make get_file() return its argument
[linux-2.6-block.git] / drivers / staging / omapdrm / omap_gem.c
CommitLineData
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1/*
2 * drivers/staging/omapdrm/omap_gem.c
3 *
4 * Copyright (C) 2011 Texas Instruments
5 * Author: Rob Clark <rob.clark@linaro.org>
6 *
7 * This program is free software; you can redistribute it and/or modify it
8 * under the terms of the GNU General Public License version 2 as published by
9 * the Free Software Foundation.
10 *
11 * This program is distributed in the hope that it will be useful, but WITHOUT
12 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
14 * more details.
15 *
16 * You should have received a copy of the GNU General Public License along with
17 * this program. If not, see <http://www.gnu.org/licenses/>.
18 */
19
20
21#include <linux/spinlock.h>
22#include <linux/shmem_fs.h>
23
24#include "omap_drv.h"
f7f9f453 25#include "omap_dmm_tiler.h"
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26
27/* remove these once drm core helpers are merged */
28struct page ** _drm_gem_get_pages(struct drm_gem_object *obj, gfp_t gfpmask);
29void _drm_gem_put_pages(struct drm_gem_object *obj, struct page **pages,
30 bool dirty, bool accessed);
f7f9f453 31int _drm_gem_create_mmap_offset_size(struct drm_gem_object *obj, size_t size);
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32
33/*
34 * GEM buffer object implementation.
35 */
36
37#define to_omap_bo(x) container_of(x, struct omap_gem_object, base)
38
39/* note: we use upper 8 bits of flags for driver-internal flags: */
40#define OMAP_BO_DMA 0x01000000 /* actually is physically contiguous */
41#define OMAP_BO_EXT_SYNC 0x02000000 /* externally allocated sync object */
42#define OMAP_BO_EXT_MEM 0x04000000 /* externally allocated memory */
43
44
45struct omap_gem_object {
46 struct drm_gem_object base;
47
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48 struct list_head mm_list;
49
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50 uint32_t flags;
51
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52 /** width/height for tiled formats (rounded up to slot boundaries) */
53 uint16_t width, height;
54
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55 /** roll applied when mapping to DMM */
56 uint32_t roll;
57
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58 /**
59 * If buffer is allocated physically contiguous, the OMAP_BO_DMA flag
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60 * is set and the paddr is valid. Also if the buffer is remapped in
61 * TILER and paddr_cnt > 0, then paddr is valid. But if you are using
62 * the physical address and OMAP_BO_DMA is not set, then you should
63 * be going thru omap_gem_{get,put}_paddr() to ensure the mapping is
64 * not removed from under your feet.
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65 *
66 * Note that OMAP_BO_SCANOUT is a hint from userspace that DMA capable
67 * buffer is requested, but doesn't mean that it is. Use the
68 * OMAP_BO_DMA flag to determine if the buffer has a DMA capable
69 * physical address.
70 */
71 dma_addr_t paddr;
72
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73 /**
74 * # of users of paddr
75 */
76 uint32_t paddr_cnt;
77
78 /**
79 * tiler block used when buffer is remapped in DMM/TILER.
80 */
81 struct tiler_block *block;
82
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83 /**
84 * Array of backing pages, if allocated. Note that pages are never
85 * allocated for buffers originally allocated from contiguous memory
86 */
87 struct page **pages;
88
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89 /** addresses corresponding to pages in above array */
90 dma_addr_t *addrs;
91
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92 /**
93 * Virtual address, if mapped.
94 */
95 void *vaddr;
96
97 /**
98 * sync-object allocated on demand (if needed)
99 *
100 * Per-buffer sync-object for tracking pending and completed hw/dma
101 * read and write operations. The layout in memory is dictated by
102 * the SGX firmware, which uses this information to stall the command
103 * stream if a surface is not ready yet.
104 *
105 * Note that when buffer is used by SGX, the sync-object needs to be
106 * allocated from a special heap of sync-objects. This way many sync
107 * objects can be packed in a page, and not waste GPU virtual address
108 * space. Because of this we have to have a omap_gem_set_sync_object()
109 * API to allow replacement of the syncobj after it has (potentially)
110 * already been allocated. A bit ugly but I haven't thought of a
111 * better alternative.
112 */
113 struct {
114 uint32_t write_pending;
115 uint32_t write_complete;
116 uint32_t read_pending;
117 uint32_t read_complete;
118 } *sync;
119};
120
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121static int get_pages(struct drm_gem_object *obj, struct page ***pages);
122static uint64_t mmap_offset(struct drm_gem_object *obj);
123
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124/* To deal with userspace mmap'ings of 2d tiled buffers, which (a) are
125 * not necessarily pinned in TILER all the time, and (b) when they are
126 * they are not necessarily page aligned, we reserve one or more small
127 * regions in each of the 2d containers to use as a user-GART where we
128 * can create a second page-aligned mapping of parts of the buffer
129 * being accessed from userspace.
130 *
131 * Note that we could optimize slightly when we know that multiple
132 * tiler containers are backed by the same PAT.. but I'll leave that
133 * for later..
134 */
135#define NUM_USERGART_ENTRIES 2
136struct usergart_entry {
137 struct tiler_block *block; /* the reserved tiler block */
138 dma_addr_t paddr;
139 struct drm_gem_object *obj; /* the current pinned obj */
140 pgoff_t obj_pgoff; /* page offset of obj currently
141 mapped in */
142};
143static struct {
144 struct usergart_entry entry[NUM_USERGART_ENTRIES];
145 int height; /* height in rows */
146 int height_shift; /* ilog2(height in rows) */
147 int slot_shift; /* ilog2(width per slot) */
148 int stride_pfn; /* stride in pages */
149 int last; /* index of last used entry */
150} *usergart;
151
152static void evict_entry(struct drm_gem_object *obj,
153 enum tiler_fmt fmt, struct usergart_entry *entry)
154{
155 if (obj->dev->dev_mapping) {
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156 struct omap_gem_object *omap_obj = to_omap_bo(obj);
157 int n = usergart[fmt].height;
158 size_t size = PAGE_SIZE * n;
c5b1247b 159 loff_t off = mmap_offset(obj) +
f7f9f453 160 (entry->obj_pgoff << PAGE_SHIFT);
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161 const int m = 1 + ((omap_obj->width << fmt) / PAGE_SIZE);
162 if (m > 1) {
163 int i;
164 /* if stride > than PAGE_SIZE then sparse mapping: */
165 for (i = n; i > 0; i--) {
166 unmap_mapping_range(obj->dev->dev_mapping,
167 off, PAGE_SIZE, 1);
168 off += PAGE_SIZE * m;
169 }
170 } else {
171 unmap_mapping_range(obj->dev->dev_mapping, off, size, 1);
172 }
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173 }
174
175 entry->obj = NULL;
176}
177
178/* Evict a buffer from usergart, if it is mapped there */
179static void evict(struct drm_gem_object *obj)
180{
181 struct omap_gem_object *omap_obj = to_omap_bo(obj);
182
183 if (omap_obj->flags & OMAP_BO_TILED) {
184 enum tiler_fmt fmt = gem2fmt(omap_obj->flags);
185 int i;
186
187 if (!usergart)
188 return;
189
190 for (i = 0; i < NUM_USERGART_ENTRIES; i++) {
191 struct usergart_entry *entry = &usergart[fmt].entry[i];
192 if (entry->obj == obj)
193 evict_entry(obj, fmt, entry);
194 }
195 }
196}
197
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198/* GEM objects can either be allocated from contiguous memory (in which
199 * case obj->filp==NULL), or w/ shmem backing (obj->filp!=NULL). But non
200 * contiguous buffers can be remapped in TILER/DMM if they need to be
201 * contiguous... but we don't do this all the time to reduce pressure
202 * on TILER/DMM space when we know at allocation time that the buffer
203 * will need to be scanned out.
204 */
205static inline bool is_shmem(struct drm_gem_object *obj)
206{
207 return obj->filp != NULL;
208}
209
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210/**
211 * shmem buffers that are mapped cached can simulate coherency via using
212 * page faulting to keep track of dirty pages
213 */
214static inline bool is_cached_coherent(struct drm_gem_object *obj)
215{
216 struct omap_gem_object *omap_obj = to_omap_bo(obj);
217 return is_shmem(obj) &&
218 ((omap_obj->flags & OMAP_BO_CACHE_MASK) == OMAP_BO_CACHED);
219}
220
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221static DEFINE_SPINLOCK(sync_lock);
222
223/** ensure backing pages are allocated */
224static int omap_gem_attach_pages(struct drm_gem_object *obj)
225{
8b6b569e 226 struct drm_device *dev = obj->dev;
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227 struct omap_gem_object *omap_obj = to_omap_bo(obj);
228 struct page **pages;
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229 int i, npages = obj->size >> PAGE_SHIFT;
230 dma_addr_t *addrs;
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231
232 WARN_ON(omap_obj->pages);
233
234 /* TODO: __GFP_DMA32 .. but somehow GFP_HIGHMEM is coming from the
235 * mapping_gfp_mask(mapping) which conflicts w/ GFP_DMA32.. probably
236 * we actually want CMA memory for it all anyways..
237 */
238 pages = _drm_gem_get_pages(obj, GFP_KERNEL);
239 if (IS_ERR(pages)) {
240 dev_err(obj->dev->dev, "could not get pages: %ld\n", PTR_ERR(pages));
241 return PTR_ERR(pages);
242 }
243
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244 /* for non-cached buffers, ensure the new pages are clean because
245 * DSS, GPU, etc. are not cache coherent:
246 */
247 if (omap_obj->flags & (OMAP_BO_WC|OMAP_BO_UNCACHED)) {
8b6b569e 248 addrs = kmalloc(npages * sizeof(addrs), GFP_KERNEL);
f3bc9d24 249 for (i = 0; i < npages; i++) {
8b6b569e 250 addrs[i] = dma_map_page(dev->dev, pages[i],
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251 0, PAGE_SIZE, DMA_BIDIRECTIONAL);
252 }
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253 } else {
254 addrs = kzalloc(npages * sizeof(addrs), GFP_KERNEL);
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255 }
256
8b6b569e 257 omap_obj->addrs = addrs;
cd5351f4 258 omap_obj->pages = pages;
8b6b569e 259
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260 return 0;
261}
262
263/** release backing pages */
264static void omap_gem_detach_pages(struct drm_gem_object *obj)
265{
266 struct omap_gem_object *omap_obj = to_omap_bo(obj);
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267
268 /* for non-cached buffers, ensure the new pages are clean because
269 * DSS, GPU, etc. are not cache coherent:
270 */
271 if (omap_obj->flags & (OMAP_BO_WC|OMAP_BO_UNCACHED)) {
272 int i, npages = obj->size >> PAGE_SHIFT;
273 for (i = 0; i < npages; i++) {
274 dma_unmap_page(obj->dev->dev, omap_obj->addrs[i],
275 PAGE_SIZE, DMA_BIDIRECTIONAL);
276 }
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277 }
278
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279 kfree(omap_obj->addrs);
280 omap_obj->addrs = NULL;
281
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282 _drm_gem_put_pages(obj, omap_obj->pages, true, false);
283 omap_obj->pages = NULL;
284}
285
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286/* get buffer flags */
287uint32_t omap_gem_flags(struct drm_gem_object *obj)
288{
289 return to_omap_bo(obj)->flags;
290}
291
cd5351f4 292/** get mmap offset */
c5b1247b 293static uint64_t mmap_offset(struct drm_gem_object *obj)
cd5351f4 294{
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295 struct drm_device *dev = obj->dev;
296
297 WARN_ON(!mutex_is_locked(&dev->struct_mutex));
298
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299 if (!obj->map_list.map) {
300 /* Make it mmapable */
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301 size_t size = omap_gem_mmap_size(obj);
302 int ret = _drm_gem_create_mmap_offset_size(obj, size);
303
cd5351f4 304 if (ret) {
f6b6036e 305 dev_err(dev->dev, "could not allocate mmap offset\n");
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306 return 0;
307 }
308 }
309
310 return (uint64_t)obj->map_list.hash.key << PAGE_SHIFT;
311}
312
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313uint64_t omap_gem_mmap_offset(struct drm_gem_object *obj)
314{
315 uint64_t offset;
316 mutex_lock(&obj->dev->struct_mutex);
317 offset = mmap_offset(obj);
318 mutex_unlock(&obj->dev->struct_mutex);
319 return offset;
320}
321
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322/** get mmap size */
323size_t omap_gem_mmap_size(struct drm_gem_object *obj)
324{
325 struct omap_gem_object *omap_obj = to_omap_bo(obj);
326 size_t size = obj->size;
327
328 if (omap_obj->flags & OMAP_BO_TILED) {
329 /* for tiled buffers, the virtual size has stride rounded up
330 * to 4kb.. (to hide the fact that row n+1 might start 16kb or
331 * 32kb later!). But we don't back the entire buffer with
332 * pages, only the valid picture part.. so need to adjust for
333 * this in the size used to mmap and generate mmap offset
334 */
335 size = tiler_vsize(gem2fmt(omap_obj->flags),
336 omap_obj->width, omap_obj->height);
337 }
338
339 return size;
340}
341
342
343/* Normal handling for the case of faulting in non-tiled buffers */
344static int fault_1d(struct drm_gem_object *obj,
345 struct vm_area_struct *vma, struct vm_fault *vmf)
346{
347 struct omap_gem_object *omap_obj = to_omap_bo(obj);
348 unsigned long pfn;
349 pgoff_t pgoff;
350
351 /* We don't use vmf->pgoff since that has the fake offset: */
352 pgoff = ((unsigned long)vmf->virtual_address -
353 vma->vm_start) >> PAGE_SHIFT;
354
355 if (omap_obj->pages) {
8b6b569e 356 omap_gem_cpu_sync(obj, pgoff);
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357 pfn = page_to_pfn(omap_obj->pages[pgoff]);
358 } else {
359 BUG_ON(!(omap_obj->flags & OMAP_BO_DMA));
360 pfn = (omap_obj->paddr >> PAGE_SHIFT) + pgoff;
361 }
362
363 VERB("Inserting %p pfn %lx, pa %lx", vmf->virtual_address,
364 pfn, pfn << PAGE_SHIFT);
365
366 return vm_insert_mixed(vma, (unsigned long)vmf->virtual_address, pfn);
367}
368
369/* Special handling for the case of faulting in 2d tiled buffers */
370static int fault_2d(struct drm_gem_object *obj,
371 struct vm_area_struct *vma, struct vm_fault *vmf)
372{
373 struct omap_gem_object *omap_obj = to_omap_bo(obj);
374 struct usergart_entry *entry;
375 enum tiler_fmt fmt = gem2fmt(omap_obj->flags);
376 struct page *pages[64]; /* XXX is this too much to have on stack? */
377 unsigned long pfn;
378 pgoff_t pgoff, base_pgoff;
379 void __user *vaddr;
380 int i, ret, slots;
381
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382 /*
383 * Note the height of the slot is also equal to the number of pages
384 * that need to be mapped in to fill 4kb wide CPU page. If the slot
385 * height is 64, then 64 pages fill a 4kb wide by 64 row region.
386 */
387 const int n = usergart[fmt].height;
388 const int n_shift = usergart[fmt].height_shift;
389
390 /*
391 * If buffer width in bytes > PAGE_SIZE then the virtual stride is
392 * rounded up to next multiple of PAGE_SIZE.. this need to be taken
393 * into account in some of the math, so figure out virtual stride
394 * in pages
f7f9f453 395 */
e559895a 396 const int m = 1 + ((omap_obj->width << fmt) / PAGE_SIZE);
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397
398 /* We don't use vmf->pgoff since that has the fake offset: */
399 pgoff = ((unsigned long)vmf->virtual_address -
400 vma->vm_start) >> PAGE_SHIFT;
401
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402 /*
403 * Actual address we start mapping at is rounded down to previous slot
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404 * boundary in the y direction:
405 */
e559895a 406 base_pgoff = round_down(pgoff, m << n_shift);
f7f9f453 407
e559895a 408 /* figure out buffer width in slots */
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409 slots = omap_obj->width >> usergart[fmt].slot_shift;
410
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411 vaddr = vmf->virtual_address - ((pgoff - base_pgoff) << PAGE_SHIFT);
412
413 entry = &usergart[fmt].entry[usergart[fmt].last];
414
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415 /* evict previous buffer using this usergart entry, if any: */
416 if (entry->obj)
417 evict_entry(entry->obj, fmt, entry);
418
419 entry->obj = obj;
420 entry->obj_pgoff = base_pgoff;
421
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422 /* now convert base_pgoff to phys offset from virt offset: */
423 base_pgoff = (base_pgoff >> n_shift) * slots;
424
425 /* for wider-than 4k.. figure out which part of the slot-row we want: */
426 if (m > 1) {
427 int off = pgoff % m;
428 entry->obj_pgoff += off;
429 base_pgoff /= m;
430 slots = min(slots - (off << n_shift), n);
431 base_pgoff += off << n_shift;
432 vaddr += off << PAGE_SHIFT;
433 }
434
435 /*
436 * Map in pages. Beyond the valid pixel part of the buffer, we set
437 * pages[i] to NULL to get a dummy page mapped in.. if someone
438 * reads/writes it they will get random/undefined content, but at
439 * least it won't be corrupting whatever other random page used to
440 * be mapped in, or other undefined behavior.
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441 */
442 memcpy(pages, &omap_obj->pages[base_pgoff],
443 sizeof(struct page *) * slots);
444 memset(pages + slots, 0,
e559895a 445 sizeof(struct page *) * (n - slots));
f7f9f453 446
a6a91827 447 ret = tiler_pin(entry->block, pages, ARRAY_SIZE(pages), 0, true);
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448 if (ret) {
449 dev_err(obj->dev->dev, "failed to pin: %d\n", ret);
450 return ret;
451 }
452
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453 pfn = entry->paddr >> PAGE_SHIFT;
454
455 VERB("Inserting %p pfn %lx, pa %lx", vmf->virtual_address,
456 pfn, pfn << PAGE_SHIFT);
457
e559895a 458 for (i = n; i > 0; i--) {
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459 vm_insert_mixed(vma, (unsigned long)vaddr, pfn);
460 pfn += usergart[fmt].stride_pfn;
e559895a 461 vaddr += PAGE_SIZE * m;
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462 }
463
464 /* simple round-robin: */
465 usergart[fmt].last = (usergart[fmt].last + 1) % NUM_USERGART_ENTRIES;
466
467 return 0;
468}
469
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470/**
471 * omap_gem_fault - pagefault handler for GEM objects
472 * @vma: the VMA of the GEM object
473 * @vmf: fault detail
474 *
475 * Invoked when a fault occurs on an mmap of a GEM managed area. GEM
476 * does most of the work for us including the actual map/unmap calls
477 * but we need to do the actual page work.
478 *
479 * The VMA was set up by GEM. In doing so it also ensured that the
480 * vma->vm_private_data points to the GEM object that is backing this
481 * mapping.
482 */
483int omap_gem_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
484{
485 struct drm_gem_object *obj = vma->vm_private_data;
486 struct omap_gem_object *omap_obj = to_omap_bo(obj);
487 struct drm_device *dev = obj->dev;
488 struct page **pages;
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489 int ret;
490
491 /* Make sure we don't parallel update on a fault, nor move or remove
492 * something from beneath our feet
493 */
494 mutex_lock(&dev->struct_mutex);
495
496 /* if a shmem backed object, make sure we have pages attached now */
497 ret = get_pages(obj, &pages);
498 if (ret) {
499 goto fail;
500 }
501
502 /* where should we do corresponding put_pages().. we are mapping
503 * the original page, rather than thru a GART, so we can't rely
504 * on eviction to trigger this. But munmap() or all mappings should
505 * probably trigger put_pages()?
506 */
507
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508 if (omap_obj->flags & OMAP_BO_TILED)
509 ret = fault_2d(obj, vma, vmf);
510 else
511 ret = fault_1d(obj, vma, vmf);
cd5351f4 512
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513
514fail:
515 mutex_unlock(&dev->struct_mutex);
516 switch (ret) {
517 case 0:
518 case -ERESTARTSYS:
519 case -EINTR:
520 return VM_FAULT_NOPAGE;
521 case -ENOMEM:
522 return VM_FAULT_OOM;
523 default:
524 return VM_FAULT_SIGBUS;
525 }
526}
527
528/** We override mainly to fix up some of the vm mapping flags.. */
529int omap_gem_mmap(struct file *filp, struct vm_area_struct *vma)
530{
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531 int ret;
532
533 ret = drm_gem_mmap(filp, vma);
534 if (ret) {
535 DBG("mmap failed: %d", ret);
536 return ret;
537 }
538
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539 return omap_gem_mmap_obj(vma->vm_private_data, vma);
540}
541
542int omap_gem_mmap_obj(struct drm_gem_object *obj,
543 struct vm_area_struct *vma)
544{
545 struct omap_gem_object *omap_obj = to_omap_bo(obj);
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546
547 vma->vm_flags &= ~VM_PFNMAP;
548 vma->vm_flags |= VM_MIXEDMAP;
549
550 if (omap_obj->flags & OMAP_BO_WC) {
551 vma->vm_page_prot = pgprot_writecombine(vm_get_page_prot(vma->vm_flags));
552 } else if (omap_obj->flags & OMAP_BO_UNCACHED) {
553 vma->vm_page_prot = pgprot_noncached(vm_get_page_prot(vma->vm_flags));
554 } else {
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555 /*
556 * We do have some private objects, at least for scanout buffers
557 * on hardware without DMM/TILER. But these are allocated write-
558 * combine
559 */
560 if (WARN_ON(!obj->filp))
561 return -EINVAL;
562
563 /*
564 * Shunt off cached objs to shmem file so they have their own
565 * address_space (so unmap_mapping_range does what we want,
566 * in particular in the case of mmap'd dmabufs)
567 */
568 fput(vma->vm_file);
8b6b569e 569 vma->vm_pgoff = 0;
cb0942b8 570 vma->vm_file = get_file(obj->filp);
8b6b569e 571
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572 vma->vm_page_prot = vm_get_page_prot(vma->vm_flags);
573 }
574
8b6b569e 575 return 0;
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576}
577
8b6b569e 578
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579/**
580 * omap_gem_dumb_create - create a dumb buffer
581 * @drm_file: our client file
582 * @dev: our device
583 * @args: the requested arguments copied from userspace
584 *
585 * Allocate a buffer suitable for use for a frame buffer of the
586 * form described by user space. Give userspace a handle by which
587 * to reference it.
588 */
589int omap_gem_dumb_create(struct drm_file *file, struct drm_device *dev,
590 struct drm_mode_create_dumb *args)
591{
592 union omap_gem_size gsize;
593
594 /* in case someone tries to feed us a completely bogus stride: */
595 args->pitch = align_pitch(args->pitch, args->width, args->bpp);
596 args->size = PAGE_ALIGN(args->pitch * args->height);
597
598 gsize = (union omap_gem_size){
599 .bytes = args->size,
600 };
601
602 return omap_gem_new_handle(dev, file, gsize,
603 OMAP_BO_SCANOUT | OMAP_BO_WC, &args->handle);
604}
605
606/**
607 * omap_gem_dumb_destroy - destroy a dumb buffer
608 * @file: client file
609 * @dev: our DRM device
610 * @handle: the object handle
611 *
612 * Destroy a handle that was created via omap_gem_dumb_create.
613 */
614int omap_gem_dumb_destroy(struct drm_file *file, struct drm_device *dev,
615 uint32_t handle)
616{
617 /* No special work needed, drop the reference and see what falls out */
618 return drm_gem_handle_delete(file, handle);
619}
620
621/**
622 * omap_gem_dumb_map - buffer mapping for dumb interface
623 * @file: our drm client file
624 * @dev: drm device
625 * @handle: GEM handle to the object (from dumb_create)
626 *
627 * Do the necessary setup to allow the mapping of the frame buffer
628 * into user memory. We don't have to do much here at the moment.
629 */
630int omap_gem_dumb_map_offset(struct drm_file *file, struct drm_device *dev,
631 uint32_t handle, uint64_t *offset)
632{
633 struct drm_gem_object *obj;
634 int ret = 0;
635
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636 /* GEM does all our handle to object mapping */
637 obj = drm_gem_object_lookup(dev, file, handle);
638 if (obj == NULL) {
639 ret = -ENOENT;
640 goto fail;
641 }
642
643 *offset = omap_gem_mmap_offset(obj);
644
645 drm_gem_object_unreference_unlocked(obj);
646
647fail:
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648 return ret;
649}
650
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651/* Set scrolling position. This allows us to implement fast scrolling
652 * for console.
9b55b95a
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653 *
654 * Call only from non-atomic contexts.
a6a91827
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655 */
656int omap_gem_roll(struct drm_gem_object *obj, uint32_t roll)
657{
658 struct omap_gem_object *omap_obj = to_omap_bo(obj);
659 uint32_t npages = obj->size >> PAGE_SHIFT;
660 int ret = 0;
661
662 if (roll > npages) {
663 dev_err(obj->dev->dev, "invalid roll: %d\n", roll);
664 return -EINVAL;
665 }
666
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667 omap_obj->roll = roll;
668
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RC
669 mutex_lock(&obj->dev->struct_mutex);
670
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671 /* if we aren't mapped yet, we don't need to do anything */
672 if (omap_obj->block) {
673 struct page **pages;
674 ret = get_pages(obj, &pages);
675 if (ret)
676 goto fail;
677 ret = tiler_pin(omap_obj->block, pages, npages, roll, true);
678 if (ret)
679 dev_err(obj->dev->dev, "could not repin: %d\n", ret);
680 }
681
682fail:
683 mutex_unlock(&obj->dev->struct_mutex);
684
685 return ret;
686}
687
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688/* Sync the buffer for CPU access.. note pages should already be
689 * attached, ie. omap_gem_get_pages()
690 */
691void omap_gem_cpu_sync(struct drm_gem_object *obj, int pgoff)
692{
693 struct drm_device *dev = obj->dev;
694 struct omap_gem_object *omap_obj = to_omap_bo(obj);
695
696 if (is_cached_coherent(obj) && omap_obj->addrs[pgoff]) {
697 dma_unmap_page(dev->dev, omap_obj->addrs[pgoff],
698 PAGE_SIZE, DMA_BIDIRECTIONAL);
699 omap_obj->addrs[pgoff] = 0;
700 }
701}
702
703/* sync the buffer for DMA access */
704void omap_gem_dma_sync(struct drm_gem_object *obj,
705 enum dma_data_direction dir)
706{
707 struct drm_device *dev = obj->dev;
708 struct omap_gem_object *omap_obj = to_omap_bo(obj);
709
710 if (is_cached_coherent(obj)) {
711 int i, npages = obj->size >> PAGE_SHIFT;
712 struct page **pages = omap_obj->pages;
713 bool dirty = false;
714
715 for (i = 0; i < npages; i++) {
716 if (!omap_obj->addrs[i]) {
717 omap_obj->addrs[i] = dma_map_page(dev->dev, pages[i], 0,
718 PAGE_SIZE, DMA_BIDIRECTIONAL);
719 dirty = true;
720 }
721 }
722
723 if (dirty) {
724 unmap_mapping_range(obj->filp->f_mapping, 0,
725 omap_gem_mmap_size(obj), 1);
726 }
727 }
728}
729
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730/* Get physical address for DMA.. if 'remap' is true, and the buffer is not
731 * already contiguous, remap it to pin in physically contiguous memory.. (ie.
732 * map in TILER)
733 */
734int omap_gem_get_paddr(struct drm_gem_object *obj,
735 dma_addr_t *paddr, bool remap)
736{
a6a91827 737 struct omap_drm_private *priv = obj->dev->dev_private;
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738 struct omap_gem_object *omap_obj = to_omap_bo(obj);
739 int ret = 0;
740
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741 mutex_lock(&obj->dev->struct_mutex);
742
a6a91827 743 if (remap && is_shmem(obj) && priv->has_dmm) {
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744 if (omap_obj->paddr_cnt == 0) {
745 struct page **pages;
a6a91827 746 uint32_t npages = obj->size >> PAGE_SHIFT;
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747 enum tiler_fmt fmt = gem2fmt(omap_obj->flags);
748 struct tiler_block *block;
a6a91827 749
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750 BUG_ON(omap_obj->block);
751
752 ret = get_pages(obj, &pages);
753 if (ret)
754 goto fail;
755
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756 if (omap_obj->flags & OMAP_BO_TILED) {
757 block = tiler_reserve_2d(fmt,
758 omap_obj->width,
759 omap_obj->height, 0);
760 } else {
761 block = tiler_reserve_1d(obj->size);
762 }
763
764 if (IS_ERR(block)) {
765 ret = PTR_ERR(block);
766 dev_err(obj->dev->dev,
767 "could not remap: %d (%d)\n", ret, fmt);
768 goto fail;
769 }
770
771 /* TODO: enable async refill.. */
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772 ret = tiler_pin(block, pages, npages,
773 omap_obj->roll, true);
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774 if (ret) {
775 tiler_release(block);
776 dev_err(obj->dev->dev,
777 "could not pin: %d\n", ret);
778 goto fail;
779 }
780
781 omap_obj->paddr = tiler_ssptr(block);
782 omap_obj->block = block;
783
784 DBG("got paddr: %08x", omap_obj->paddr);
785 }
786
787 omap_obj->paddr_cnt++;
788
789 *paddr = omap_obj->paddr;
790 } else if (omap_obj->flags & OMAP_BO_DMA) {
791 *paddr = omap_obj->paddr;
792 } else {
793 ret = -EINVAL;
8b6b569e 794 goto fail;
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795 }
796
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797fail:
798 mutex_unlock(&obj->dev->struct_mutex);
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799
800 return ret;
801}
802
803/* Release physical address, when DMA is no longer being performed.. this
804 * could potentially unpin and unmap buffers from TILER
805 */
806int omap_gem_put_paddr(struct drm_gem_object *obj)
807{
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808 struct omap_gem_object *omap_obj = to_omap_bo(obj);
809 int ret = 0;
810
811 mutex_lock(&obj->dev->struct_mutex);
812 if (omap_obj->paddr_cnt > 0) {
813 omap_obj->paddr_cnt--;
814 if (omap_obj->paddr_cnt == 0) {
815 ret = tiler_unpin(omap_obj->block);
816 if (ret) {
817 dev_err(obj->dev->dev,
818 "could not unpin pages: %d\n", ret);
819 goto fail;
820 }
821 ret = tiler_release(omap_obj->block);
822 if (ret) {
823 dev_err(obj->dev->dev,
824 "could not release unmap: %d\n", ret);
825 }
826 omap_obj->block = NULL;
827 }
828 }
829fail:
830 mutex_unlock(&obj->dev->struct_mutex);
831 return ret;
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832}
833
834/* acquire pages when needed (for example, for DMA where physically
835 * contiguous buffer is not required
836 */
837static int get_pages(struct drm_gem_object *obj, struct page ***pages)
838{
839 struct omap_gem_object *omap_obj = to_omap_bo(obj);
840 int ret = 0;
841
842 if (is_shmem(obj) && !omap_obj->pages) {
843 ret = omap_gem_attach_pages(obj);
844 if (ret) {
845 dev_err(obj->dev->dev, "could not attach pages\n");
846 return ret;
847 }
848 }
849
850 /* TODO: even phys-contig.. we should have a list of pages? */
851 *pages = omap_obj->pages;
852
853 return 0;
854}
855
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856/* if !remap, and we don't have pages backing, then fail, rather than
857 * increasing the pin count (which we don't really do yet anyways,
858 * because we don't support swapping pages back out). And 'remap'
859 * might not be quite the right name, but I wanted to keep it working
860 * similarly to omap_gem_get_paddr(). Note though that mutex is not
861 * aquired if !remap (because this can be called in atomic ctxt),
862 * but probably omap_gem_get_paddr() should be changed to work in the
863 * same way. If !remap, a matching omap_gem_put_pages() call is not
864 * required (and should not be made).
865 */
866int omap_gem_get_pages(struct drm_gem_object *obj, struct page ***pages,
867 bool remap)
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868{
869 int ret;
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870 if (!remap) {
871 struct omap_gem_object *omap_obj = to_omap_bo(obj);
872 if (!omap_obj->pages)
873 return -ENOMEM;
874 *pages = omap_obj->pages;
875 return 0;
876 }
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877 mutex_lock(&obj->dev->struct_mutex);
878 ret = get_pages(obj, pages);
879 mutex_unlock(&obj->dev->struct_mutex);
880 return ret;
881}
882
883/* release pages when DMA no longer being performed */
884int omap_gem_put_pages(struct drm_gem_object *obj)
885{
886 /* do something here if we dynamically attach/detach pages.. at
887 * least they would no longer need to be pinned if everyone has
888 * released the pages..
889 */
890 return 0;
891}
892
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893/* Get kernel virtual address for CPU access.. this more or less only
894 * exists for omap_fbdev. This should be called with struct_mutex
895 * held.
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896 */
897void *omap_gem_vaddr(struct drm_gem_object *obj)
898{
899 struct omap_gem_object *omap_obj = to_omap_bo(obj);
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900 WARN_ON(! mutex_is_locked(&obj->dev->struct_mutex));
901 if (!omap_obj->vaddr) {
902 struct page **pages;
903 int ret = get_pages(obj, &pages);
904 if (ret)
905 return ERR_PTR(ret);
906 omap_obj->vaddr = vmap(pages, obj->size >> PAGE_SHIFT,
907 VM_MAP, pgprot_writecombine(PAGE_KERNEL));
908 }
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909 return omap_obj->vaddr;
910}
911
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912#ifdef CONFIG_DEBUG_FS
913void omap_gem_describe(struct drm_gem_object *obj, struct seq_file *m)
914{
915 struct drm_device *dev = obj->dev;
916 struct omap_gem_object *omap_obj = to_omap_bo(obj);
917 uint64_t off = 0;
918
919 WARN_ON(! mutex_is_locked(&dev->struct_mutex));
920
921 if (obj->map_list.map)
922 off = (uint64_t)obj->map_list.hash.key;
923
924 seq_printf(m, "%08x: %2d (%2d) %08llx %08Zx (%2d) %p %4d",
925 omap_obj->flags, obj->name, obj->refcount.refcount.counter,
926 off, omap_obj->paddr, omap_obj->paddr_cnt,
927 omap_obj->vaddr, omap_obj->roll);
928
929 if (omap_obj->flags & OMAP_BO_TILED) {
930 seq_printf(m, " %dx%d", omap_obj->width, omap_obj->height);
931 if (omap_obj->block) {
932 struct tcm_area *area = &omap_obj->block->area;
933 seq_printf(m, " (%dx%d, %dx%d)",
934 area->p0.x, area->p0.y,
935 area->p1.x, area->p1.y);
936 }
937 } else {
938 seq_printf(m, " %d", obj->size);
939 }
940
941 seq_printf(m, "\n");
942}
943
944void omap_gem_describe_objects(struct list_head *list, struct seq_file *m)
945{
946 struct omap_gem_object *omap_obj;
947 int count = 0;
948 size_t size = 0;
949
950 list_for_each_entry(omap_obj, list, mm_list) {
951 struct drm_gem_object *obj = &omap_obj->base;
952 seq_printf(m, " ");
953 omap_gem_describe(obj, m);
954 count++;
955 size += obj->size;
956 }
957
958 seq_printf(m, "Total %d objects, %zu bytes\n", count, size);
959}
960#endif
961
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962/* Buffer Synchronization:
963 */
964
965struct omap_gem_sync_waiter {
966 struct list_head list;
967 struct omap_gem_object *omap_obj;
968 enum omap_gem_op op;
969 uint32_t read_target, write_target;
970 /* notify called w/ sync_lock held */
971 void (*notify)(void *arg);
972 void *arg;
973};
974
975/* list of omap_gem_sync_waiter.. the notify fxn gets called back when
976 * the read and/or write target count is achieved which can call a user
977 * callback (ex. to kick 3d and/or 2d), wakeup blocked task (prep for
978 * cpu access), etc.
979 */
980static LIST_HEAD(waiters);
981
982static inline bool is_waiting(struct omap_gem_sync_waiter *waiter)
983{
984 struct omap_gem_object *omap_obj = waiter->omap_obj;
985 if ((waiter->op & OMAP_GEM_READ) &&
986 (omap_obj->sync->read_complete < waiter->read_target))
987 return true;
988 if ((waiter->op & OMAP_GEM_WRITE) &&
989 (omap_obj->sync->write_complete < waiter->write_target))
990 return true;
991 return false;
992}
993
994/* macro for sync debug.. */
995#define SYNCDBG 0
996#define SYNC(fmt, ...) do { if (SYNCDBG) \
997 printk(KERN_ERR "%s:%d: "fmt"\n", \
998 __func__, __LINE__, ##__VA_ARGS__); \
999 } while (0)
1000
1001
1002static void sync_op_update(void)
1003{
1004 struct omap_gem_sync_waiter *waiter, *n;
1005 list_for_each_entry_safe(waiter, n, &waiters, list) {
1006 if (!is_waiting(waiter)) {
1007 list_del(&waiter->list);
1008 SYNC("notify: %p", waiter);
1009 waiter->notify(waiter->arg);
1010 kfree(waiter);
1011 }
1012 }
1013}
1014
1015static inline int sync_op(struct drm_gem_object *obj,
1016 enum omap_gem_op op, bool start)
1017{
1018 struct omap_gem_object *omap_obj = to_omap_bo(obj);
1019 int ret = 0;
1020
1021 spin_lock(&sync_lock);
1022
1023 if (!omap_obj->sync) {
1024 omap_obj->sync = kzalloc(sizeof(*omap_obj->sync), GFP_ATOMIC);
1025 if (!omap_obj->sync) {
1026 ret = -ENOMEM;
1027 goto unlock;
1028 }
1029 }
1030
1031 if (start) {
1032 if (op & OMAP_GEM_READ)
1033 omap_obj->sync->read_pending++;
1034 if (op & OMAP_GEM_WRITE)
1035 omap_obj->sync->write_pending++;
1036 } else {
1037 if (op & OMAP_GEM_READ)
1038 omap_obj->sync->read_complete++;
1039 if (op & OMAP_GEM_WRITE)
1040 omap_obj->sync->write_complete++;
1041 sync_op_update();
1042 }
1043
1044unlock:
1045 spin_unlock(&sync_lock);
1046
1047 return ret;
1048}
1049
1050/* it is a bit lame to handle updates in this sort of polling way, but
1051 * in case of PVR, the GPU can directly update read/write complete
1052 * values, and not really tell us which ones it updated.. this also
1053 * means that sync_lock is not quite sufficient. So we'll need to
1054 * do something a bit better when it comes time to add support for
1055 * separate 2d hw..
1056 */
1057void omap_gem_op_update(void)
1058{
1059 spin_lock(&sync_lock);
1060 sync_op_update();
1061 spin_unlock(&sync_lock);
1062}
1063
1064/* mark the start of read and/or write operation */
1065int omap_gem_op_start(struct drm_gem_object *obj, enum omap_gem_op op)
1066{
1067 return sync_op(obj, op, true);
1068}
1069
1070int omap_gem_op_finish(struct drm_gem_object *obj, enum omap_gem_op op)
1071{
1072 return sync_op(obj, op, false);
1073}
1074
1075static DECLARE_WAIT_QUEUE_HEAD(sync_event);
1076
1077static void sync_notify(void *arg)
1078{
1079 struct task_struct **waiter_task = arg;
1080 *waiter_task = NULL;
1081 wake_up_all(&sync_event);
1082}
1083
1084int omap_gem_op_sync(struct drm_gem_object *obj, enum omap_gem_op op)
1085{
1086 struct omap_gem_object *omap_obj = to_omap_bo(obj);
1087 int ret = 0;
1088 if (omap_obj->sync) {
1089 struct task_struct *waiter_task = current;
1090 struct omap_gem_sync_waiter *waiter =
1091 kzalloc(sizeof(*waiter), GFP_KERNEL);
1092
1093 if (!waiter) {
1094 return -ENOMEM;
1095 }
1096
1097 waiter->omap_obj = omap_obj;
1098 waiter->op = op;
1099 waiter->read_target = omap_obj->sync->read_pending;
1100 waiter->write_target = omap_obj->sync->write_pending;
1101 waiter->notify = sync_notify;
1102 waiter->arg = &waiter_task;
1103
1104 spin_lock(&sync_lock);
1105 if (is_waiting(waiter)) {
1106 SYNC("waited: %p", waiter);
1107 list_add_tail(&waiter->list, &waiters);
1108 spin_unlock(&sync_lock);
1109 ret = wait_event_interruptible(sync_event,
1110 (waiter_task == NULL));
1111 spin_lock(&sync_lock);
1112 if (waiter_task) {
1113 SYNC("interrupted: %p", waiter);
1114 /* we were interrupted */
1115 list_del(&waiter->list);
1116 waiter_task = NULL;
1117 } else {
1118 /* freed in sync_op_update() */
1119 waiter = NULL;
1120 }
1121 }
1122 spin_unlock(&sync_lock);
1123
1124 if (waiter) {
1125 kfree(waiter);
1126 }
1127 }
1128 return ret;
1129}
1130
1131/* call fxn(arg), either synchronously or asynchronously if the op
1132 * is currently blocked.. fxn() can be called from any context
1133 *
1134 * (TODO for now fxn is called back from whichever context calls
1135 * omap_gem_op_update().. but this could be better defined later
1136 * if needed)
1137 *
1138 * TODO more code in common w/ _sync()..
1139 */
1140int omap_gem_op_async(struct drm_gem_object *obj, enum omap_gem_op op,
1141 void (*fxn)(void *arg), void *arg)
1142{
1143 struct omap_gem_object *omap_obj = to_omap_bo(obj);
1144 if (omap_obj->sync) {
1145 struct omap_gem_sync_waiter *waiter =
1146 kzalloc(sizeof(*waiter), GFP_ATOMIC);
1147
1148 if (!waiter) {
1149 return -ENOMEM;
1150 }
1151
1152 waiter->omap_obj = omap_obj;
1153 waiter->op = op;
1154 waiter->read_target = omap_obj->sync->read_pending;
1155 waiter->write_target = omap_obj->sync->write_pending;
1156 waiter->notify = fxn;
1157 waiter->arg = arg;
1158
1159 spin_lock(&sync_lock);
1160 if (is_waiting(waiter)) {
1161 SYNC("waited: %p", waiter);
1162 list_add_tail(&waiter->list, &waiters);
1163 spin_unlock(&sync_lock);
1164 return 0;
1165 }
1166
1167 spin_unlock(&sync_lock);
1168 }
1169
1170 /* no waiting.. */
1171 fxn(arg);
1172
1173 return 0;
1174}
1175
1176/* special API so PVR can update the buffer to use a sync-object allocated
1177 * from it's sync-obj heap. Only used for a newly allocated (from PVR's
1178 * perspective) sync-object, so we overwrite the new syncobj w/ values
1179 * from the already allocated syncobj (if there is one)
1180 */
1181int omap_gem_set_sync_object(struct drm_gem_object *obj, void *syncobj)
1182{
1183 struct omap_gem_object *omap_obj = to_omap_bo(obj);
1184 int ret = 0;
1185
1186 spin_lock(&sync_lock);
1187
1188 if ((omap_obj->flags & OMAP_BO_EXT_SYNC) && !syncobj) {
1189 /* clearing a previously set syncobj */
1190 syncobj = kzalloc(sizeof(*omap_obj->sync), GFP_ATOMIC);
1191 if (!syncobj) {
1192 ret = -ENOMEM;
1193 goto unlock;
1194 }
1195 memcpy(syncobj, omap_obj->sync, sizeof(*omap_obj->sync));
1196 omap_obj->flags &= ~OMAP_BO_EXT_SYNC;
1197 omap_obj->sync = syncobj;
1198 } else if (syncobj && !(omap_obj->flags & OMAP_BO_EXT_SYNC)) {
1199 /* replacing an existing syncobj */
1200 if (omap_obj->sync) {
1201 memcpy(syncobj, omap_obj->sync, sizeof(*omap_obj->sync));
1202 kfree(omap_obj->sync);
1203 }
1204 omap_obj->flags |= OMAP_BO_EXT_SYNC;
1205 omap_obj->sync = syncobj;
1206 }
1207
1208unlock:
1209 spin_unlock(&sync_lock);
1210 return ret;
1211}
1212
1213int omap_gem_init_object(struct drm_gem_object *obj)
1214{
1215 return -EINVAL; /* unused */
1216}
1217
1218/* don't call directly.. called from GEM core when it is time to actually
1219 * free the object..
1220 */
1221void omap_gem_free_object(struct drm_gem_object *obj)
1222{
1223 struct drm_device *dev = obj->dev;
1224 struct omap_gem_object *omap_obj = to_omap_bo(obj);
1225
f7f9f453
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1226 evict(obj);
1227
f6b6036e
RC
1228 WARN_ON(!mutex_is_locked(&dev->struct_mutex));
1229
1230 list_del(&omap_obj->mm_list);
1231
cd5351f4
RC
1232 if (obj->map_list.map) {
1233 drm_gem_free_mmap_offset(obj);
1234 }
1235
9a0774e0
RC
1236 /* this means the object is still pinned.. which really should
1237 * not happen. I think..
1238 */
1239 WARN_ON(omap_obj->paddr_cnt > 0);
1240
cd5351f4
RC
1241 /* don't free externally allocated backing memory */
1242 if (!(omap_obj->flags & OMAP_BO_EXT_MEM)) {
1243 if (omap_obj->pages) {
1244 omap_gem_detach_pages(obj);
1245 }
1246 if (!is_shmem(obj)) {
1247 dma_free_writecombine(dev->dev, obj->size,
1248 omap_obj->vaddr, omap_obj->paddr);
f7f9f453
RC
1249 } else if (omap_obj->vaddr) {
1250 vunmap(omap_obj->vaddr);
cd5351f4
RC
1251 }
1252 }
1253
1254 /* don't free externally allocated syncobj */
1255 if (!(omap_obj->flags & OMAP_BO_EXT_SYNC)) {
1256 kfree(omap_obj->sync);
1257 }
1258
1259 drm_gem_object_release(obj);
1260
1261 kfree(obj);
1262}
1263
1264/* convenience method to construct a GEM buffer object, and userspace handle */
1265int omap_gem_new_handle(struct drm_device *dev, struct drm_file *file,
1266 union omap_gem_size gsize, uint32_t flags, uint32_t *handle)
1267{
1268 struct drm_gem_object *obj;
1269 int ret;
1270
1271 obj = omap_gem_new(dev, gsize, flags);
1272 if (!obj)
1273 return -ENOMEM;
1274
1275 ret = drm_gem_handle_create(file, obj, handle);
1276 if (ret) {
1277 drm_gem_object_release(obj);
1278 kfree(obj); /* TODO isn't there a dtor to call? just copying i915 */
1279 return ret;
1280 }
1281
1282 /* drop reference from allocate - handle holds it now */
1283 drm_gem_object_unreference_unlocked(obj);
1284
1285 return 0;
1286}
1287
1288/* GEM buffer object constructor */
1289struct drm_gem_object *omap_gem_new(struct drm_device *dev,
1290 union omap_gem_size gsize, uint32_t flags)
1291{
a6a91827 1292 struct omap_drm_private *priv = dev->dev_private;
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1293 struct omap_gem_object *omap_obj;
1294 struct drm_gem_object *obj = NULL;
1295 size_t size;
1296 int ret;
1297
1298 if (flags & OMAP_BO_TILED) {
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1299 if (!usergart) {
1300 dev_err(dev->dev, "Tiled buffers require DMM\n");
1301 goto fail;
1302 }
1303
1304 /* tiled buffers are always shmem paged backed.. when they are
1305 * scanned out, they are remapped into DMM/TILER
1306 */
1307 flags &= ~OMAP_BO_SCANOUT;
1308
1309 /* currently don't allow cached buffers.. there is some caching
1310 * stuff that needs to be handled better
1311 */
1312 flags &= ~(OMAP_BO_CACHED|OMAP_BO_UNCACHED);
1313 flags |= OMAP_BO_WC;
cd5351f4 1314
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1315 /* align dimensions to slot boundaries... */
1316 tiler_align(gem2fmt(flags),
1317 &gsize.tiled.width, &gsize.tiled.height);
1318
1319 /* ...and calculate size based on aligned dimensions */
1320 size = tiler_size(gem2fmt(flags),
1321 gsize.tiled.width, gsize.tiled.height);
1322 } else {
1323 size = PAGE_ALIGN(gsize.bytes);
1324 }
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1325
1326 omap_obj = kzalloc(sizeof(*omap_obj), GFP_KERNEL);
1327 if (!omap_obj) {
1328 dev_err(dev->dev, "could not allocate GEM object\n");
1329 goto fail;
1330 }
1331
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1332 list_add(&omap_obj->mm_list, &priv->obj_list);
1333
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1334 obj = &omap_obj->base;
1335
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1336 if ((flags & OMAP_BO_SCANOUT) && !priv->has_dmm) {
1337 /* attempt to allocate contiguous memory if we don't
1338 * have DMM for remappign discontiguous buffers
1339 */
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1340 omap_obj->vaddr = dma_alloc_writecombine(dev->dev, size,
1341 &omap_obj->paddr, GFP_KERNEL);
1342 if (omap_obj->vaddr) {
1343 flags |= OMAP_BO_DMA;
1344 }
1345 }
1346
1347 omap_obj->flags = flags;
1348
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1349 if (flags & OMAP_BO_TILED) {
1350 omap_obj->width = gsize.tiled.width;
1351 omap_obj->height = gsize.tiled.height;
1352 }
1353
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1354 if (flags & (OMAP_BO_DMA|OMAP_BO_EXT_MEM)) {
1355 ret = drm_gem_private_object_init(dev, obj, size);
1356 } else {
1357 ret = drm_gem_object_init(dev, obj, size);
1358 }
1359
1360 if (ret) {
1361 goto fail;
1362 }
1363
1364 return obj;
1365
1366fail:
1367 if (obj) {
1368 omap_gem_free_object(obj);
1369 }
1370 return NULL;
1371}
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1372
1373/* init/cleanup.. if DMM is used, we need to set some stuff up.. */
1374void omap_gem_init(struct drm_device *dev)
1375{
a6a91827 1376 struct omap_drm_private *priv = dev->dev_private;
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1377 const enum tiler_fmt fmts[] = {
1378 TILFMT_8BIT, TILFMT_16BIT, TILFMT_32BIT
1379 };
5c137797 1380 int i, j;
f7f9f453 1381
5c137797 1382 if (!dmm_is_initialized()) {
f7f9f453 1383 /* DMM only supported on OMAP4 and later, so this isn't fatal */
5c137797 1384 dev_warn(dev->dev, "DMM not available, disable DMM support\n");
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1385 return;
1386 }
1387
1388 usergart = kzalloc(3 * sizeof(*usergart), GFP_KERNEL);
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1389 if (!usergart) {
1390 dev_warn(dev->dev, "could not allocate usergart\n");
1391 return;
1392 }
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1393
1394 /* reserve 4k aligned/wide regions for userspace mappings: */
1395 for (i = 0; i < ARRAY_SIZE(fmts); i++) {
1396 uint16_t h = 1, w = PAGE_SIZE >> i;
1397 tiler_align(fmts[i], &w, &h);
1398 /* note: since each region is 1 4kb page wide, and minimum
1399 * number of rows, the height ends up being the same as the
1400 * # of pages in the region
1401 */
1402 usergart[i].height = h;
1403 usergart[i].height_shift = ilog2(h);
1404 usergart[i].stride_pfn = tiler_stride(fmts[i]) >> PAGE_SHIFT;
1405 usergart[i].slot_shift = ilog2((PAGE_SIZE / h) >> i);
1406 for (j = 0; j < NUM_USERGART_ENTRIES; j++) {
1407 struct usergart_entry *entry = &usergart[i].entry[j];
1408 struct tiler_block *block =
1409 tiler_reserve_2d(fmts[i], w, h,
1410 PAGE_SIZE);
1411 if (IS_ERR(block)) {
1412 dev_err(dev->dev,
1413 "reserve failed: %d, %d, %ld\n",
1414 i, j, PTR_ERR(block));
1415 return;
1416 }
1417 entry->paddr = tiler_ssptr(block);
1418 entry->block = block;
1419
1420 DBG("%d:%d: %dx%d: paddr=%08x stride=%d", i, j, w, h,
1421 entry->paddr,
1422 usergart[i].stride_pfn << PAGE_SHIFT);
1423 }
1424 }
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1425
1426 priv->has_dmm = true;
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1427}
1428
1429void omap_gem_deinit(struct drm_device *dev)
1430{
1431 /* I believe we can rely on there being no more outstanding GEM
1432 * objects which could depend on usergart/dmm at this point.
1433 */
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1434 kfree(usergart);
1435}