dma-helpers.c 7.0 KB

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  1. /*
  2. * DMA helper functions
  3. *
  4. * Copyright (c) 2009 Red Hat
  5. *
  6. * This work is licensed under the terms of the GNU General Public License
  7. * (GNU GPL), version 2 or later.
  8. */
  9. #include "sysemu/dma.h"
  10. #include "trace.h"
  11. #include "qemu/range.h"
  12. #include "qemu/thread.h"
  13. #include "qemu/main-loop.h"
  14. /* #define DEBUG_IOMMU */
  15. int dma_memory_set(AddressSpace *as, dma_addr_t addr, uint8_t c, dma_addr_t len)
  16. {
  17. dma_barrier(as, DMA_DIRECTION_FROM_DEVICE);
  18. #define FILLBUF_SIZE 512
  19. uint8_t fillbuf[FILLBUF_SIZE];
  20. int l;
  21. bool error = false;
  22. memset(fillbuf, c, FILLBUF_SIZE);
  23. while (len > 0) {
  24. l = len < FILLBUF_SIZE ? len : FILLBUF_SIZE;
  25. error |= address_space_rw(as, addr, fillbuf, l, true);
  26. len -= l;
  27. addr += l;
  28. }
  29. return error;
  30. }
  31. void qemu_sglist_init(QEMUSGList *qsg, DeviceState *dev, int alloc_hint,
  32. AddressSpace *as)
  33. {
  34. qsg->sg = g_malloc(alloc_hint * sizeof(ScatterGatherEntry));
  35. qsg->nsg = 0;
  36. qsg->nalloc = alloc_hint;
  37. qsg->size = 0;
  38. qsg->as = as;
  39. qsg->dev = dev;
  40. object_ref(OBJECT(dev));
  41. }
  42. void qemu_sglist_add(QEMUSGList *qsg, dma_addr_t base, dma_addr_t len)
  43. {
  44. if (qsg->nsg == qsg->nalloc) {
  45. qsg->nalloc = 2 * qsg->nalloc + 1;
  46. qsg->sg = g_realloc(qsg->sg, qsg->nalloc * sizeof(ScatterGatherEntry));
  47. }
  48. qsg->sg[qsg->nsg].base = base;
  49. qsg->sg[qsg->nsg].len = len;
  50. qsg->size += len;
  51. ++qsg->nsg;
  52. }
  53. void qemu_sglist_destroy(QEMUSGList *qsg)
  54. {
  55. object_unref(OBJECT(qsg->dev));
  56. g_free(qsg->sg);
  57. memset(qsg, 0, sizeof(*qsg));
  58. }
  59. typedef struct {
  60. BlockDriverAIOCB common;
  61. BlockDriverState *bs;
  62. BlockDriverAIOCB *acb;
  63. QEMUSGList *sg;
  64. uint64_t sector_num;
  65. DMADirection dir;
  66. bool in_cancel;
  67. int sg_cur_index;
  68. dma_addr_t sg_cur_byte;
  69. QEMUIOVector iov;
  70. QEMUBH *bh;
  71. DMAIOFunc *io_func;
  72. } DMAAIOCB;
  73. static void dma_bdrv_cb(void *opaque, int ret);
  74. static void reschedule_dma(void *opaque)
  75. {
  76. DMAAIOCB *dbs = (DMAAIOCB *)opaque;
  77. qemu_bh_delete(dbs->bh);
  78. dbs->bh = NULL;
  79. dma_bdrv_cb(dbs, 0);
  80. }
  81. static void continue_after_map_failure(void *opaque)
  82. {
  83. DMAAIOCB *dbs = (DMAAIOCB *)opaque;
  84. dbs->bh = qemu_bh_new(reschedule_dma, dbs);
  85. qemu_bh_schedule(dbs->bh);
  86. }
  87. static void dma_bdrv_unmap(DMAAIOCB *dbs)
  88. {
  89. int i;
  90. for (i = 0; i < dbs->iov.niov; ++i) {
  91. dma_memory_unmap(dbs->sg->as, dbs->iov.iov[i].iov_base,
  92. dbs->iov.iov[i].iov_len, dbs->dir,
  93. dbs->iov.iov[i].iov_len);
  94. }
  95. qemu_iovec_reset(&dbs->iov);
  96. }
  97. static void dma_complete(DMAAIOCB *dbs, int ret)
  98. {
  99. trace_dma_complete(dbs, ret, dbs->common.cb);
  100. dma_bdrv_unmap(dbs);
  101. if (dbs->common.cb) {
  102. dbs->common.cb(dbs->common.opaque, ret);
  103. }
  104. qemu_iovec_destroy(&dbs->iov);
  105. if (dbs->bh) {
  106. qemu_bh_delete(dbs->bh);
  107. dbs->bh = NULL;
  108. }
  109. if (!dbs->in_cancel) {
  110. /* Requests may complete while dma_aio_cancel is in progress. In
  111. * this case, the AIOCB should not be released because it is still
  112. * referenced by dma_aio_cancel. */
  113. qemu_aio_release(dbs);
  114. }
  115. }
  116. static void dma_bdrv_cb(void *opaque, int ret)
  117. {
  118. DMAAIOCB *dbs = (DMAAIOCB *)opaque;
  119. dma_addr_t cur_addr, cur_len;
  120. void *mem;
  121. trace_dma_bdrv_cb(dbs, ret);
  122. dbs->acb = NULL;
  123. dbs->sector_num += dbs->iov.size / 512;
  124. dma_bdrv_unmap(dbs);
  125. if (dbs->sg_cur_index == dbs->sg->nsg || ret < 0) {
  126. dma_complete(dbs, ret);
  127. return;
  128. }
  129. while (dbs->sg_cur_index < dbs->sg->nsg) {
  130. cur_addr = dbs->sg->sg[dbs->sg_cur_index].base + dbs->sg_cur_byte;
  131. cur_len = dbs->sg->sg[dbs->sg_cur_index].len - dbs->sg_cur_byte;
  132. mem = dma_memory_map(dbs->sg->as, cur_addr, &cur_len, dbs->dir);
  133. if (!mem)
  134. break;
  135. qemu_iovec_add(&dbs->iov, mem, cur_len);
  136. dbs->sg_cur_byte += cur_len;
  137. if (dbs->sg_cur_byte == dbs->sg->sg[dbs->sg_cur_index].len) {
  138. dbs->sg_cur_byte = 0;
  139. ++dbs->sg_cur_index;
  140. }
  141. }
  142. if (dbs->iov.size == 0) {
  143. trace_dma_map_wait(dbs);
  144. cpu_register_map_client(dbs, continue_after_map_failure);
  145. return;
  146. }
  147. dbs->acb = dbs->io_func(dbs->bs, dbs->sector_num, &dbs->iov,
  148. dbs->iov.size / 512, dma_bdrv_cb, dbs);
  149. assert(dbs->acb);
  150. }
  151. static void dma_aio_cancel(BlockDriverAIOCB *acb)
  152. {
  153. DMAAIOCB *dbs = container_of(acb, DMAAIOCB, common);
  154. trace_dma_aio_cancel(dbs);
  155. if (dbs->acb) {
  156. BlockDriverAIOCB *acb = dbs->acb;
  157. dbs->acb = NULL;
  158. dbs->in_cancel = true;
  159. bdrv_aio_cancel(acb);
  160. dbs->in_cancel = false;
  161. }
  162. dbs->common.cb = NULL;
  163. dma_complete(dbs, 0);
  164. }
  165. static const AIOCBInfo dma_aiocb_info = {
  166. .aiocb_size = sizeof(DMAAIOCB),
  167. .cancel = dma_aio_cancel,
  168. };
  169. BlockDriverAIOCB *dma_bdrv_io(
  170. BlockDriverState *bs, QEMUSGList *sg, uint64_t sector_num,
  171. DMAIOFunc *io_func, BlockDriverCompletionFunc *cb,
  172. void *opaque, DMADirection dir)
  173. {
  174. DMAAIOCB *dbs = qemu_aio_get(&dma_aiocb_info, bs, cb, opaque);
  175. trace_dma_bdrv_io(dbs, bs, sector_num, (dir == DMA_DIRECTION_TO_DEVICE));
  176. dbs->acb = NULL;
  177. dbs->bs = bs;
  178. dbs->sg = sg;
  179. dbs->sector_num = sector_num;
  180. dbs->sg_cur_index = 0;
  181. dbs->sg_cur_byte = 0;
  182. dbs->dir = dir;
  183. dbs->in_cancel = false;
  184. dbs->io_func = io_func;
  185. dbs->bh = NULL;
  186. qemu_iovec_init(&dbs->iov, sg->nsg);
  187. dma_bdrv_cb(dbs, 0);
  188. return &dbs->common;
  189. }
  190. BlockDriverAIOCB *dma_bdrv_read(BlockDriverState *bs,
  191. QEMUSGList *sg, uint64_t sector,
  192. void (*cb)(void *opaque, int ret), void *opaque)
  193. {
  194. return dma_bdrv_io(bs, sg, sector, bdrv_aio_readv, cb, opaque,
  195. DMA_DIRECTION_FROM_DEVICE);
  196. }
  197. BlockDriverAIOCB *dma_bdrv_write(BlockDriverState *bs,
  198. QEMUSGList *sg, uint64_t sector,
  199. void (*cb)(void *opaque, int ret), void *opaque)
  200. {
  201. return dma_bdrv_io(bs, sg, sector, bdrv_aio_writev, cb, opaque,
  202. DMA_DIRECTION_TO_DEVICE);
  203. }
  204. static uint64_t dma_buf_rw(uint8_t *ptr, int32_t len, QEMUSGList *sg,
  205. DMADirection dir)
  206. {
  207. uint64_t resid;
  208. int sg_cur_index;
  209. resid = sg->size;
  210. sg_cur_index = 0;
  211. len = MIN(len, resid);
  212. while (len > 0) {
  213. ScatterGatherEntry entry = sg->sg[sg_cur_index++];
  214. int32_t xfer = MIN(len, entry.len);
  215. dma_memory_rw(sg->as, entry.base, ptr, xfer, dir);
  216. ptr += xfer;
  217. len -= xfer;
  218. resid -= xfer;
  219. }
  220. return resid;
  221. }
  222. uint64_t dma_buf_read(uint8_t *ptr, int32_t len, QEMUSGList *sg)
  223. {
  224. return dma_buf_rw(ptr, len, sg, DMA_DIRECTION_FROM_DEVICE);
  225. }
  226. uint64_t dma_buf_write(uint8_t *ptr, int32_t len, QEMUSGList *sg)
  227. {
  228. return dma_buf_rw(ptr, len, sg, DMA_DIRECTION_TO_DEVICE);
  229. }
  230. void dma_acct_start(BlockDriverState *bs, BlockAcctCookie *cookie,
  231. QEMUSGList *sg, enum BlockAcctType type)
  232. {
  233. bdrv_acct_start(bs, cookie, sg->size, type);
  234. }