2 * Copyright (c) 2005, 2006, 2007, 2008 Mellanox Technologies. All rights reserved.
3 * Copyright (c) 2006, 2007 Cisco Systems, Inc. All rights reserved.
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30 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
34 #include <linux/errno.h>
36 #include <linux/scatterlist.h>
37 #include <linux/slab.h>
39 #include <linux/mlx4/cmd.h>
46 * We allocate in as big chunks as we can, up to a maximum of 256 KB
50 MLX4_ICM_ALLOC_SIZE = 1 << 18,
51 MLX4_TABLE_CHUNK_SIZE = 1 << 18
54 static void mlx4_free_icm_pages(struct mlx4_dev *dev, struct mlx4_icm_chunk *chunk)
59 pci_unmap_sg(dev->pdev, chunk->mem, chunk->npages,
60 PCI_DMA_BIDIRECTIONAL);
62 for (i = 0; i < chunk->npages; ++i)
63 __free_pages(sg_page(&chunk->mem[i]),
64 get_order(chunk->mem[i].length));
67 static void mlx4_free_icm_coherent(struct mlx4_dev *dev, struct mlx4_icm_chunk *chunk)
71 for (i = 0; i < chunk->npages; ++i)
72 dma_free_coherent(&dev->pdev->dev, chunk->mem[i].length,
73 lowmem_page_address(sg_page(&chunk->mem[i])),
74 sg_dma_address(&chunk->mem[i]));
77 void mlx4_free_icm(struct mlx4_dev *dev, struct mlx4_icm *icm, int coherent)
79 struct mlx4_icm_chunk *chunk, *tmp;
84 list_for_each_entry_safe(chunk, tmp, &icm->chunk_list, list) {
86 mlx4_free_icm_coherent(dev, chunk);
88 mlx4_free_icm_pages(dev, chunk);
96 static int mlx4_alloc_icm_pages(struct scatterlist *mem, int order, gfp_t gfp_mask)
100 page = alloc_pages(gfp_mask, order);
104 sg_set_page(mem, page, PAGE_SIZE << order, 0);
108 static int mlx4_alloc_icm_coherent(struct device *dev, struct scatterlist *mem,
109 int order, gfp_t gfp_mask)
111 void *buf = dma_alloc_coherent(dev, PAGE_SIZE << order,
112 &sg_dma_address(mem), gfp_mask);
116 sg_set_buf(mem, buf, PAGE_SIZE << order);
118 sg_dma_len(mem) = PAGE_SIZE << order;
122 struct mlx4_icm *mlx4_alloc_icm(struct mlx4_dev *dev, int npages,
123 gfp_t gfp_mask, int coherent)
125 struct mlx4_icm *icm;
126 struct mlx4_icm_chunk *chunk = NULL;
130 /* We use sg_set_buf for coherent allocs, which assumes low memory */
131 BUG_ON(coherent && (gfp_mask & __GFP_HIGHMEM));
133 icm = kmalloc(sizeof *icm, gfp_mask & ~(__GFP_HIGHMEM | __GFP_NOWARN));
138 INIT_LIST_HEAD(&icm->chunk_list);
140 cur_order = get_order(MLX4_ICM_ALLOC_SIZE);
144 chunk = kmalloc(sizeof *chunk,
145 gfp_mask & ~(__GFP_HIGHMEM | __GFP_NOWARN));
149 sg_init_table(chunk->mem, MLX4_ICM_CHUNK_LEN);
152 list_add_tail(&chunk->list, &icm->chunk_list);
155 while (1 << cur_order > npages)
159 ret = mlx4_alloc_icm_coherent(&dev->pdev->dev,
160 &chunk->mem[chunk->npages],
161 cur_order, gfp_mask);
163 ret = mlx4_alloc_icm_pages(&chunk->mem[chunk->npages],
164 cur_order, gfp_mask);
177 else if (chunk->npages == MLX4_ICM_CHUNK_LEN) {
178 chunk->nsg = pci_map_sg(dev->pdev, chunk->mem,
180 PCI_DMA_BIDIRECTIONAL);
186 if (chunk->npages == MLX4_ICM_CHUNK_LEN)
189 npages -= 1 << cur_order;
192 if (!coherent && chunk) {
193 chunk->nsg = pci_map_sg(dev->pdev, chunk->mem,
195 PCI_DMA_BIDIRECTIONAL);
204 mlx4_free_icm(dev, icm, coherent);
208 static int mlx4_MAP_ICM(struct mlx4_dev *dev, struct mlx4_icm *icm, u64 virt)
210 return mlx4_map_cmd(dev, MLX4_CMD_MAP_ICM, icm, virt);
213 static int mlx4_UNMAP_ICM(struct mlx4_dev *dev, u64 virt, u32 page_count)
215 return mlx4_cmd(dev, virt, page_count, 0, MLX4_CMD_UNMAP_ICM,
216 MLX4_CMD_TIME_CLASS_B, MLX4_CMD_NATIVE);
219 int mlx4_MAP_ICM_AUX(struct mlx4_dev *dev, struct mlx4_icm *icm)
221 return mlx4_map_cmd(dev, MLX4_CMD_MAP_ICM_AUX, icm, -1);
224 int mlx4_UNMAP_ICM_AUX(struct mlx4_dev *dev)
226 return mlx4_cmd(dev, 0, 0, 0, MLX4_CMD_UNMAP_ICM_AUX,
227 MLX4_CMD_TIME_CLASS_B, MLX4_CMD_NATIVE);
230 int mlx4_table_get(struct mlx4_dev *dev, struct mlx4_icm_table *table, int obj)
232 int i = (obj & (table->num_obj - 1)) / (MLX4_TABLE_CHUNK_SIZE / table->obj_size);
235 mutex_lock(&table->mutex);
238 ++table->icm[i]->refcount;
242 table->icm[i] = mlx4_alloc_icm(dev, MLX4_TABLE_CHUNK_SIZE >> PAGE_SHIFT,
243 (table->lowmem ? GFP_KERNEL : GFP_HIGHUSER) |
244 __GFP_NOWARN, table->coherent);
245 if (!table->icm[i]) {
250 if (mlx4_MAP_ICM(dev, table->icm[i], table->virt +
251 (u64) i * MLX4_TABLE_CHUNK_SIZE)) {
252 mlx4_free_icm(dev, table->icm[i], table->coherent);
253 table->icm[i] = NULL;
258 ++table->icm[i]->refcount;
261 mutex_unlock(&table->mutex);
265 void mlx4_table_put(struct mlx4_dev *dev, struct mlx4_icm_table *table, int obj)
269 i = (obj & (table->num_obj - 1)) / (MLX4_TABLE_CHUNK_SIZE / table->obj_size);
271 mutex_lock(&table->mutex);
273 if (--table->icm[i]->refcount == 0) {
274 mlx4_UNMAP_ICM(dev, table->virt + i * MLX4_TABLE_CHUNK_SIZE,
275 MLX4_TABLE_CHUNK_SIZE / MLX4_ICM_PAGE_SIZE);
276 mlx4_free_icm(dev, table->icm[i], table->coherent);
277 table->icm[i] = NULL;
280 mutex_unlock(&table->mutex);
283 void *mlx4_table_find(struct mlx4_icm_table *table, int obj, dma_addr_t *dma_handle)
285 int idx, offset, dma_offset, i;
286 struct mlx4_icm_chunk *chunk;
287 struct mlx4_icm *icm;
288 struct page *page = NULL;
293 mutex_lock(&table->mutex);
295 idx = (obj & (table->num_obj - 1)) * table->obj_size;
296 icm = table->icm[idx / MLX4_TABLE_CHUNK_SIZE];
297 dma_offset = offset = idx % MLX4_TABLE_CHUNK_SIZE;
302 list_for_each_entry(chunk, &icm->chunk_list, list) {
303 for (i = 0; i < chunk->npages; ++i) {
304 if (dma_handle && dma_offset >= 0) {
305 if (sg_dma_len(&chunk->mem[i]) > dma_offset)
306 *dma_handle = sg_dma_address(&chunk->mem[i]) +
308 dma_offset -= sg_dma_len(&chunk->mem[i]);
311 * DMA mapping can merge pages but not split them,
312 * so if we found the page, dma_handle has already
315 if (chunk->mem[i].length > offset) {
316 page = sg_page(&chunk->mem[i]);
319 offset -= chunk->mem[i].length;
324 mutex_unlock(&table->mutex);
325 return page ? lowmem_page_address(page) + offset : NULL;
328 int mlx4_table_get_range(struct mlx4_dev *dev, struct mlx4_icm_table *table,
331 int inc = MLX4_TABLE_CHUNK_SIZE / table->obj_size;
334 for (i = start; i <= end; i += inc) {
335 err = mlx4_table_get(dev, table, i);
345 mlx4_table_put(dev, table, i);
351 void mlx4_table_put_range(struct mlx4_dev *dev, struct mlx4_icm_table *table,
356 for (i = start; i <= end; i += MLX4_TABLE_CHUNK_SIZE / table->obj_size)
357 mlx4_table_put(dev, table, i);
360 int mlx4_init_icm_table(struct mlx4_dev *dev, struct mlx4_icm_table *table,
361 u64 virt, int obj_size, u32 nobj, int reserved,
362 int use_lowmem, int use_coherent)
370 obj_per_chunk = MLX4_TABLE_CHUNK_SIZE / obj_size;
371 num_icm = (nobj + obj_per_chunk - 1) / obj_per_chunk;
373 table->icm = kcalloc(num_icm, sizeof *table->icm, GFP_KERNEL);
377 table->num_icm = num_icm;
378 table->num_obj = nobj;
379 table->obj_size = obj_size;
380 table->lowmem = use_lowmem;
381 table->coherent = use_coherent;
382 mutex_init(&table->mutex);
384 size = (u64) nobj * obj_size;
385 for (i = 0; i * MLX4_TABLE_CHUNK_SIZE < reserved * obj_size; ++i) {
386 chunk_size = MLX4_TABLE_CHUNK_SIZE;
387 if ((i + 1) * MLX4_TABLE_CHUNK_SIZE > size)
388 chunk_size = PAGE_ALIGN(size -
389 i * MLX4_TABLE_CHUNK_SIZE);
391 table->icm[i] = mlx4_alloc_icm(dev, chunk_size >> PAGE_SHIFT,
392 (use_lowmem ? GFP_KERNEL : GFP_HIGHUSER) |
393 __GFP_NOWARN, use_coherent);
396 if (mlx4_MAP_ICM(dev, table->icm[i], virt + i * MLX4_TABLE_CHUNK_SIZE)) {
397 mlx4_free_icm(dev, table->icm[i], use_coherent);
398 table->icm[i] = NULL;
403 * Add a reference to this ICM chunk so that it never
404 * gets freed (since it contains reserved firmware objects).
406 ++table->icm[i]->refcount;
412 for (i = 0; i < num_icm; ++i)
414 mlx4_UNMAP_ICM(dev, virt + i * MLX4_TABLE_CHUNK_SIZE,
415 MLX4_TABLE_CHUNK_SIZE / MLX4_ICM_PAGE_SIZE);
416 mlx4_free_icm(dev, table->icm[i], use_coherent);
424 void mlx4_cleanup_icm_table(struct mlx4_dev *dev, struct mlx4_icm_table *table)
428 for (i = 0; i < table->num_icm; ++i)
430 mlx4_UNMAP_ICM(dev, table->virt + i * MLX4_TABLE_CHUNK_SIZE,
431 MLX4_TABLE_CHUNK_SIZE / MLX4_ICM_PAGE_SIZE);
432 mlx4_free_icm(dev, table->icm[i], table->coherent);