL;
422
423         for (i = 0; i < total_sg; i++)
424                 desc[i].next = cpu_to_virtio16(_vq->vdev, i + 1);
425         return desc;
426 }
427
428 static inline int virtqueue_add_split(struct virtqueue *_vq,
429                                       struct scatterlist *sgs[],
430                                       unsigned int total_sg,
431                                       unsigned int out_sgs,
432                                       unsigned int in_sgs,
433                                       void *data,
434                                       void *ctx,
435                                       gfp_t gfp)
436 {
437         struct vring_virtqueue *vq = to_vvq(_vq);
438         struct scatterlist *sg;
439         struct vring_desc *desc;
440         unsigned int i, n, avail, descs_used, uninitialized_var(prev), err_idx;
441         int head;
442         bool indirect;
443
444         START_USE(vq);
445
446         BUG_ON(data == NULL);
447         BUG_ON(ctx && vq->indirect);
448
449         if (unlikely(vq->broken)) {
450                 END_USE(vq);
451                 return -EIO;
452         }
453
454         LAST_ADD_TIME_UPDATE(vq);
455
456         BUG_ON(total_sg == 0);
457
458         head = vq->free_head;
459
460         if (virtqueue_use_indirect(_vq, total_sg))
461                 desc = alloc_indirect_split(_vq, total_sg, gfp);
462         else {
463                 desc = NULL;
464                 WARN_ON_ONCE(total_sg > vq->split.vring.num && !vq->indirect);
465         }
466
467         if (desc) {
468                 /* Use a single buffer which doesn't continue */
469                 indirect = true;
470                 /* Set up rest to use this indirect table. */
471                 i = 0;
472                 descs_used = 1;
473         } else {
474                 indirect = false;
475                 desc = vq->split.vring.desc;
476                 i = head;
477                 descs_used = total_sg;
478         }
479
480         if (vq->vq.num_free < descs_used) {
481                 pr_debug("Can't add buf len %i - avail = %i\n",
482                          descs_used, vq->vq.num_free);
483                 /* FIXME: for historical reasons, we force a notify here if
484                  * there are outgoing parts to the buffer.  Presumably the
485                  * host should service the ring ASAP. */
486                 if (out_sgs)
487                         vq->notify(&vq->vq);
488                 if (indirect)
489                         kfree(desc);
490                 END_USE(vq);
491                 return -ENOSPC;
492         }
493
494         for (n = 0; n < out_sgs; n++) {
495                 for (sg = sgs[n]; sg; sg = sg_next(sg)) {
496                         dma_addr_t addr = vring_map_one_sg(vq, sg, DMA_TO_DEVICE);
497                         if (vring_mapping_error(vq, addr))
498                                 goto unmap_release;
499
500                         desc[i].flags = cpu_to_virtio16(_vq->vdev, VRING_DESC_F_NEXT);
501                         desc[i].addr = cpu_to_virtio64(_vq->vdev, addr);
502                         desc[i].len = cpu_to_virtio32(_vq->vdev, sg->length);
503                         prev = i;
504                         i = virtio16_to_cpu(_vq->vdev, desc[i].next);
505                 }
506         }
507         for (; n < (out_sgs + in_sgs); n++) {
508                 for (sg = sgs[n]; sg; sg = sg_next(sg)) {
509                         dma_addr_t addr = vring_map_one_sg(vq, sg, DMA_FROM_DEVICE);
510                         if (vring_mapping_error(vq, addr))
511                                 goto unmap_release;
512
513                         desc[i].flags = cpu_to_virtio16(_vq->vdev, VRING_DESC_F_NEXT | VRING_DESC_F_WRITE);
514                         desc[i].addr = cpu_to_virtio64(_vq->vdev, addr);
515                         desc[i].len = cpu_to_virtio32(_vq->vdev, sg->length);
516                         prev = i;
517                         i = virtio16_to_cpu(_vq->vdev, desc[i].next);
518                 }
519         }
520         /* Last one doesn't continue. */
521         desc[prev].flags &= cpu_to_virtio16(_vq->vdev, ~VRING_DESC_F_NEXT);
522
523         if (indirect) {
524                 /* Now that the indirect table is filled in, map it. */
525                 dma_addr_t addr = vring_map_single(
526                         vq, desc, total_sg * sizeof(struct vring_desc),
527                         DMA_TO_DEVICE);
528                 if (vring_mapping_error(vq, addr))
529                         goto unmap_release;
530
531                 vq->split.vring.desc[head].flags = cpu_to_virtio16(_vq->vdev,
532                                 VRING_DESC_F_INDIRECT);
533                 vq->split.vring.desc[head].addr = cpu_to_virtio64(_vq->vdev,
534                                 addr);
535
536                 vq->split.vring.desc[head].len = cpu_to_virtio32(_vq->vdev,
537                                 total_sg * sizeof(struct vring_desc));
538         }
539
540         /* We're using some buffers from the free list. */
541         vq->vq.num_free -= descs_used;
542
543         /* Update free pointer */
544         if (indirect)
545                 vq->free_head = virtio16_to_cpu(_vq->vdev,
546                                         vq->split.vring.desc[head].next);
547         else
548                 vq->free_head = i;
549
550         /* Store token and indirect buffer state. */
551         vq->split.desc_state[head].data = data;
552         if (indirect)
553                 vq->split.desc_state[head].indir_desc = desc;
554         else
555                 vq->split.desc_state[head].indir_desc = ctx;
556
557         /* Put entry in available array (but don't update avail->idx until they
558          * do sync). */
559         avail = vq->split.avail_idx_shadow & (vq->split.vring.num - 1);
560         vq->split.vring.avail->ring[avail] = cpu_to_virtio16(_vq->vdev, head);
561
562         /* Descriptors and available array need to be set before we expose the
563          * new available array entries. */
564         virtio_wmb(vq->weak_barriers);
565         vq->split.avail_idx_shadow++;
566         vq->split.vring.avail->idx = cpu_to_virtio16(_vq->vdev,
567                                                 vq->split.avail_idx_shadow);
568         vq->num_added++;
569
570         pr_debug("Added buffer head %i to %p\n", head, vq);
571         END_USE(vq);
572
573         /* This is very unlikely, but theoretically possible.  Kick
574          * just in case. */
575         if (unlikely(vq->num_added == (1 << 16) - 1))
576                 virtqueue_kick(_vq);
577
578         return 0;
579
580 unmap_release:
581         err_idx = i;
582         i = head;
583
584         for (n = 0; n < total_sg; n++) {
585                 if (i == err_idx)
586                         break;
587                 vring_unmap_one_split(vq, &desc[i]);
588                 i = virtio16_to_cpu(_vq->vdev, vq->split.vring.desc[i].next);
589         }
590
591         if (indirect)
592                 kfree(desc);
593
594         END_USE(vq);
595         return -EIO;
596 }
597
598 static bool virtqueue_kick_prepare_split(struct virtqueue *_vq)
599 {
600         struct vring_virtqueue *vq = to_vvq(_vq);
601         u16 new, old;
602         bool needs_kick;
603
604         START_USE(vq);
605         /* We need to expose available array entries before checking avail
606          * event. */
607         virtio_mb(vq->weak_barriers);
608
609         old = vq->split.avail_idx_shadow - vq->num_added;
610         new = vq->split.avail_idx_shadow;
611         vq->num_added = 0;
612
613         LAST_ADD_TIME_CHECK(vq);
614         LAST_ADD_TIME_INVALID(vq);
615
616         if (vq->event) {
617                 needs_kick = vring_need_event(virtio16_to_cpu(_vq->vdev,
618                                         vring_avail_event(&vq->split.vring)),
619                                               new, old);
620         } else {
621                 needs_kick = !(vq->split.vring.used->flags &
622                                         cpu_to_virtio16(_vq->vdev,
623                                                 VRING_USED_F_NO_NOTIFY));
624         }
625         END_USE(vq);
626         return needs_kick;
627 }
628
629 static void detach_buf_split(struct vring_virtqueue *vq, unsigned int head,
630                              void **ctx)
631 {
632         unsigned int i, j;
633         __virtio16 nextflag = cpu_to_virtio16(vq->vq.vdev, VRING_DESC_F_NEXT);
634
635         /* Clear data ptr. */
636         vq->split.desc_state[head].data = NULL;
637
638         /* Put back on free list: unmap first-level descriptors and find end */
639         i = head;
640
641         while (vq->split.vring.desc[i].flags & nextflag) {
642                 vring_unmap_one_split(vq, &vq->split.vring.desc[i]);
643                 i = virtio16_to_cpu(vq->vq.vdev, vq->split.vring.desc[i].next);
644                 vq->vq.num_free++;
645         }
646
647         vring_unmap_one_split(vq, &vq->split.vring.desc[i]);
648         vq->split.vring.desc[i].next = cpu_to_virtio16(vq->vq.vdev,
649                                                 vq->free_head);
650         vq->free_head = head;
651
652         /* Plus final descriptor */
653         vq->vq.num_free++;
654
655         if (vq->indirect) {
656                 struct vring_desc *indir_desc =
657                                 vq->split.desc_state[head].indir_desc;
658                 u32 len;
659
660                 /* Free the indirect table, if any, now that it's unmapped. */
661                 if (!indir_desc)
662                         return;
663
664                 len = virtio32_to_cpu(vq->vq.vdev,
665                                 vq->split.vring.desc[head].len);
666
667                 BUG_ON(!(vq->split.vring.desc[head].flags &
668                          cpu_to_virtio16(vq->vq.vdev, VRING_DESC_F_INDIRECT)));
669                 BUG_ON(len == 0 || len % sizeof(struct vring_desc));
670
671                 for (j = 0; j < len / sizeof(struct vring_desc); j++)
672                         vring_unmap_one_split(vq, &indir_desc[j]);
673
674                 kfree(indir_desc);
675                 vq->split.desc_state[head].indir_desc = NULL;
676         } else if (ctx) {
677                 *ctx = vq->split.desc_state[head].indir_desc;
678         }
679 }
680
681 static inline bool more_used_split(const struct vring_virtqueue *vq)
682 {
683         return vq->last_used_idx != virtio16_to_cpu(vq->vq.vdev,
684                         vq->split.vring.used->idx);
685 }
686
687 static void *virtqueue_get_buf_ctx_split(struct virtqueue *_vq,
688                                          unsigned int *len,
689                                          void **ctx)
690 {
691         struct vring_virtqueue *vq = to_vvq(_vq);
692         void *ret;
693         unsigned int i;
694         u16 last_used;
695
696         START_USE(vq);
697
698         if (unlikely(vq->broken)) {
699                 END_USE(vq);
700                 return NULL;
701         }
702
703         if (!more_used_split(vq)) {
704                 pr_debug("No more buffers in queue\n");
705                 END_USE(vq);
706                 return NULL;
707         }
708
709         /* Only get used array entries after they have been exposed by host. */
710         virtio_rmb(vq->weak_barriers);
711
712         last_used = (vq->last_used_idx & (vq->split.vring.num - 1));
713         i = virtio32_to_cpu(_vq->vdev,
714                         vq->split.vring.used->ring[last_used].id);
715         *len = virtio32_to_cpu(_vq->vdev,
716                         vq->split.vring.used->ring[last_used].len);
717
718         if (unlikely(i >= vq->split.vring.num)) {
719                 BAD_RING(vq, "id %u out of range\n", i);
720                 return NULL;
721         }
722         if (unlikely(!vq->split.desc_state[i].data)) {
723                 BAD_RING(vq, "id %u is not a head!\n", i);
724                 return NULL;
725         }
726
727         /* detach_buf_split clears data, so grab it now. */
728         ret = vq->split.desc_state[i].data;
729         detach_buf_split(vq, i, ctx);
730         vq->last_used_idx++;
731         /* If we expect an interrupt for the next entry, tell host
732          * by writing event index and flush out the write before
733          * the read in the next get_buf call. */
734         if (!(vq->split.avail_flags_shadow & VRING_AVAIL_F_NO_INTERRUPT))
735                 virtio_store_mb(vq->weak_barriers,
736                                 &vring_used_event(&vq->split.vring),
737                                 cpu_to_virtio16(_vq->vdev, vq->last_used_idx));
738
739         LAST_ADD_TIME_INVALID(vq);
740
741         END_USE(vq);
742         return ret;
743 }
744
745 static void virtqueue_disable_cb_split(struct virtqueue *_vq)
746 {
747         struct vring_virtqueue *vq = to_vvq(_vq);
748
749         if (!(vq->split.avail_flags_shadow & VRING_AVAIL_F_NO_INTERRUPT)) {
750                 vq->split.avail_flags_shadow |= VRING_AVAIL_F_NO_INTERRUPT;
751                 if (!vq->event)
752                         vq->split.vring.avail->flags =
753                                 cpu_to_virtio16(_vq->vdev,
754                                                 vq->split.avail_flags_shadow);
755         }
756 }
757
758 static unsigned virtqueue_enable_cb_prepare_split(struct virtqueue *_vq)
759 {
760         struct vring_virtqueue *vq = to_vvq(_vq);
761         u16 last_used_idx;
762
763         START_USE(vq);
764
765         /* We optimistically turn back on interrupts, then check if there was
766          * more to do. */
767         /* Depending on the VIRTIO_RING_F_EVENT_IDX feature, we need to
768          * either clear the flags bit or point the event index at the next
769          * entry. Always do both to keep code simple. */
770         if (vq->split.avail_flags_shadow & VRING_AVAIL_F_NO_INTERRUPT) {
771                 vq->split.avail_flags_shadow &= ~VRING_AVAIL_F_NO_INTERRUPT;
772                 if (!vq->event)
773                         vq->split.vring.avail->flags =
774                                 cpu_to_virtio16(_vq->vdev,
775                                                 vq->split.avail_flags_shadow);
776         }
777         vring_used_event(&vq->split.vring) = cpu_to_virtio16(_vq->vdev,
778                         last_used_idx = vq->last_used_idx);
779         END_USE(vq);
780         return last_used_idx;
781 }
782
783 static bool virtqueue_poll_split(struct virtqueue *_vq, unsigned last_used_idx)
784 {
785         struct vring_virtqueue *vq = to_vvq(_vq);
786
787         return (u16)last_used_idx != virtio16_to_cpu(_vq->vdev,
788                         vq->split.vring.used->idx);
789 }
790
791 static bool virtqueue_enable_cb_delayed_split(struct virtqueue *_vq)
792 {
793         struct vring_virtqueue *vq = to_vvq(_vq);
794         u16 bufs;
795
796         START_USE(vq);
797
798         /* We optimistically turn back on interrupts, then check if there was
799          * more to do. */
800         /* Depending on the VIRTIO_RING_F_USED_EVENT_IDX feature, we need to
801          * either clear the flags bit or point the event index at the next
802          * entry. Always update the event index to keep code simple. */
803         if (vq->split.avail_flags_shadow & VRING_AVAIL_F_NO_INTERRUPT) {
804                 vq->split.avail_flags_shadow &= ~VRING_AVAIL_F_NO_INTERRUPT;
805                 if (!vq->event)
806                         vq->split.vring.avail->flags =
807                                 cpu_to_virtio16(_vq->vdev,
808                                                 vq->split.avail_flags_shadow);
809         }
810         /* TODO: tune this threshold */
811         bufs = (u16)(vq->split.avail_idx_shadow - vq->last_used_idx) * 3 / 4;
812
813         virtio_store_mb(vq->weak_barriers,
814                         &vring_used_event(&vq->split.vring),
815                         cpu_to_virtio16(_vq->vdev, vq->last_used_idx + bufs));
816
817         if (unlikely((u16)(virtio16_to_cpu(_vq->vdev, vq->split.vring.used->idx)
818                                         - vq->last_used_idx) > bufs)) {
819                 END_USE(vq);
820                 return false;
821         }
822
823         END_USE(vq);
824         return true;
825 }
826
827 static void *virtqueue_detach_unused_buf_split(struct virtqueue *_vq)
828 {
829         struct vring_virtqueue *vq = to_vvq(_vq);
830         unsigned int i;
831         void *buf;
832
833         START_USE(vq);
834
835         for (i = 0; i < vq->split.vring.num; i++) {
836                 if (!vq->split.desc_state[i].data)
837                         continue;
838                 /* detach_buf_split clears data, so grab it now. */
839                 buf = vq->split.desc_state[i].data;
840                 detach_buf_split(vq, i, NULL);
841                 vq->split.avail_idx_shadow--;
842                 vq->split.vring.avail->idx = cpu_to_virtio16(_vq->vdev,
843                                 vq->split.avail_idx_shadow);
844                 END_USE(vq);
845                 return buf;
846         }
847         /* That should have freed everything. */
848         BUG_ON(vq->vq.num_free != vq->split.vring.num);
849
850         END_USE(vq);
851         return NULL;
852 }
853
854 static struct virtqueue *vring_create_virtqueue_split(
855         unsigned int index,
856         unsigned int num,
857         unsigned int vring_align,
858         struct virtio_device *vdev,
859         bool weak_barriers,
860         bool may_reduce_num,
861         bool context,
862         bool (*notify)(struct virtqueue *),
863         void (*callback)(struct virtqueue *),
864         const char *name)
865 {
866         struct virtqueue *vq;
867         void *queue = NULL;
868         dma_addr_t dma_addr;
869         size_t queue_size_in_bytes;
870         struct vring vring;
871
872         /* We assume num is a power of 2. */
873         if (num & (num - 1)) {
874                 dev_warn(&vdev->dev, "Bad virtqueue length %u\n", num);
875                 return NULL;
876         }
877
878         /* TODO: allocate each queue chunk individually */
879         for (; num && vring_size(num, vring_align) > PAGE_SIZE; num /= 2) {
880                 queue = vring_alloc_queue(vdev, vring_size(num, vring_align),
881                                           &dma_addr,
882                                           GFP_KERNEL|__GFP_NOWARN|__GFP_ZERO);
883                 if (queue)
884                         break;
885                 if (!may_reduce_num)
886                         return NULL;
887         }
888
889         if (!num)
890                 return NULL;
891
892         if (!queue) {
893                 /* Try to get a single page. You are my only hope! */
894                 queue = vring_alloc_queue(vdev, vring_size(num, vring_align),
895                                           &dma_addr, GFP_KERNEL|__GFP_ZERO);
896         }
897         if (!queue)
898                 return NULL;
899
900         queue_size_in_bytes = vring_size(num, vring_align);
901         vring_init(&vring, num, queue, vring_align);
902
903         vq = __vring_new_virtqueue(index, vring, vdev, weak_barriers, context,
904                                    notify, callback, name);
905         if (!vq) {
906                 vring_free_queue(vdev, queue_size_in_bytes, queue,
907                                  dma_addr);
908                 return NULL;
909         }
910
911         to_vvq(vq)->split.queue_dma_addr = dma_addr;
912         to_vvq(vq)->split.queue_size_in_bytes = queue_size_in_bytes;
913         to_vvq(vq)->we_own_ring = true;
914
915         return vq;
916 }
917
918
919 /*
920  * Packed ring specific functions - *_packed().
921  */
922
923 static void vring_unmap_state_packed(const struct vring_virtqueue *vq,
924                                      struct vring_desc_extra_packed *state)
925 {
926         u16 flags;
927
928         if (!vq->use_dma_api)
929                 return;
930
931         flags = state->flags;
932
933         if (flags & VRING_DESC_F_INDIRECT) {
934                 dma_unmap_single(vring_dma_dev(vq),
935                                  state->addr, state->len,
936                                  (flags & VRING_DESC_F_WRITE) ?
937                                  DMA_FROM_DEVICE : DMA_TO_DEVICE);
938         } else {
939                 dma_unmap_page(vring_dma_dev(vq),
940                                state->addr, state->len,
941                                (flags & VRING_DESC_F_WRITE) ?
942                                DMA_FROM_DEVICE : DMA_TO_DEVICE);
943         }
944 }
945
946 static void vring_unmap_desc_packed(const struct vring_virtqueue *vq,
947                                    struct vring_packed_desc *desc)
948 {
949         u16 flags;
950
951         if (!vq->use_dma_api)
952                 return;
953
954         flags = le16_to_cpu(desc->flags);
955
956         if (flags & VRING_DESC_F_INDIRECT) {
957                 dma_unmap_single(vring_dma_dev(vq),
958                                  le64_to_cpu(desc->addr),
959                                  le32_to_cpu(desc->len),
960                                  (flags & VRING_DESC_F_WRITE) ?
961                                  DMA_FROM_DEVICE : DMA_TO_DEVICE);
962         } else {
963                 dma_unmap_page(vring_dma_dev(vq),
964                                le64_to_cpu(desc->addr),
965                                le32_to_cpu(desc->len),
966                                (flags & VRING_DESC_F_WRITE) ?
967                                DMA_FROM_DEVICE : DMA_TO_DEVICE);
968         }
969 }
970
971 static struct vring_packed_desc *alloc_indirect_packed(unsigned int total_sg,
972                                                        gfp_t gfp)
973 {
974         struct vring_packed_desc *desc;
975
976         /*
977          * We require lowmem mappings for the descriptors because
978          * otherwise virt_to_phys will give us bogus addresses in the
979          * virtqueue.
980          */
981         gfp &= ~__GFP_HIGHMEM;
982
983         desc = kmalloc_array(total_sg, sizeof(struct vring_packed_desc), gfp);
984
985         return desc;
986 }
987
988 static int virtqueue_add_indirect_packed(struct vring_virtqueue *vq,
989                                        struct scatterlist *sgs[],
990                                        unsigned int total_sg,
991                                        unsigned int out_sgs,
992                                        unsigned int in_sgs,
993                                        void *data,
994                                        gfp_t gfp)
995 {
996         struct vring_packed_desc *desc;
997         struct scatterlist *sg;
998         unsigned int i, n, err_idx;
999         u16 head, id;
1000         dma_addr_t addr;
1001
1002         head = vq->packed.next_avail_idx;
1003         desc = alloc_indirect_packed(total_sg, gfp);
1004
1005         if (unlikely(vq->vq.num_free < 1)) {
1006                 pr_debug("Can't add buf len 1 - avail = 0\n");
1007                 END_USE(vq);
1008                 return -ENOSPC;
1009         }
1010
1011         i = 0;
1012         id = vq->free_head;
1013         BUG_ON(id == vq->packed.vring.num);
1014
1015         for (n = 0; n < out_sgs + in_sgs; n++) {
1016                 for (sg = sgs[n]; sg; sg = sg_next(sg)) {
1017                         addr = vring_map_one_sg(vq, sg, n < out_sgs ?
1018                                         DMA_TO_DEVICE : DMA_FROM_DEVICE);
1019                         if (vring_mapping_error(vq, addr))
1020                                 goto unmap_release;
1021
1022                         desc[i].flags = cpu_to_le16(n < out_sgs ?
1023                                                 0 : VRING_DESC_F_WRITE);
1024                         desc[i].addr = cpu_to_le64(addr);
1025                         desc[i].len = cpu_to_le32(sg->length);
1026                         i++;
1027                 }
1028         }
1029
1030         /* Now that the indirect table is filled in, map it. */
1031         addr = vring_map_single(vq, desc,
1032                         total_sg * sizeof(struct vring_packed_desc),
1033                         DMA_TO_DEVICE);
1034         if (vring_mapping_error(vq, addr))
1035                 goto unmap_release;
1036
1037         vq->packed.vring.desc[head].addr = cpu_to_le64(addr);
1038         vq->packed.vring.desc[head].len = cpu_to_le32(total_sg *
1039                                 sizeof(struct vring_packed_desc));
1040         vq->packed.vring.desc[head].id = cpu_to_le16(id);
1041
1042         if (vq->use_dma_api) {
1043                 vq->packed.desc_extra[id].addr = addr;
1044                 vq->packed.desc_extra[id].len = total_sg *
1045                                 sizeof(struct vring_packed_desc);
1046                 vq->packed.desc_extra[id].flags = VRING_DESC_F_INDIRECT |
1047                                                   vq->packed.avail_used_flags;
1048         }
1049
1050         /*
1051          * A driver MUST NOT make the first descriptor in the list
1052          * available before all subsequent descriptors comprising
1053          * the list are made available.
1054          */
1055         virtio_wmb(vq->weak_barriers);
1056         vq->packed.vring.desc[head].flags = cpu_to_le16(VRING_DESC_F_INDIRECT |
1057                                                 vq->packed.avail_used_flags);
1058
1059         /* We're using some buffers from the free list. */
1060         vq->vq.num_free -= 1;
1061
1062         /* Update free pointer */
1063         n = head + 1;
1064         if (n >= vq->packed.vring.num) {
1065                 n = 0;
1066                 vq->packed.avail_wrap_counter ^= 1;
1067                 vq->packed.avail_used_flags ^=
1068                                 1 << VRING_PACKED_DESC_F_AVAIL |
1069                                 1 << VRING_PACKED_DESC_F_USED;
1070         }
1071         vq->packed.next_avail_idx = n;
1072         vq->free_head = vq->packed.desc_state[id].next;
1073
1074         /* Store token and indirect buffer state. */
1075         vq->packed.desc_state[id].num = 1;
1076         vq->packed.desc_state[id].data = data;
1077         vq->packed.desc_state[id].indir_desc = desc;
1078         vq->packed.desc_state[id].last = id;
1079
1080         vq->num_added += 1;
1081
1082         pr_debug("Added buffer head %i to %p\n", head, vq);
1083         END_USE(vq);
1084
1085         return 0;
1086
1087 unmap_release:
1088         err_idx = i;
1089
1090         for (i = 0; i < err_idx; i++)
1091                 vring_unmap_desc_packed(vq, &desc[i]);
1092
1093         kfree(desc);
1094
1095         END_USE(vq);
1096         return -EIO;
1097 }
1098
1099 static inline int virtqueue_add_packed(struct virtqueue *_vq,
1100                                        struct scatterlist *sgs[],
1101                                        unsigned int total_sg,
1102                                        unsigned int out_sgs,
1103                                        unsigned int in_sgs,
1104                                        void *data,
1105                                        void *ctx,
1106                                        gfp_t gfp)
1107 {
1108         struct vring_virtqueue *vq = to_vvq(_vq);
1109         struct vring_packed_desc *desc;
1110         struct scatterlist *sg;
1111         unsigned int i, n, c, descs_used, err_idx;
1112         __le16 uninitialized_var(head_flags), flags;
1113         u16 head, id, uninitialized_var(prev), curr, avail_used_flags;
1114
1115         START_USE(vq);
1116
1117         BUG_ON(data == NULL);
1118         BUG_ON(ctx && vq->indirect);
1119
1120         if (unlikely(vq->broken)) {
1121                 END_USE(vq);
1122                 return -EIO;
1123         }
1124
1125         LAST_ADD_TIME_UPDATE(vq);
1126
1127         BUG_ON(total_sg == 0);
1128
1129         if (virtqueue_use_indirect(_vq, total_sg))
1130                 return virtqueue_add_indirect_packed(vq, sgs, total_sg,
1131                                 out_sgs, in_sgs, data, gfp);
1132
1133         head = vq->packed.next_avail_idx;
1134         avail_used_flags = vq->packed.avail_used_flags;
1135
1136         WARN_ON_ONCE(total_sg > vq->packed.vring.num && !vq->indirect);
1137
1138         desc = vq->packed.vring.desc;
1139         i = head;
1140         descs_used = total_sg;
1141
1142         if (unlikely(vq->vq.num_free < descs_used)) {
1143                 pr_debug("Can't add buf len %i - avail = %i\n",
1144                          descs_used, vq->vq.num_free);
1145                 END_USE(vq);
1146                 return -ENOSPC;
1147         }
1148
1149         id = vq->free_head;
1150         BUG_ON(id == vq->packed.vring.num);
1151
1152         curr = id;
1153         c = 0;
1154         for (n = 0; n < out_sgs + in_sgs; n++) {
1155                 for (sg = sgs[n]; sg; sg = sg_next(sg)) {
1156                         dma_addr_t addr = vring_map_one_sg(vq, sg, n < out_sgs ?
1157                                         DMA_TO_DEVICE : DMA_FROM_DEVICE);
1158                         if (vring_mapping_error(vq, addr))
1159                                 goto unmap_release;
1160
1161                         flags = cpu_to_le16(vq->packed.avail_used_flags |
1162                                     (++c == total_sg ? 0 : VRING_DESC_F_NEXT) |
1163                                     (n < out_sgs ? 0 : VRING_DESC_F_WRITE));
1164                         if (i == head)
1165                                 head_flags = flags;
1166                         else
1167                                 desc[i].flags = flags;
1168
1169                         desc[i].addr = cpu_to_le64(addr);
1170                         desc[i].len = cpu_to_le32(sg->length);
1171                         desc[i].id = cpu_to_le16(id);
1172
1173                         if (unlikely(vq->use_dma_api)) {
1174                                 vq->packed.desc_extra[curr].addr = addr;
1175                                 vq->packed.desc_extra[curr].len = sg->length;
1176                                 vq->packed.desc_extra[curr].flags =
1177                                         le16_to_cpu(flags);
1178                         }
1179                         prev = curr;
1180                         curr = vq->packed.desc_state[curr].next;
1181
1182                         if ((unlikely(++i >= vq->packed.vring.num))) {
1183                                 i = 0;
1184                                 vq->packed.avail_used_flags ^=
1185                                         1 << VRING_PACKED_DESC_F_AVAIL |
1186                                         1 << VRING_PACKED_DESC_F_USED;
1187                         }
1188                 }
1189         }
1190
1191         if (i < head)
1192                 vq->packed.avail_wrap_counter ^= 1;
1193
1194         /* We're using some buffers from the free list. */
1195         vq->vq.num_free -= descs_used;
1196
1197         /* Update free pointer */
1198         vq->packed.next_avail_idx = i;
1199         vq->free_head = curr;
1200
1201         /* Store token. */
1202         vq->packed.desc_state[id].num = descs_used;
1203         vq->packed.desc_state[id].data = data;
1204         vq->packed.desc_state[id].indir_desc = ctx;
1205         vq->packed.desc_state[id].last = prev;
1206
1207         /*
1208          * A driver MUST NOT make the first descriptor in the list
1209          * available before all subsequent descriptors comprising
1210          * the list are made available.
1211          */
1212         virtio_wmb(vq->weak_barriers);
1213         vq->packed.vring.desc[head].flags = head_flags;
1214         vq->num_added += descs_used;
1215
1216         pr_debug("Added buffer head %i to %p\n", head, vq);
1217         END_USE(vq);
1218
1219         return 0;
1220
1221 unmap_release:
1222         err_idx = i;
1223         i = head;
1224
1225         vq->packed.avail_used_flags = avail_used_flags;
1226
1227         for (n = 0; n < total_sg; n++) {
1228                 if (i == err_idx)
1229                         break;
1230                 vring_unmap_desc_packed(vq, &desc[i]);
1231                 i++;
1232                 if (i >= vq->packed.vring.num)
1233                         i = 0;
1234         }
1235
1236         END_USE(vq);
1237         return -EIO;
1238 }
1239
1240 static bool virtqueue_kick_prepare_packed(struct virtqueue *_vq)
1241 {
1242         struct vring_virtqueue *vq = to_vvq(_vq);
1243         u16 new, old, off_wrap, flags, wrap_counter, event_idx;
1244         bool needs_kick;
1245         union {
1246                 struct {
1247                         __le16 off_wrap;
1248                         __le16 flags;
1249                 };
1250                 u32 u32;
1251         } snapshot;
1252
1253         START_USE(vq);
1254
1255         /*
1256          * We need to expose the new flags value before checking notification
1257          * suppressions.
1258          */
1259         virtio_mb(vq->weak_barriers);
1260
1261         old = vq->packed.next_avail_idx - vq->num_added;
1262         new = vq->packed.next_avail_idx;
1263         vq->num_added = 0;
1264
1265         snapshot.u32 = *(u32 *)vq->packed.vring.device;
1266         flags = le16_to_cpu(snapshot.flags);
1267
1268         LAST_ADD_TIME_CHECK(vq);
1269         LAST_ADD_TIME_INVALID(vq);
1270
1271         if (flags != VRING_PACKED_EVENT_FLAG_DESC) {
1272                 needs_kick = (flags != VRING_PACKED_EVENT_FLAG_DISABLE);
1273                 goto out;
1274         }
1275
1276         off_wrap = le16_to_cpu(snapshot.off_wrap);
1277
1278         wrap_counter = off_wrap >> VRING_PACKED_EVENT_F_WRAP_CTR;
1279         event_idx = off_wrap & ~(1 << VRING_PACKED_EVENT_F_WRAP_CTR);
1280         if (wrap_counter != vq->packed.avail_wrap_counter)
1281                 event_idx -= vq->packed.vring.num;
1282
1283         needs_kick = vring_need_event(event_idx, new, old);
1284 out:
1285         END_USE(vq);
1286         return needs_kick;
1287 }
1288
1289 static void detach_buf_packed(struct vring_virtqueue *vq,
1290                               unsigned int id, void **ctx)
1291 {
1292         struct vring_desc_state_packed *state = NULL;
1293         struct vring_packed_desc *desc;
1294         unsigned int i, curr;
1295
1296         state = &vq->packed.desc_state[id];
1297
1298         /* Clear data ptr. */
1299         state->data = NULL;
1300
1301         vq->packed.desc_state[state->last].next = vq->free_head;
1302         vq->free_head = id;
1303         vq->vq.num_free += state->num;
1304
1305         if (unlikely(vq->use_dma_api)) {
1306                 curr = id;
1307                 for (i = 0; i < state->num; i++) {
1308                         vring_unmap_state_packed(vq,
1309                                 &vq->packed.desc_extra[curr]);
1310                         curr = vq->packed.desc_state[curr].next;
1311                 }
1312         }
1313
1314         if (vq->indirect) {
1315                 u32 len;
1316
1317                 /* Free the indirect table, if any, now that it's unmapped. */
1318                 desc = state->indir_desc;
1319                 if (!desc)
1320                         return;
1321
1322                 if (vq->use_dma_api) {
1323                         len = vq->packed.desc_extra[id].len;
1324                         for (i = 0; i < len / sizeof(struct vring_packed_desc);
1325                                         i++)
1326                                 vring_unmap_desc_packed(vq, &desc[i]);
1327                 }
1328                 kfree(desc);
1329                 state->indir_desc = NULL;
1330         } else if (ctx) {
1331                 *ctx = state->indir_desc;
1332         }
1333 }
1334
1335 static inline bool is_used_desc_packed(const struct vring_virtqueue *vq,
1336                                        u16 idx, bool used_wrap_counter)
1337 {
1338         bool avail, used;
1339         u16 flags;
1340
1341         flags = le16_to_cpu(vq->packed.vring.desc[idx].flags);
1342         avail = !!(flags & (1 << VRING_PACKED_DESC_F_AVAIL));
1343         used = !!(flags & (1 << VRING_PACKED_DESC_F_USED));
1344
1345         return avail == used && used == used_wrap_counter;
1346 }
1347
1348 static inline bool more_used_packed(const struct vring_virtqueue *vq)
1349 {
1350         return is_used_desc_packed(vq, vq->last_used_idx,
1351                         vq->packed.used_wrap_counter);
1352 }
1353
1354 static void *virtqueue_get_buf_ctx_packed(struct virtqueue *_vq,
1355                                           unsigned int *len,
1356                                           void **ctx)
1357 {
1358         struct vring_virtqueue *vq = to_vvq(_vq);
1359         u16 last_used, id;
1360         void *ret;
1361
1362         START_USE(vq);
1363
1364         if (unlikely(vq->broken)) {
1365                 END_USE(vq);
1366                 return NULL;
1367         }
1368
1369         if (!more_used_packed(vq)) {
1370                 pr_debug("No more buffers in queue\n");
1371                 END_USE(vq);
1372                 return NULL;
1373         }
1374
1375         /* Only get used elements after they have been exposed by host. */
1376         virtio_rmb(vq->weak_barriers);
1377
1378         last_used = vq->last_used_idx;
1379         id = le16_to_cpu(vq->packed.vring.desc[last_used].id);
1380         *len = le32_to_cpu(vq->packed.vring.desc[last_used].len);
1381
1382         if (unlikely(id >= vq->packed.vring.num)) {
1383                 BAD_RING(vq, "id %u out of range\n", id);
1384                 return NULL;
1385         }
1386         if (unlikely(!vq->packed.desc_state[id].data)) {
1387                 BAD_RING(vq, "id %u is not a head!\n", id);
1388                 return NULL;
1389         }
1390
1391         /* detach_buf_packed clears data, so grab it now. */
1392         ret = vq->packed.desc_state[id].data;
1393         detach_buf_packed(vq, id, ctx);
1394
1395         vq->last_used_idx += vq->packed.desc_state[id].num;
1396         if (unlikely(vq->last_used_idx >= vq->packed.vring.num)) {
1397                 vq->last_used_idx -= vq->packed.vring.num;
1398                 vq->packed.used_wrap_counter ^= 1;
1399         }
1400
1401         /*
1402          * If we expect an interrupt for the next entry, tell host
1403          * by writing event index and flush out the write before
1404          * the read in the next get_buf call.
1405          */
1406         if (vq->packed.event_flags_shadow == VRING_PACKED_EVENT_FLAG_DESC)
1407                 virtio_store_mb(vq->weak_barriers,
1408                                 &vq->packed.vring.driver->off_wrap,
1409                                 cpu_to_le16(vq->last_used_idx |
1410                                         (vq->packed.used_wrap_counter <<
1411                                          VRING_PACKED_EVENT_F_WRAP_CTR)));
1412
1413         LAST_ADD_TIME_INVALID(vq);
1414
1415         END_USE(vq);
1416         return ret;
1417 }
1418
1419 static void virtqueue_disable_cb_packed(struct virtqueue *_vq)
1420 {
1421         struct vring_virtqueue *vq = to_vvq(_vq);
1422
1423         if (vq->packed.event_flags_shadow != VRING_PACKED_EVENT_FLAG_DISABLE) {
1424                 vq->packed.event_flags_shadow = VRING_PACKED_EVENT_FLAG_DISABLE;
1425                 vq->packed.vring.driver->flags =
1426                         cpu_to_le16(vq->packed.event_flags_shadow);
1427         }
1428 }
1429
1430 static unsigned virtqueue_enable_cb_prepare_packed(struct virtqueue *_vq)
1431 {
1432         struct vring_virtqueue *vq = to_vvq(_vq);
1433
1434         START_USE(vq);
1435
1436         /*
1437          * We optimistically turn back on interrupts, then check if there was
1438          * more to do.
1439          */
1440
1441         if (vq->event) {
1442                 vq->packed.vring.driver->off_wrap =
1443                         cpu_to_le16(vq->last_used_idx |
1444                                 (vq->packed.used_wrap_counter <<
1445                                  VRING_PACKED_EVENT_F_WRAP_CTR));
1446                 /*
1447                  * We need to update event offset and event wrap
1448                  * counter first before updating event flags.
1449                  */
1450                 virtio_wmb(vq->weak_barriers);
1451         }
1452
1453         if (vq->packed.event_flags_shadow == VRING_PACKED_EVENT_FLAG_DISABLE) {
1454                 vq->packed.event_flags_shadow = vq->event ?
1455                                 VRING_PACKED_EVENT_FLAG_DESC :
1456                                 VRING_PACKED_EVENT_FLAG_ENABLE;
1457                 vq->packed.vring.driver->flags =
1458                                 cpu_to_le16(vq->packed.event_flags_shadow);
1459         }
1460
1461         END_USE(vq);
1462         return vq->last_used_idx | ((u16)vq->packed.used_wrap_counter <<
1463                         VRING_PACKED_EVENT_F_WRAP_CTR);
1464 }
1465
1466 static bool virtqueue_poll_packed(struct virtqueue *_vq, u16 off_wrap)
1467 {
1468         struct vring_virtqueue *vq = to_vvq(_vq);
1469         bool wrap_counter;
1470         u16 used_idx;
1471
1472         wrap_counter = off_wrap >> VRING_PACKED_EVENT_F_WRAP_CTR;
1473         used_idx = off_wrap & ~(1 << VRING_PACKED_EVENT_F_WRAP_CTR);
1474
1475         return is_used_desc_packed(vq, used_idx, wrap_counter);
1476 }
1477
1478 static bool virtqueue_enable_cb_delayed_packed(struct virtqueue *_vq)
1479 {
1480         struct vring_virtqueue *vq = to_vvq(_vq);
1481         u16 used_idx, wrap_counter;
1482         u16 bufs;
1483
1484         START_USE(vq);
1485
1486         /*
1487          * We optimistically turn back on interrupts, then check if there was
1488          * more to do.
1489          */
1490
1491         if (vq->event) {
1492                 /* TODO: tune this threshold */
1493                 bufs = (vq->packed.vring.num - vq->vq.num_free) * 3 / 4;
1494                 wrap_counter = vq->packed.used_wrap_counter;
1495
1496                 used_idx = vq->last_used_idx + bufs;
1497                 if (used_idx >= vq->packed.vring.num) {
1498                         used_idx -= vq->packed.vring.num;
1499                         wrap_counter ^= 1;
1500                 }
1501
1502                 vq->packed.vring.driver->off_wrap = cpu_to_le16(used_idx |
1503                         (wrap_counter << VRING_PACKED_EVENT_F_WRAP_CTR));
1504
1505                 /*
1506                  * We need to update event offset and event wrap
1507                  * counter first before updating event flags.
1508                  */
1509                 virtio_wmb(vq->weak_barriers);
1510         } else {
1511                 used_idx = vq->last_used_idx;
1512                 wrap_counter = vq->packed.used_wrap_counter;
1513         }
1514
1515         if (vq->packed.event_flags_shadow == VRING_PACKED_EVENT_FLAG_DISABLE) {
1516                 vq->packed.event_flags_shadow = vq->event ?
1517                                 VRING_PACKED_EVENT_FLAG_DESC :
1518                                 VRING_PACKED_EVENT_FLAG_ENABLE;
1519                 vq->packed.vring.driver->flags =
1520                                 cpu_to_le16(vq->packed.event_flags_shadow);
1521         }
1522
1523         /*
1524          * We need to update event suppression structure first
1525          * before re-checking for more used buffers.
1526          */
1527         virtio_mb(vq->weak_barriers);
1528
1529         if (is_used_desc_packed(vq, used_idx, wrap_counter)) {
1530                 END_USE(vq);
1531                 return false;
1532         }
1533
1534         END_USE(vq);
1535         return true;
1536 }
1537
1538 static void *virtqueue_detach_unused_buf_packed(struct virtqueue *_vq)
1539 {
1540         struct vring_virtqueue *vq = to_vvq(_vq);
1541         unsigned int i;
1542         void *buf;
1543
1544         START_USE(vq);
1545
1546         for (i = 0; i < vq->packed.vring.num; i++) {
1547                 if (!vq->packed.desc_state[i].data)
1548                         continue;
1549                 /* detach_buf clears data, so grab it now. */
1550                 buf = vq->packed.desc_state[i].data;
1551                 detach_buf_packed(vq, i, NULL);
1552                 END_USE(vq);
1553                 return buf;
1554         }
1555         /* That should have freed everything. */
1556         BUG_ON(vq->vq.num_free != vq->packed.vring.num);
1557
1558         END_USE(vq);
1559         return NULL;
1560 }
1561
1562 static struct virtqueue *vring_create_virtqueue_packed(
1563         unsigned int index,
1564         unsigned int num,
1565         unsigned int vring_align,
1566         struct virtio_device *vdev,
1567         bool weak_barriers,
1568         bool may_reduce_num,
1569         bool context,
1570         bool (*notify)(struct virtqueue *),
1571         void (*callback)(struct virtqueue *),
1572         const char *name)
1573 {
1574         struct vring_virtqueue *vq;
1575         struct vring_packed_desc *ring;
1576         struct vring_packed_desc_event *driver, *device;
1577         dma_addr_t ring_dma_addr, driver_event_dma_addr, device_event_dma_addr;
1578         size_t ring_size_in_bytes, event_size_in_bytes;
1579         unsigned int i;
1580
1581         ring_size_in_bytes = num * sizeof(struct vring_packed_desc);
1582
1583         ring = vring_alloc_queue(vdev, ring_size_in_bytes,
1584                                  &ring_dma_addr,
1585                                  GFP_KERNEL|__GFP_NOWARN|__GFP_ZERO);
1586         if (!ring)
1587                 goto err_ring;
1588
1589         event_size_in_bytes = sizeof(struct vring_packed_desc_event);
1590
1591         driver = vring_alloc_queue(vdev, event_size_in_bytes,
1592                                    &driver_event_dma_addr,
1593                                    GFP_KERNEL|__GFP_NOWARN|__GFP_ZERO);
1594         if (!driver)
1595                 goto err_driver;
1596
1597         device = vring_alloc_queue(vdev, event_size_in_bytes,
1598                                    &device_event_dma_addr,
1599                                    GFP_KERNEL|__GFP_NOWARN|__GFP_ZERO);
1600         if (!device)
1601                 goto err_device;
1602
1603         vq = kmalloc(sizeof(*vq), GFP_KERNEL);
1604         if (!vq)
1605                 goto err_vq;
1606
1607         vq->vq.callback = callback;
1608         vq->vq.vdev = vdev;
1609         vq->vq.name = name;
1610         vq->vq.num_free = num;
1611         vq->vq.index = index;
1612         vq->we_own_ring = true;
1613         vq->notify = notify;
1614         vq->weak_barriers = weak_barriers;
1615         vq->broken = false;
1616         vq->last_used_idx = 0;
1617         vq->num_added = 0;
1618         vq->packed_ring = true;
1619         vq->use_dma_api = vring_use_dma_api(vdev);
1620         list_add_tail(&vq->vq.list, &vdev->vqs);
1621 #ifdef DEBUG
1622         vq->in_use = false;
1623         vq->last_add_time_valid = false;
1624 #endif
1625
1626         vq->indirect = virtio_has_feature(vdev, VIRTIO_RING_F_INDIRECT_DESC) &&
1627                 !context;
1628         vq->event = virtio_has_feature(vdev, VIRTIO_RING_F_EVENT_IDX);
1629
1630         if (virtio_has_feature(vdev, VIRTIO_F_ORDER_PLATFORM))
1631                 vq->weak_barriers = false;
1632
1633         vq->packed.ring_dma_addr = ring_dma_addr;
1634         vq->packed.driver_event_dma_addr = driver_event_dma_addr;
1635         vq->packed.device_event_dma_addr = device_event_dma_addr;
1636
1637         vq->packed.ring_size_in_bytes = ring_size_in_bytes;
1638         vq->packed.event_size_in_bytes = event_size_in_bytes;
1639
1640         vq->packed.vring.num = num;
1641         vq->packed.vring.desc = ring;
1642         vq->packed.vring.driver = driver;
1643         vq->packed.vring.device = device;
1644
1645         vq->packed.next_avail_idx = 0;
1646         vq->packed.avail_wrap_counter = 1;
1647         vq->packed.used_wrap_counter = 1;
1648         vq->packed.event_flags_shadow = 0;
1649         vq->packed.avail_used_flags = 1 << VRING_PACKED_DESC_F_AVAIL;
1650
1651         vq->packed.desc_state = kmalloc_array(num,
1652                         sizeof(struct vring_desc_state_packed),
1653                         GFP_KERNEL);
1654         if (!vq->packed.desc_state)
1655                 goto err_desc_state;
1656
1657         memset(vq->packed.desc_state, 0,
1658                 num * sizeof(struct vring_desc_state_packed));
1659
1660         /* Put everything in free lists. */
1661         vq->free_head = 0;
1662         for (i = 0; i < num-1; i++)
1663                 vq->packed.desc_state[i].next = i + 1;
1664
1665         vq->packed.desc_extra = kmalloc_array(num,
1666                         sizeof(struct vring_desc_extra_packed),
1667                         GFP_KERNEL);
1668         if (!vq->packed.desc_extra)
1669                 goto err_desc_extra;
1670
1671         memset(vq->packed.desc_extra, 0,
1672                 num * sizeof(struct vring_desc_extra_packed));
1673
1674         /* No callback?  Tell other side not to bother us. */
1675         if (!callback) {
1676                 vq->packed.event_flags_shadow = VRING_PACKED_EVENT_FLAG_DISABLE;
1677                 vq->packed.vring.driver->flags =
1678                         cpu_to_le16(vq->packed.event_flags_shadow);
1679         }
1680
1681         return &vq->vq;
1682
1683 err_desc_extra:
1684         kfree(vq->packed.desc_state);
1685 err_desc_state:
1686         kfree(vq);
1687 err_vq:
1688         vring_free_queue(vdev, event_size_in_bytes, device, ring_dma_addr);
1689 err_device:
1690         vring_free_queue(vdev, event_size_in_bytes, driver, ring_dma_addr);
1691 err_driver:
1692         vring_free_queue(vdev, ring_size_in_bytes, ring, ring_dma_addr);
1693 err_ring:
1694         return NULL;
1695 }
1696
1697
1698 /*
1699  * Generic functions and exported symbols.
1700  */
1701
1702 static inline int virtqueue_add(struct virtqueue *_vq,
1703                                 struct scatterlist *sgs[],
1704                                 unsigned int total_sg,
1705                                 unsigned int out_sgs,
1706                                 unsigned int in_sgs,
1707                                 void *data,
1708                                 void *ctx,
1709                                 gfp_t gfp)
1710 {
1711         struct vring_virtqueue *vq = to_vvq(_vq);
1712
1713         return vq->packed_ring ? virtqueue_add_packed(_vq, sgs, total_sg,
1714                                         out_sgs, in_sgs, data, ctx, gfp) :
1715                                  virtqueue_add_split(_vq, sgs, total_sg,
1716                                         out_sgs, in_sgs, data, ctx, gfp);
1717 }
1718
1719 /**
1720  * virtqueue_add_sgs - expose buffers to other end
1721  * @vq: the struct virtqueue we're talking about.
1722  * @sgs: array of terminated scatterlists.
1723  * @out_num: the number of scatterlists readable by other side
1724  * @in_num: the number of scatterlists which are writable (after readable ones)
1725  * @data: the token identifying the buffer.
1726  * @gfp: how to do memory allocations (if necessary).
1727  *
1728  * Caller must ensure we don't call this with other virtqueue operations
1729  * at the same time (except where noted).
1730  *
1731  * Returns zero or a negative error (ie. ENOSPC, ENOMEM, EIO).
1732  */
1733 int virtqueue_add_sgs(struct virtqueue *_vq,
1734                       struct scatterlist *sgs[],
1735                       unsigned int out_sgs,
1736                       unsigned int in_sgs,
1737                       void *data,
1738                       gfp_t gfp)
1739 {
1740         unsigned int i, total_sg = 0;
1741
1742         /* Count them first. */
1743         for (i = 0; i < out_sgs + in_sgs; i++) {
1744                 struct scatterlist *sg;
1745
1746                 for (sg = sgs[i]; sg; sg = sg_next(sg))
1747                         total_sg++;
1748         }
1749         return virtqueue_add(_vq, sgs, total_sg, out_sgs, in_sgs,
1750                              data, NULL, gfp);
1751 }
1752 EXPORT_SYMBOL_GPL(virtqueue_add_sgs);
1753
1754 /**
1755  * virtqueue_add_outbuf - expose output buffers to other end
1756  * @vq: the struct virtqueue we're talking about.
1757  * @sg: scatterlist (must be well-formed and terminated!)
1758  * @num: the number of entries in @sg readable by other side
1759  * @data: the token identifying the buffer.
1760  * @gfp: how to do memory allocations (if necessary).
1761  *
1762  * Caller must ensure we don't call this with other virtqueue operations
1763  * at the same time (except where noted).
1764  *
1765  * Returns zero or a negative error (ie. ENOSPC, ENOMEM, EIO).
1766  */
1767 int virtqueue_add_outbuf(struct virtqueue *vq,
1768                          struct scatterlist *sg, unsigned int num,
1769                          void *data,
1770                          gfp_t gfp)
1771 {
1772         return virtqueue_add(vq, &sg, num, 1, 0, data, NULL, gfp);
1773 }
1774 EXPORT_SYMBOL_GPL(virtqueue_add_outbuf);
1775
1776 /**
1777  * virtqueue_add_inbuf - expose input buffers to other end
1778  * @vq: the struct virtqueue we're talking about.
1779  * @sg: scatterlist (must be well-formed and terminated!)
1780  * @num: the number of entries in @sg writable by other side
1781  * @data: the token identifying the buffer.
1782  * @gfp: how to do memory allocations (if necessary).
1783  *
1784  * Caller must ensure we don't call this with other virtqueue operations
1785  * at the same time (except where noted).
1786  *
1787  * Returns zero or a negative error (ie. ENOSPC, ENOMEM, EIO).
1788  */
1789 int virtqueue_add_inbuf(struct virtqueue *vq,
1790                         struct scatterlist *sg, unsigned int num,
1791                         void *data,
1792                         gfp_t gfp)
1793 {
1794         return virtqueue_add(vq, &sg, num, 0, 1, data, NULL, gfp);
1795 }
1796 EXPORT_SYMBOL_GPL(virtqueue_add_inbuf);
1797
1798 /**
1799  * virtqueue_add_inbuf_ctx - expose input buffers to other end
1800  * @vq: the struct virtqueue we're talking about.
1801  * @sg: scatterlist (must be well-formed and terminated!)
1802  * @num: the number of entries in @sg writable by other side
1803  * @data: the token identifying the buffer.
1804  * @ctx: extra context for the token
1805  * @gfp: how to do memory allocations (if necessary).
1806  *
1807  * Caller must ensure we don't call this with other virtqueue operations
1808  * at the same time (except where noted).
1809  *
1810  * Returns zero or a negative error (ie. ENOSPC, ENOMEM, EIO).
1811  */
1812 int virtqueue_add_inbuf_ctx(struct virtqueue *vq,
1813                         struct scatterlist *sg, unsigned int num,
1814                         void *data,
1815                         void *ctx,
1816                         gfp_t gfp)
1817 {
1818         return virtqueue_add(vq, &sg, num, 0, 1, data, ctx, gfp);
1819 }
1820 EXPORT_SYMBOL_GPL(virtqueue_add_inbuf_ctx);
1821
1822 /**
1823  * virtqueue_kick_prepare - first half of split virtqueue_kick call.
1824  * @vq: the struct virtqueue
1825  *
1826  * Instead of virtqueue_kick(), you can do:
1827  *      if (virtqueue_kick_prepare(vq))
1828  *              virtqueue_notify(vq);
1829  *
1830  * This is sometimes useful because the virtqueue_kick_prepare() needs
1831  * to be serialized, but the actual virtqueue_notify() call does not.
1832  */
1833 bool virtqueue_kick_prepare(struct virtqueue *_vq)
1834 {
1835         struct vring_virtqueue *vq = to_vvq(_vq);
1836
1837         return vq->packed_ring ? virtqueue_kick_prepare_packed(_vq) :
1838                                  virtqueue_kick_prepare_split(_vq);
1839 }
1840 EXPORT_SYMBOL_GPL(virtqueue_kick_prepare);
1841
1842 /**
1843  * virtqueue_notify - second half of split virtqueue_kick call.
1844  * @vq: the struct virtqueue
1845  *
1846  * This does not need to be serialized.
1847  *
1848  * Returns false if host notify failed or queue is broken, otherwise true.
1849  */
1850 bool virtqueue_notify(struct virtqueue *_vq)
1851 {
1852         struct vring_virtqueue *vq = to_vvq(_vq);
1853
1854         if (unlikely(vq->broken))
1855                 return false;
1856
1857         /* Prod other side to tell it about changes. */
1858         if (!vq->notify(_vq)) {
1859                 vq->broken = true;
1860                 return false;
1861         }
1862         return true;
1863 }
1864 EXPORT_SYMBOL_GPL(virtqueue_notify);
1865
1866 /**
1867  * virtqueue_kick - update after add_buf
1868  * @vq: the struct virtqueue
1869  *
1870  * After one or more virtqueue_add_* calls, invoke this to kick
1871  * the other side.
1872  *
1873  * Caller must ensure we don't call this with other virtqueue
1874  * operations at the same time (except where noted).
1875  *
1876  * Returns false if kick failed, otherwise true.
1877  */
1878 bool virtqueue_kick(struct virtqueue *vq)
1879 {
1880         if (virtqueue_kick_prepare(vq))
1881                 return virtqueue_notify(vq);
1882         return true;
1883 }
1884 EXPORT_SYMBOL_GPL(virtqueue_kick);
1885
1886 /**
1887  * virtqueue_get_buf - get the next used buffer
1888  * @vq: the struct virtqueue we're talking about.
1889  * @len: the length written into the buffer
1890  *
1891  * If the device wrote data into the buffer, @len will be set to the
1892  * amount written.  This means you don't need to clear the buffer
1893  * beforehand to ensure there's no data leakage in the case of short
1894  * writes.
1895  *
1896  * Caller must ensure we don't call this with other virtqueue
1897  * operations at the same time (except where noted).
1898  *
1899  * Returns NULL if there are no used buffers, or the "data" token
1900  * handed to virtqueue_add_*().
1901  */
1902 void *virtqueue_get_buf_ctx(struct virtqueue *_vq, unsigned int *len,
1903                             void **ctx)
1904 {
1905         struct vring_virtqueue *vq = to_vvq(_vq);
1906
1907         return vq->packed_ring ? virtqueue_get_buf_ctx_packed(_vq, len, ctx) :
1908                                  virtqueue_get_buf_ctx_split(_vq, len, ctx);
1909 }
1910 EXPORT_SYMBOL_GPL(virtqueue_get_buf_ctx);
1911
1912 void *virtqueue_get_buf(struct virtqueue *_vq, unsigned int *len)
1913 {
1914         return virtqueue_get_buf_ctx(_vq, len, NULL);
1915 }
1916 EXPORT_SYMBOL_GPL(virtqueue_get_buf);
1917 /**
1918  * virtqueue_disable_cb - disable callbacks
1919  * @vq: the struct virtqueue we're talking about.
1920  *
1921  * Note that this is not necessarily synchronous, hence unreliable and only
1922  * useful as an optimization.
1923  *
1924  * Unlike other operations, this need not be serialized.
1925  */
1926 void virtqueue_disable_cb(struct virtqueue *_vq)
1927 {
1928         struct vring_virtqueue *vq = to_vvq(_vq);
1929
1930         if (vq->packed_ring)
1931                 virtqueue_disable_cb_packed(_vq);
1932         else
1933                 virtqueue_disable_cb_split(_vq);
1934 }
1935 EXPORT_SYMBOL_GPL(virtqueue_disable_cb);
1936
1937 /**
1938  * virtqueue_enable_cb_prepare - restart callbacks after disable_cb
1939  * @vq: the struct virtqueue we're talking about.
1940  *
1941  * This re-enables callbacks; it returns current queue state
1942  * in an opaque unsigned value. This value should be later tested by
1943  * virtqueue_poll, to detect a possible race between the driver checking for
1944  * more work, and enabling callbacks.
1945  *
1946  * Caller must ensure we don't call this with other virtqueue
1947  * operations at the same time (except where noted).
1948  */
1949 unsigned virtqueue_enable_cb_prepare(struct virtqueue *_vq)
1950 {
1951         struct vring_virtqueue *vq = to_vvq(_vq);
1952
1953         return vq->packed_ring ? virtqueue_enable_cb_prepare_packed(_vq) :
1954                                  virtqueue_enable_cb_prepare_split(_vq);
1955 }
1956 EXPORT_SYMBOL_GPL(virtqueue_enable_cb_prepare);
1957
1958 /**
1959  * virtqueue_poll - query pending used buffers
1960  * @vq: the struct virtqueue we're talking about.
1961  * @last_used_idx: virtqueue state (from call to virtqueue_enable_cb_prepare).
1962  *
1963  * Returns "true" if there are pending used buffers in the queue.
1964  *
1965  * This does not need to be serialized.
1966  */
1967 bool virtqueue_poll(struct virtqueue *_vq, unsigned last_used_idx)
1968 {
1969         struct vring_virtqueue *vq = to_vvq(_vq);
1970
1971         virtio_mb(vq->weak_barriers);
1972         return vq->packed_ring ? virtqueue_poll_packed(_vq, last_used_idx) :
1973                                  virtqueue_poll_split(_vq, last_used_idx);
1974 }
1975 EXPORT_SYMBOL_GPL(virtqueue_poll);
1976
1977 /**
1978  * virtqueue_enable_cb - restart callbacks after disable_cb.
1979  * @vq: the struct virtqueue we're talking about.
1980  *
1981  * This re-enables callbacks; it returns "false" if there are pending
1982  * buffers in the queue, to detect a possible race between the driver
1983  * checking for more work, and enabling callbacks.
1984  *
1985  * Caller must ensure we don't call this with other virtqueue
1986  * operations at the same time (except where noted).
1987  */
1988 bool virtqueue_enable_cb(struct virtqueue *_vq)
1989 {
1990         unsigned last_used_idx = virtqueue_enable_cb_prepare(_vq);
1991
1992         return !virtqueue_poll(_vq, last_used_idx);
1993 }
1994 EXPORT_SYMBOL_GPL(virtqueue_enable_cb);
1995
1996 /**
1997  * virtqueue_enable_cb_delayed - restart callbacks after disable_cb.
1998  * @vq: the struct virtqueue we're talking about.
1999  *
2000  * This re-enables callbacks but hints to the other side to delay
2001  * interrupts until most of the available buffers have been processed;
2002  * it returns "false" if there are many pending buffers in the queue,
2003  * to detect a possible race between the driver checking for more work,
2004  * and enabling callbacks.
2005  *
2006  * Caller must ensure we don't call this with other virtqueue
2007  * operations at the same time (except where noted).
2008  */
2009 bool virtqueue_enable_cb_delayed(struct virtqueue *_vq)
2010 {
2011         struct vring_virtqueue *vq = to_vvq(_vq);
2012
2013         return vq->packed_ring ? virtqueue_enable_cb_delayed_packed(_vq) :
2014                                  virtqueue_enable_cb_delayed_split(_vq);
2015 }
2016 EXPORT_SYMBOL_GPL(virtqueue_enable_cb_delayed);
2017
2018 /**
2019  * virtqueue_detach_unused_buf - detach first unused buffer
2020  * @vq: the struct virtqueue we're talking about.
2021  *
2022  * Returns NULL or the "data" token handed to virtqueue_add_*().
2023  * This is not valid on an active queue; it is useful only for device
2024  * shutdown.
2025  */
2026 void *virtqueue_detach_unused_buf(struct virtqueue *_vq)
2027 {
2028         struct vring_virtqueue *vq = to_vvq(_vq);
2029
2030         return vq->packed_ring ? virtqueue_detach_unused_buf_packed(_vq) :
2031                                  virtqueue_detach_unused_buf_split(_vq);
2032 }
2033 EXPORT_SYMBOL_GPL(virtqueue_detach_unused_buf);
2034
2035 static inline bool more_used(const struct vring_virtqueue *vq)
2036 {
2037         return vq->packed_ring ? more_used_packed(vq) : more_used_split(vq);
2038 }
2039
2040 irqreturn_t vring_interrupt(int irq, void *_vq)
2041 {
2042         struct vring_virtqueue *vq = to_vvq(_vq);
2043
2044         if (!more_used(vq)) {
2045                 pr_debug("virtqueue interrupt with no work for %p\n", vq);
2046                 return IRQ_NONE;
2047         }
2048
2049         if (unlikely(vq->broken))
2050                 return IRQ_HANDLED;
2051
2052         pr_debug("virtqueue callback for %p (%p)\n", vq, vq->vq.callback);
2053         if (vq->vq.callback)
2054                 vq->vq.callback(&vq->vq);
2055
2056         return IRQ_HANDLED;
2057 }
2058 EXPORT_SYMBOL_GPL(vring_interrupt);
2059
2060 /* Only available for split ring */
2061 struct virtqueue *__vring_new_virtqueue(unsigned int index,
2062                                         struct vring vring,
2063                                         struct virtio_device *vdev,
2064                                         bool weak_barriers,
2065                                         bool context,
2066                                         bool (*notify)(struct virtqueue *),
2067                                         void (*callback)(struct virtqueue *),
2068                                         const char *name)
2069 {
2070         unsigned int i;
2071         struct vring_virtqueue *vq;
2072
2073         if (virtio_has_feature(vdev, VIRTIO_F_RING_PACKED))
2074                 return NULL;
2075
2076         vq = kmalloc(sizeof(*vq), GFP_KERNEL);
2077         if (!vq)
2078                 return NULL;
2079
2080         vq->packed_ring = false;
2081         vq->vq.callback = callback;
2082         vq->vq.vdev = vdev;
2083         vq->vq.name = name;
2084         vq->vq.num_free = vring.num;
2085         vq->vq.index = index;
2086         vq->we_own_ring = false;
2087         vq->notify = notify;
2088         vq->weak_barriers = weak_barriers;
2089         vq->broken = false;
2090         vq->last_used_idx = 0;
2091         vq->num_added = 0;
2092         vq->use_dma_api = vring_use_dma_api(vdev);
2093         list_add_tail(&vq->vq.list, &vdev->vqs);
2094 #ifdef DEBUG
2095         vq->in_use = false;
2096         vq->last_add_time_valid = false;
2097 #endif
2098
2099         vq->indirect = virtio_has_feature(vdev, VIRTIO_RING_F_INDIRECT_DESC) &&
2100                 !context;
2101         vq->event = virtio_has_feature(vdev, VIRTIO_RING_F_EVENT_IDX);
2102
2103         if (virtio_has_feature(vdev, VIRTIO_F_ORDER_PLATFORM))
2104                 vq->weak_barriers = false;
2105
2106         vq->split.queue_dma_addr = 0;
2107         vq->split.queue_size_in_bytes = 0;
2108
2109         vq->split.vring = vring;
2110         vq->split.avail_flags_shadow = 0;
2111         vq->split.avail_idx_shadow = 0;
2112
2113         /* No callback?  Tell other side not to bother us. */
2114         if (!callback) {
2115                 vq->split.avail_flags_shadow |= VRING_AVAIL_F_NO_INTERRUPT;
2116                 if (!vq->event)
2117                         vq->split.vring.avail->flags = cpu_to_virtio16(vdev,
2118                                         vq->split.avail_flags_shadow);
2119         }
2120
2121         vq->split.desc_state = kmalloc_array(vring.num,
2122                         sizeof(struct vring_desc_state_split), GFP_KERNEL);
2123         if (!vq->split.desc_state) {
2124                 kfree(vq);
2125                 return NULL;
2126         }
2127
2128         /* Put everything in free lists. */
2129         vq->free_head = 0;
2130         for (i = 0; i < vring.num-1; i++)
2131                 vq->split.vring.desc[i].next = cpu_to_virtio16(vdev, i + 1);
2132         memset(vq->split.desc_state, 0, vring.num *
2133                         sizeof(struct vring_desc_state_split));
2134
2135         return &vq->vq;
2136 }
2137 EXPORT_SYMBOL_GPL(__vring_new_virtqueue);
2138
2139 struct virtqueue *vring_create_virtqueue(
2140         unsigned int index,
2141         unsigned int num,
2142         unsigned int vring_align,
2143         struct virtio_device *vdev,
2144         bool weak_barriers,
2145         bool may_reduce_num,
2146         bool context,
2147         bool (*notify)(struct virtqueue *),
2148         void (*callback)(struct virtqueue *),
2149         const char *name)
2150 {
2151
2152         if (virtio_has_feature(vdev, VIRTIO_F_RING_PACKED))
2153                 return vring_create_virtqueue_packed(index, num, vring_align,
2154                                 vdev, weak_barriers, may_reduce_num,
2155                                 context, notify, callback, name);
2156
2157         return vring_create_virtqueue_split(index, num, vring_align,
2158                         vdev, weak_barriers, may_reduce_num,
2159                         context, notify, callback, name);
2160 }
2161 EXPORT_SYMBOL_GPL(vring_create_virtqueue);
2162
2163 /* Only available for split ring */
2164 struct virtqueue *vring_new_virtqueue(unsigned int index,
2165                                       unsigned int num,
2166                                       unsigned int vring_align,
2167                                       struct virtio_device *vdev,
2168                                       bool weak_barriers,
2169                                       bool context,
2170                                       void *pages,
2171                                       bool (*notify)(struct virtqueue *vq),
2172                                       void (*callback)(struct virtqueue *vq),
2173                                       const char *name)
2174 {
2175         struct vring vring;
2176
2177         if (virtio_has_feature(vdev, VIRTIO_F_RING_PACKED))
2178                 return NULL;
2179
2180         vring_init(&vring, num, pages, vring_align);
2181         return __vring_new_virtqueue(index, vring, vdev, weak_barriers, context,
2182                                      notify, callback, name);
2183 }
2184 EXPORT_SYMBOL_GPL(vring_new_virtqueue);
2185
2186 void vring_del_virtqueue(struct virtqueue *_vq)
2187 {
2188         struct vring_virtqueue *vq = to_vvq(_vq);
2189
2190         if (vq->we_own_ring) {
2191                 if (vq->packed_ring) {
2192                         vring_free_queue(vq->vq.vdev,
2193                                          vq->packed.ring_size_in_bytes,
2194                                          vq->packed.vring.desc,
2195                                          vq->packed.ring_dma_addr);
2196
2197                         vring_free_queue(vq->vq.vdev,
2198                                          vq->packed.event_size_in_bytes,
2199                                          vq->packed.vring.driver,
2200                                          vq->packed.driver_event_dma_addr);
2201
2202                         vring_free_queue(vq->vq.vdev,
2203                                          vq->packed.event_size_in_bytes,
2204                                          vq->packed.vring.device,
2205                                          vq->packed.device_event_dma_addr);
2206
2207                         kfree(vq->packed.desc_state);
2208                         kfree(vq->packed.desc_extra);
2209                 } else {
2210                         vring_free_queue(vq->vq.vdev,
2211                                          vq->split.queue_size_in_bytes,
2212                                          vq->split.vring.desc,
2213                                          vq->split.queue_dma_addr);
2214
2215                         kfree(vq->split.desc_state);
2216                 }
2217         }
2218         list_del(&_vq->list);
2219         kfree(vq);
2220 }
2221 EXPORT_SYMBOL_GPL(vring_del_virtqueue);
2222
2223 /* Manipulates transport-specific feature bits. */
2224 void vring_transport_features(struct virtio_device *vdev)
2225 {
2226         unsigned int i;
2227
2228         for (i = VIRTIO_TRANSPORT_F_START; i < VIRTIO_TRANSPORT_F_END; i++) {
2229                 switch (i) {
2230                 case VIRTIO_RING_F_INDIRECT_DESC:
2231                         break;
2232                 case VIRTIO_RING_F_EVENT_IDX:
2233                         break;
2234                 case VIRTIO_F_VERSION_1:
2235                         break;
2236                 case VIRTIO_F_IOMMU_PLATFORM:
2237                         break;
2238                 case VIRTIO_F_RING_PACKED:
2239                         break;
2240                 case VIRTIO_F_ORDER_PLATFORM:
2241                         break;
2242                 default:
2243                         /* We don't understand this bit. */
2244                         __virtio_clear_bit(vdev, i);
2245                 }
2246         }
2247 }
2248 EXPORT_SYMBOL_GPL(vring_transport_features);
2249
2250 /**
2251  * virtqueue_get_vring_size - return the size of the virtqueue's vring
2252  * @vq: the struct virtqueue containing the vring of interest.
2253  *
2254  * Returns the size of the vring.  This is mainly used for boasting to
2255  * userspace.  Unlike other operations, this need not be serialized.
2256  */
2257 unsigned int virtqueue_get_vring_size(struct virtqueue *_vq)
2258 {
2259
2260         struct vring_virtqueue *vq = to_vvq(_vq);
2261
2262         return vq->packed_ring ? vq->packed.vring.num : vq->split.vring.num;
2263 }
2264 EXPORT_SYMBOL_GPL(virtqueue_get_vring_size);
2265
2266 bool virtqueue_is_broken(struct virtqueue *_vq)
2267 {
2268         struct vring_virtqueue *vq = to_vvq(_vq);
2269
2270         return vq->broken;
2271 }
2272 EXPORT_SYMBOL_GPL(virtqueue_is_broken);
2273
2274 /*
2275  * This should prevent the device from being used, allowing drivers to
2276  * recover.  You may need to grab appropriate locks to flush.
2277  */
2278 void virtio_break_device(struct virtio_device *dev)
2279 {
2280         struct virtqueue *_vq;
2281
2282         list_for_each_entry(_vq, &dev->vqs, list) {
2283                 struct vring_virtqueue *vq = to_vvq(_vq);
2284                 vq->broken = true;
2285         }
2286 }
2287 EXPORT_SYMBOL_GPL(virtio_break_device);
2288
2289 dma_addr_t virtqueue_get_desc_addr(struct virtqueue *_vq)
2290 {
2291         struct vring_virtqueue *vq = to_vvq(_vq);
2292
2293         BUG_ON(!vq->we_own_ring);
2294
2295         if (vq->packed_ring)
2296                 return vq->packed.ring_dma_addr;
2297
2298         return vq->split.queue_dma_addr;
2299 }
2300 EXPORT_SYMBOL_GPL(virtqueue_get_desc_addr);
2301
2302 dma_addr_t virtqueue_get_avail_addr(struct virtqueue *_vq)
2303 {
2304         struct vring_virtqueue *vq = to_vvq(_vq);
2305
2306         BUG_ON(!vq->we_own_ring);
2307
2308         if (vq->packed_ring)
2309                 return vq->packed.driver_event_dma_addr;
2310
2311         return vq->split.queue_dma_addr +
2312                 ((char *)vq->split.vring.avail - (char *)vq->split.vring.desc);
2313 }
2314 EXPORT_SYMBOL_GPL(virtqueue_get_avail_addr);
2315
2316 dma_addr_t virtqueue_get_used_addr(struct virtqueue *_vq)
2317 {
2318         struct vring_virtqueue *vq = to_vvq(_vq);
2319
2320         BUG_ON(!vq->we_own_ring);
2321
2322         if (vq->packed_ring)
2323                 return vq->packed.device_event_dma_addr;
2324
2325         return vq->split.queue_dma_addr +
2326                 ((char *)vq->split.vring.used - (char *)vq->split.vring.desc);
2327 }
2328 EXPORT_SYMBOL_GPL(virtqueue_get_used_addr);
2329
2330 /* Only available for split ring */
2331 const struct vring *virtqueue_get_vring(struct virtqueue *vq)
2332 {
2333         return &to_vvq(vq)->split.vring;
2334 }
2335 EXPORT_SYMBOL_GPL(virtqueue_get_vring);
2336
2337 MODULE_LICENSE("GPL");