16182a094SMatthew Wilcox /* 26182a094SMatthew Wilcox * DMA Pool allocator 36182a094SMatthew Wilcox * 46182a094SMatthew Wilcox * Copyright 2001 David Brownell 56182a094SMatthew Wilcox * Copyright 2007 Intel Corporation 66182a094SMatthew Wilcox * Author: Matthew Wilcox <willy@linux.intel.com> 76182a094SMatthew Wilcox * 86182a094SMatthew Wilcox * This software may be redistributed and/or modified under the terms of 96182a094SMatthew Wilcox * the GNU General Public License ("GPL") version 2 as published by the 106182a094SMatthew Wilcox * Free Software Foundation. 116182a094SMatthew Wilcox * 126182a094SMatthew Wilcox * This allocator returns small blocks of a given size which are DMA-able by 136182a094SMatthew Wilcox * the given device. It uses the dma_alloc_coherent page allocator to get 146182a094SMatthew Wilcox * new pages, then splits them up into blocks of the required size. 156182a094SMatthew Wilcox * Many older drivers still have their own code to do this. 166182a094SMatthew Wilcox * 176182a094SMatthew Wilcox * The current design of this allocator is fairly simple. The pool is 186182a094SMatthew Wilcox * represented by the 'struct dma_pool' which keeps a doubly-linked list of 196182a094SMatthew Wilcox * allocated pages. Each page in the page_list is split into blocks of at 20a35a3455SMatthew Wilcox * least 'size' bytes. Free blocks are tracked in an unsorted singly-linked 21a35a3455SMatthew Wilcox * list of free blocks within the page. Used blocks aren't tracked, but we 22a35a3455SMatthew Wilcox * keep a count of how many are currently allocated from each page. 236182a094SMatthew Wilcox */ 24141e9d4bSMatthew Wilcox 25141e9d4bSMatthew Wilcox #include <linux/device.h> 26141e9d4bSMatthew Wilcox #include <linux/dma-mapping.h> 27141e9d4bSMatthew Wilcox #include <linux/dmapool.h> 286182a094SMatthew Wilcox #include <linux/kernel.h> 296182a094SMatthew Wilcox #include <linux/list.h> 30141e9d4bSMatthew Wilcox #include <linux/module.h> 316182a094SMatthew Wilcox #include <linux/mutex.h> 32141e9d4bSMatthew Wilcox #include <linux/poison.h> 33141e9d4bSMatthew Wilcox #include <linux/sched.h> 346182a094SMatthew Wilcox #include <linux/slab.h> 356182a094SMatthew Wilcox #include <linux/spinlock.h> 366182a094SMatthew Wilcox #include <linux/string.h> 376182a094SMatthew Wilcox #include <linux/types.h> 386182a094SMatthew Wilcox #include <linux/wait.h> 39141e9d4bSMatthew Wilcox 40141e9d4bSMatthew Wilcox struct dma_pool { /* the pool */ 41141e9d4bSMatthew Wilcox struct list_head page_list; 42141e9d4bSMatthew Wilcox spinlock_t lock; 43141e9d4bSMatthew Wilcox size_t size; 44141e9d4bSMatthew Wilcox struct device *dev; 45141e9d4bSMatthew Wilcox size_t allocation; 46*e34f44b3SMatthew Wilcox size_t boundary; 47141e9d4bSMatthew Wilcox char name[32]; 48141e9d4bSMatthew Wilcox wait_queue_head_t waitq; 49141e9d4bSMatthew Wilcox struct list_head pools; 50141e9d4bSMatthew Wilcox }; 51141e9d4bSMatthew Wilcox 52141e9d4bSMatthew Wilcox struct dma_page { /* cacheable header for 'allocation' bytes */ 53141e9d4bSMatthew Wilcox struct list_head page_list; 54141e9d4bSMatthew Wilcox void *vaddr; 55141e9d4bSMatthew Wilcox dma_addr_t dma; 56a35a3455SMatthew Wilcox unsigned int in_use; 57a35a3455SMatthew Wilcox unsigned int offset; 58141e9d4bSMatthew Wilcox }; 59141e9d4bSMatthew Wilcox 60141e9d4bSMatthew Wilcox #define POOL_TIMEOUT_JIFFIES ((100 /* msec */ * HZ) / 1000) 61141e9d4bSMatthew Wilcox 62141e9d4bSMatthew Wilcox static DEFINE_MUTEX(pools_lock); 63141e9d4bSMatthew Wilcox 64141e9d4bSMatthew Wilcox static ssize_t 65141e9d4bSMatthew Wilcox show_pools(struct device *dev, struct device_attribute *attr, char *buf) 66141e9d4bSMatthew Wilcox { 67141e9d4bSMatthew Wilcox unsigned temp; 68141e9d4bSMatthew Wilcox unsigned size; 69141e9d4bSMatthew Wilcox char *next; 70141e9d4bSMatthew Wilcox struct dma_page *page; 71141e9d4bSMatthew Wilcox struct dma_pool *pool; 72141e9d4bSMatthew Wilcox 73141e9d4bSMatthew Wilcox next = buf; 74141e9d4bSMatthew Wilcox size = PAGE_SIZE; 75141e9d4bSMatthew Wilcox 76141e9d4bSMatthew Wilcox temp = scnprintf(next, size, "poolinfo - 0.1\n"); 77141e9d4bSMatthew Wilcox size -= temp; 78141e9d4bSMatthew Wilcox next += temp; 79141e9d4bSMatthew Wilcox 80141e9d4bSMatthew Wilcox mutex_lock(&pools_lock); 81141e9d4bSMatthew Wilcox list_for_each_entry(pool, &dev->dma_pools, pools) { 82141e9d4bSMatthew Wilcox unsigned pages = 0; 83141e9d4bSMatthew Wilcox unsigned blocks = 0; 84141e9d4bSMatthew Wilcox 85141e9d4bSMatthew Wilcox list_for_each_entry(page, &pool->page_list, page_list) { 86141e9d4bSMatthew Wilcox pages++; 87141e9d4bSMatthew Wilcox blocks += page->in_use; 88141e9d4bSMatthew Wilcox } 89141e9d4bSMatthew Wilcox 90141e9d4bSMatthew Wilcox /* per-pool info, no real statistics yet */ 91141e9d4bSMatthew Wilcox temp = scnprintf(next, size, "%-16s %4u %4Zu %4Zu %2u\n", 92a35a3455SMatthew Wilcox pool->name, blocks, 93a35a3455SMatthew Wilcox pages * (pool->allocation / pool->size), 94141e9d4bSMatthew Wilcox pool->size, pages); 95141e9d4bSMatthew Wilcox size -= temp; 96141e9d4bSMatthew Wilcox next += temp; 97141e9d4bSMatthew Wilcox } 98141e9d4bSMatthew Wilcox mutex_unlock(&pools_lock); 99141e9d4bSMatthew Wilcox 100141e9d4bSMatthew Wilcox return PAGE_SIZE - size; 101141e9d4bSMatthew Wilcox } 102e87aa773SMatthew Wilcox 103141e9d4bSMatthew Wilcox static DEVICE_ATTR(pools, S_IRUGO, show_pools, NULL); 104141e9d4bSMatthew Wilcox 105141e9d4bSMatthew Wilcox /** 106141e9d4bSMatthew Wilcox * dma_pool_create - Creates a pool of consistent memory blocks, for dma. 107141e9d4bSMatthew Wilcox * @name: name of pool, for diagnostics 108141e9d4bSMatthew Wilcox * @dev: device that will be doing the DMA 109141e9d4bSMatthew Wilcox * @size: size of the blocks in this pool. 110141e9d4bSMatthew Wilcox * @align: alignment requirement for blocks; must be a power of two 111*e34f44b3SMatthew Wilcox * @boundary: returned blocks won't cross this power of two boundary 112141e9d4bSMatthew Wilcox * Context: !in_interrupt() 113141e9d4bSMatthew Wilcox * 114141e9d4bSMatthew Wilcox * Returns a dma allocation pool with the requested characteristics, or 115141e9d4bSMatthew Wilcox * null if one can't be created. Given one of these pools, dma_pool_alloc() 116141e9d4bSMatthew Wilcox * may be used to allocate memory. Such memory will all have "consistent" 117141e9d4bSMatthew Wilcox * DMA mappings, accessible by the device and its driver without using 118141e9d4bSMatthew Wilcox * cache flushing primitives. The actual size of blocks allocated may be 119141e9d4bSMatthew Wilcox * larger than requested because of alignment. 120141e9d4bSMatthew Wilcox * 121*e34f44b3SMatthew Wilcox * If @boundary is nonzero, objects returned from dma_pool_alloc() won't 122141e9d4bSMatthew Wilcox * cross that size boundary. This is useful for devices which have 123141e9d4bSMatthew Wilcox * addressing restrictions on individual DMA transfers, such as not crossing 124141e9d4bSMatthew Wilcox * boundaries of 4KBytes. 125141e9d4bSMatthew Wilcox */ 126e87aa773SMatthew Wilcox struct dma_pool *dma_pool_create(const char *name, struct device *dev, 127*e34f44b3SMatthew Wilcox size_t size, size_t align, size_t boundary) 128141e9d4bSMatthew Wilcox { 129141e9d4bSMatthew Wilcox struct dma_pool *retval; 130*e34f44b3SMatthew Wilcox size_t allocation; 131141e9d4bSMatthew Wilcox 132399154beSMatthew Wilcox if (align == 0) { 133141e9d4bSMatthew Wilcox align = 1; 134399154beSMatthew Wilcox } else if (align & (align - 1)) { 135399154beSMatthew Wilcox return NULL; 136399154beSMatthew Wilcox } 137399154beSMatthew Wilcox 138a35a3455SMatthew Wilcox if (size == 0) { 139141e9d4bSMatthew Wilcox return NULL; 140a35a3455SMatthew Wilcox } else if (size < 4) { 141a35a3455SMatthew Wilcox size = 4; 142a35a3455SMatthew Wilcox } 143399154beSMatthew Wilcox 144399154beSMatthew Wilcox if ((size % align) != 0) 145399154beSMatthew Wilcox size = ALIGN(size, align); 146141e9d4bSMatthew Wilcox 147*e34f44b3SMatthew Wilcox allocation = max_t(size_t, size, PAGE_SIZE); 148141e9d4bSMatthew Wilcox 149*e34f44b3SMatthew Wilcox if (!boundary) { 150*e34f44b3SMatthew Wilcox boundary = allocation; 151*e34f44b3SMatthew Wilcox } else if ((boundary < size) || (boundary & (boundary - 1))) { 152*e34f44b3SMatthew Wilcox return NULL; 153*e34f44b3SMatthew Wilcox } 154*e34f44b3SMatthew Wilcox 155*e34f44b3SMatthew Wilcox retval = kmalloc_node(sizeof(*retval), GFP_KERNEL, dev_to_node(dev)); 156*e34f44b3SMatthew Wilcox if (!retval) 157141e9d4bSMatthew Wilcox return retval; 158141e9d4bSMatthew Wilcox 159*e34f44b3SMatthew Wilcox strlcpy(retval->name, name, sizeof(retval->name)); 160141e9d4bSMatthew Wilcox 161141e9d4bSMatthew Wilcox retval->dev = dev; 162141e9d4bSMatthew Wilcox 163141e9d4bSMatthew Wilcox INIT_LIST_HEAD(&retval->page_list); 164141e9d4bSMatthew Wilcox spin_lock_init(&retval->lock); 165141e9d4bSMatthew Wilcox retval->size = size; 166*e34f44b3SMatthew Wilcox retval->boundary = boundary; 167141e9d4bSMatthew Wilcox retval->allocation = allocation; 168141e9d4bSMatthew Wilcox init_waitqueue_head(&retval->waitq); 169141e9d4bSMatthew Wilcox 170141e9d4bSMatthew Wilcox if (dev) { 171141e9d4bSMatthew Wilcox int ret; 172141e9d4bSMatthew Wilcox 173141e9d4bSMatthew Wilcox mutex_lock(&pools_lock); 174141e9d4bSMatthew Wilcox if (list_empty(&dev->dma_pools)) 175141e9d4bSMatthew Wilcox ret = device_create_file(dev, &dev_attr_pools); 176141e9d4bSMatthew Wilcox else 177141e9d4bSMatthew Wilcox ret = 0; 178141e9d4bSMatthew Wilcox /* note: not currently insisting "name" be unique */ 179141e9d4bSMatthew Wilcox if (!ret) 180141e9d4bSMatthew Wilcox list_add(&retval->pools, &dev->dma_pools); 181141e9d4bSMatthew Wilcox else { 182141e9d4bSMatthew Wilcox kfree(retval); 183141e9d4bSMatthew Wilcox retval = NULL; 184141e9d4bSMatthew Wilcox } 185141e9d4bSMatthew Wilcox mutex_unlock(&pools_lock); 186141e9d4bSMatthew Wilcox } else 187141e9d4bSMatthew Wilcox INIT_LIST_HEAD(&retval->pools); 188141e9d4bSMatthew Wilcox 189141e9d4bSMatthew Wilcox return retval; 190141e9d4bSMatthew Wilcox } 191e87aa773SMatthew Wilcox EXPORT_SYMBOL(dma_pool_create); 192141e9d4bSMatthew Wilcox 193a35a3455SMatthew Wilcox static void pool_initialise_page(struct dma_pool *pool, struct dma_page *page) 194a35a3455SMatthew Wilcox { 195a35a3455SMatthew Wilcox unsigned int offset = 0; 196*e34f44b3SMatthew Wilcox unsigned int next_boundary = pool->boundary; 197a35a3455SMatthew Wilcox 198a35a3455SMatthew Wilcox do { 199a35a3455SMatthew Wilcox unsigned int next = offset + pool->size; 200*e34f44b3SMatthew Wilcox if (unlikely((next + pool->size) >= next_boundary)) { 201*e34f44b3SMatthew Wilcox next = next_boundary; 202*e34f44b3SMatthew Wilcox next_boundary += pool->boundary; 203*e34f44b3SMatthew Wilcox } 204a35a3455SMatthew Wilcox *(int *)(page->vaddr + offset) = next; 205a35a3455SMatthew Wilcox offset = next; 206a35a3455SMatthew Wilcox } while (offset < pool->allocation); 207a35a3455SMatthew Wilcox } 208a35a3455SMatthew Wilcox 209e87aa773SMatthew Wilcox static struct dma_page *pool_alloc_page(struct dma_pool *pool, gfp_t mem_flags) 210141e9d4bSMatthew Wilcox { 211141e9d4bSMatthew Wilcox struct dma_page *page; 212141e9d4bSMatthew Wilcox 213a35a3455SMatthew Wilcox page = kmalloc(sizeof(*page), mem_flags); 214141e9d4bSMatthew Wilcox if (!page) 215141e9d4bSMatthew Wilcox return NULL; 216a35a3455SMatthew Wilcox page->vaddr = dma_alloc_coherent(pool->dev, pool->allocation, 217e87aa773SMatthew Wilcox &page->dma, mem_flags); 218141e9d4bSMatthew Wilcox if (page->vaddr) { 219141e9d4bSMatthew Wilcox #ifdef CONFIG_DEBUG_SLAB 220141e9d4bSMatthew Wilcox memset(page->vaddr, POOL_POISON_FREED, pool->allocation); 221141e9d4bSMatthew Wilcox #endif 222a35a3455SMatthew Wilcox pool_initialise_page(pool, page); 223141e9d4bSMatthew Wilcox list_add(&page->page_list, &pool->page_list); 224141e9d4bSMatthew Wilcox page->in_use = 0; 225a35a3455SMatthew Wilcox page->offset = 0; 226141e9d4bSMatthew Wilcox } else { 227141e9d4bSMatthew Wilcox kfree(page); 228141e9d4bSMatthew Wilcox page = NULL; 229141e9d4bSMatthew Wilcox } 230141e9d4bSMatthew Wilcox return page; 231141e9d4bSMatthew Wilcox } 232141e9d4bSMatthew Wilcox 233a35a3455SMatthew Wilcox static inline int is_page_busy(struct dma_page *page) 234141e9d4bSMatthew Wilcox { 235a35a3455SMatthew Wilcox return page->in_use != 0; 236141e9d4bSMatthew Wilcox } 237141e9d4bSMatthew Wilcox 238e87aa773SMatthew Wilcox static void pool_free_page(struct dma_pool *pool, struct dma_page *page) 239141e9d4bSMatthew Wilcox { 240141e9d4bSMatthew Wilcox dma_addr_t dma = page->dma; 241141e9d4bSMatthew Wilcox 242141e9d4bSMatthew Wilcox #ifdef CONFIG_DEBUG_SLAB 243141e9d4bSMatthew Wilcox memset(page->vaddr, POOL_POISON_FREED, pool->allocation); 244141e9d4bSMatthew Wilcox #endif 245141e9d4bSMatthew Wilcox dma_free_coherent(pool->dev, pool->allocation, page->vaddr, dma); 246141e9d4bSMatthew Wilcox list_del(&page->page_list); 247141e9d4bSMatthew Wilcox kfree(page); 248141e9d4bSMatthew Wilcox } 249141e9d4bSMatthew Wilcox 250141e9d4bSMatthew Wilcox /** 251141e9d4bSMatthew Wilcox * dma_pool_destroy - destroys a pool of dma memory blocks. 252141e9d4bSMatthew Wilcox * @pool: dma pool that will be destroyed 253141e9d4bSMatthew Wilcox * Context: !in_interrupt() 254141e9d4bSMatthew Wilcox * 255141e9d4bSMatthew Wilcox * Caller guarantees that no more memory from the pool is in use, 256141e9d4bSMatthew Wilcox * and that nothing will try to use the pool after this call. 257141e9d4bSMatthew Wilcox */ 258e87aa773SMatthew Wilcox void dma_pool_destroy(struct dma_pool *pool) 259141e9d4bSMatthew Wilcox { 260141e9d4bSMatthew Wilcox mutex_lock(&pools_lock); 261141e9d4bSMatthew Wilcox list_del(&pool->pools); 262141e9d4bSMatthew Wilcox if (pool->dev && list_empty(&pool->dev->dma_pools)) 263141e9d4bSMatthew Wilcox device_remove_file(pool->dev, &dev_attr_pools); 264141e9d4bSMatthew Wilcox mutex_unlock(&pools_lock); 265141e9d4bSMatthew Wilcox 266141e9d4bSMatthew Wilcox while (!list_empty(&pool->page_list)) { 267141e9d4bSMatthew Wilcox struct dma_page *page; 268141e9d4bSMatthew Wilcox page = list_entry(pool->page_list.next, 269141e9d4bSMatthew Wilcox struct dma_page, page_list); 270a35a3455SMatthew Wilcox if (is_page_busy(page)) { 271141e9d4bSMatthew Wilcox if (pool->dev) 272e87aa773SMatthew Wilcox dev_err(pool->dev, 273e87aa773SMatthew Wilcox "dma_pool_destroy %s, %p busy\n", 274141e9d4bSMatthew Wilcox pool->name, page->vaddr); 275141e9d4bSMatthew Wilcox else 276e87aa773SMatthew Wilcox printk(KERN_ERR 277e87aa773SMatthew Wilcox "dma_pool_destroy %s, %p busy\n", 278141e9d4bSMatthew Wilcox pool->name, page->vaddr); 279141e9d4bSMatthew Wilcox /* leak the still-in-use consistent memory */ 280141e9d4bSMatthew Wilcox list_del(&page->page_list); 281141e9d4bSMatthew Wilcox kfree(page); 282141e9d4bSMatthew Wilcox } else 283141e9d4bSMatthew Wilcox pool_free_page(pool, page); 284141e9d4bSMatthew Wilcox } 285141e9d4bSMatthew Wilcox 286141e9d4bSMatthew Wilcox kfree(pool); 287141e9d4bSMatthew Wilcox } 288e87aa773SMatthew Wilcox EXPORT_SYMBOL(dma_pool_destroy); 289141e9d4bSMatthew Wilcox 290141e9d4bSMatthew Wilcox /** 291141e9d4bSMatthew Wilcox * dma_pool_alloc - get a block of consistent memory 292141e9d4bSMatthew Wilcox * @pool: dma pool that will produce the block 293141e9d4bSMatthew Wilcox * @mem_flags: GFP_* bitmask 294141e9d4bSMatthew Wilcox * @handle: pointer to dma address of block 295141e9d4bSMatthew Wilcox * 296141e9d4bSMatthew Wilcox * This returns the kernel virtual address of a currently unused block, 297141e9d4bSMatthew Wilcox * and reports its dma address through the handle. 2986182a094SMatthew Wilcox * If such a memory block can't be allocated, %NULL is returned. 299141e9d4bSMatthew Wilcox */ 300e87aa773SMatthew Wilcox void *dma_pool_alloc(struct dma_pool *pool, gfp_t mem_flags, 301e87aa773SMatthew Wilcox dma_addr_t *handle) 302141e9d4bSMatthew Wilcox { 303141e9d4bSMatthew Wilcox unsigned long flags; 304141e9d4bSMatthew Wilcox struct dma_page *page; 305141e9d4bSMatthew Wilcox size_t offset; 306141e9d4bSMatthew Wilcox void *retval; 307141e9d4bSMatthew Wilcox 308141e9d4bSMatthew Wilcox spin_lock_irqsave(&pool->lock, flags); 3092cae367eSMatthew Wilcox restart: 310141e9d4bSMatthew Wilcox list_for_each_entry(page, &pool->page_list, page_list) { 311a35a3455SMatthew Wilcox if (page->offset < pool->allocation) 312141e9d4bSMatthew Wilcox goto ready; 313141e9d4bSMatthew Wilcox } 314e87aa773SMatthew Wilcox page = pool_alloc_page(pool, GFP_ATOMIC); 315e87aa773SMatthew Wilcox if (!page) { 316141e9d4bSMatthew Wilcox if (mem_flags & __GFP_WAIT) { 317141e9d4bSMatthew Wilcox DECLARE_WAITQUEUE(wait, current); 318141e9d4bSMatthew Wilcox 319141e9d4bSMatthew Wilcox __set_current_state(TASK_INTERRUPTIBLE); 3202cae367eSMatthew Wilcox __add_wait_queue(&pool->waitq, &wait); 321141e9d4bSMatthew Wilcox spin_unlock_irqrestore(&pool->lock, flags); 322141e9d4bSMatthew Wilcox 323141e9d4bSMatthew Wilcox schedule_timeout(POOL_TIMEOUT_JIFFIES); 324141e9d4bSMatthew Wilcox 3252cae367eSMatthew Wilcox spin_lock_irqsave(&pool->lock, flags); 3262cae367eSMatthew Wilcox __remove_wait_queue(&pool->waitq, &wait); 327141e9d4bSMatthew Wilcox goto restart; 328141e9d4bSMatthew Wilcox } 329141e9d4bSMatthew Wilcox retval = NULL; 330141e9d4bSMatthew Wilcox goto done; 331141e9d4bSMatthew Wilcox } 332141e9d4bSMatthew Wilcox 333141e9d4bSMatthew Wilcox ready: 334141e9d4bSMatthew Wilcox page->in_use++; 335a35a3455SMatthew Wilcox offset = page->offset; 336a35a3455SMatthew Wilcox page->offset = *(int *)(page->vaddr + offset); 337141e9d4bSMatthew Wilcox retval = offset + page->vaddr; 338141e9d4bSMatthew Wilcox *handle = offset + page->dma; 339141e9d4bSMatthew Wilcox #ifdef CONFIG_DEBUG_SLAB 340141e9d4bSMatthew Wilcox memset(retval, POOL_POISON_ALLOCATED, pool->size); 341141e9d4bSMatthew Wilcox #endif 342141e9d4bSMatthew Wilcox done: 343141e9d4bSMatthew Wilcox spin_unlock_irqrestore(&pool->lock, flags); 344141e9d4bSMatthew Wilcox return retval; 345141e9d4bSMatthew Wilcox } 346e87aa773SMatthew Wilcox EXPORT_SYMBOL(dma_pool_alloc); 347141e9d4bSMatthew Wilcox 348e87aa773SMatthew Wilcox static struct dma_page *pool_find_page(struct dma_pool *pool, dma_addr_t dma) 349141e9d4bSMatthew Wilcox { 350141e9d4bSMatthew Wilcox unsigned long flags; 351141e9d4bSMatthew Wilcox struct dma_page *page; 352141e9d4bSMatthew Wilcox 353141e9d4bSMatthew Wilcox spin_lock_irqsave(&pool->lock, flags); 354141e9d4bSMatthew Wilcox list_for_each_entry(page, &pool->page_list, page_list) { 355141e9d4bSMatthew Wilcox if (dma < page->dma) 356141e9d4bSMatthew Wilcox continue; 357141e9d4bSMatthew Wilcox if (dma < (page->dma + pool->allocation)) 358141e9d4bSMatthew Wilcox goto done; 359141e9d4bSMatthew Wilcox } 360141e9d4bSMatthew Wilcox page = NULL; 361141e9d4bSMatthew Wilcox done: 362141e9d4bSMatthew Wilcox spin_unlock_irqrestore(&pool->lock, flags); 363141e9d4bSMatthew Wilcox return page; 364141e9d4bSMatthew Wilcox } 365141e9d4bSMatthew Wilcox 366141e9d4bSMatthew Wilcox /** 367141e9d4bSMatthew Wilcox * dma_pool_free - put block back into dma pool 368141e9d4bSMatthew Wilcox * @pool: the dma pool holding the block 369141e9d4bSMatthew Wilcox * @vaddr: virtual address of block 370141e9d4bSMatthew Wilcox * @dma: dma address of block 371141e9d4bSMatthew Wilcox * 372141e9d4bSMatthew Wilcox * Caller promises neither device nor driver will again touch this block 373141e9d4bSMatthew Wilcox * unless it is first re-allocated. 374141e9d4bSMatthew Wilcox */ 375e87aa773SMatthew Wilcox void dma_pool_free(struct dma_pool *pool, void *vaddr, dma_addr_t dma) 376141e9d4bSMatthew Wilcox { 377141e9d4bSMatthew Wilcox struct dma_page *page; 378141e9d4bSMatthew Wilcox unsigned long flags; 379a35a3455SMatthew Wilcox unsigned int offset; 380141e9d4bSMatthew Wilcox 381e87aa773SMatthew Wilcox page = pool_find_page(pool, dma); 382e87aa773SMatthew Wilcox if (!page) { 383141e9d4bSMatthew Wilcox if (pool->dev) 384e87aa773SMatthew Wilcox dev_err(pool->dev, 385e87aa773SMatthew Wilcox "dma_pool_free %s, %p/%lx (bad dma)\n", 386141e9d4bSMatthew Wilcox pool->name, vaddr, (unsigned long)dma); 387141e9d4bSMatthew Wilcox else 388141e9d4bSMatthew Wilcox printk(KERN_ERR "dma_pool_free %s, %p/%lx (bad dma)\n", 389141e9d4bSMatthew Wilcox pool->name, vaddr, (unsigned long)dma); 390141e9d4bSMatthew Wilcox return; 391141e9d4bSMatthew Wilcox } 392141e9d4bSMatthew Wilcox 393a35a3455SMatthew Wilcox offset = vaddr - page->vaddr; 394141e9d4bSMatthew Wilcox #ifdef CONFIG_DEBUG_SLAB 395a35a3455SMatthew Wilcox if ((dma - page->dma) != offset) { 396141e9d4bSMatthew Wilcox if (pool->dev) 397e87aa773SMatthew Wilcox dev_err(pool->dev, 398e87aa773SMatthew Wilcox "dma_pool_free %s, %p (bad vaddr)/%Lx\n", 399141e9d4bSMatthew Wilcox pool->name, vaddr, (unsigned long long)dma); 400141e9d4bSMatthew Wilcox else 401e87aa773SMatthew Wilcox printk(KERN_ERR 402e87aa773SMatthew Wilcox "dma_pool_free %s, %p (bad vaddr)/%Lx\n", 403141e9d4bSMatthew Wilcox pool->name, vaddr, (unsigned long long)dma); 404141e9d4bSMatthew Wilcox return; 405141e9d4bSMatthew Wilcox } 406a35a3455SMatthew Wilcox { 407a35a3455SMatthew Wilcox unsigned int chain = page->offset; 408a35a3455SMatthew Wilcox while (chain < pool->allocation) { 409a35a3455SMatthew Wilcox if (chain != offset) { 410a35a3455SMatthew Wilcox chain = *(int *)(page->vaddr + chain); 411a35a3455SMatthew Wilcox continue; 412a35a3455SMatthew Wilcox } 413141e9d4bSMatthew Wilcox if (pool->dev) 414a35a3455SMatthew Wilcox dev_err(pool->dev, "dma_pool_free %s, dma %Lx " 415a35a3455SMatthew Wilcox "already free\n", pool->name, 416a35a3455SMatthew Wilcox (unsigned long long)dma); 417141e9d4bSMatthew Wilcox else 418a35a3455SMatthew Wilcox printk(KERN_ERR "dma_pool_free %s, dma %Lx " 419a35a3455SMatthew Wilcox "already free\n", pool->name, 420a35a3455SMatthew Wilcox (unsigned long long)dma); 421141e9d4bSMatthew Wilcox return; 422141e9d4bSMatthew Wilcox } 423a35a3455SMatthew Wilcox } 424141e9d4bSMatthew Wilcox memset(vaddr, POOL_POISON_FREED, pool->size); 425141e9d4bSMatthew Wilcox #endif 426141e9d4bSMatthew Wilcox 427141e9d4bSMatthew Wilcox spin_lock_irqsave(&pool->lock, flags); 428141e9d4bSMatthew Wilcox page->in_use--; 429a35a3455SMatthew Wilcox *(int *)vaddr = page->offset; 430a35a3455SMatthew Wilcox page->offset = offset; 431141e9d4bSMatthew Wilcox if (waitqueue_active(&pool->waitq)) 4322cae367eSMatthew Wilcox wake_up_locked(&pool->waitq); 433141e9d4bSMatthew Wilcox /* 434141e9d4bSMatthew Wilcox * Resist a temptation to do 435a35a3455SMatthew Wilcox * if (!is_page_busy(page)) pool_free_page(pool, page); 436141e9d4bSMatthew Wilcox * Better have a few empty pages hang around. 437141e9d4bSMatthew Wilcox */ 438141e9d4bSMatthew Wilcox spin_unlock_irqrestore(&pool->lock, flags); 439141e9d4bSMatthew Wilcox } 440e87aa773SMatthew Wilcox EXPORT_SYMBOL(dma_pool_free); 441141e9d4bSMatthew Wilcox 442141e9d4bSMatthew Wilcox /* 443141e9d4bSMatthew Wilcox * Managed DMA pool 444141e9d4bSMatthew Wilcox */ 445141e9d4bSMatthew Wilcox static void dmam_pool_release(struct device *dev, void *res) 446141e9d4bSMatthew Wilcox { 447141e9d4bSMatthew Wilcox struct dma_pool *pool = *(struct dma_pool **)res; 448141e9d4bSMatthew Wilcox 449141e9d4bSMatthew Wilcox dma_pool_destroy(pool); 450141e9d4bSMatthew Wilcox } 451141e9d4bSMatthew Wilcox 452141e9d4bSMatthew Wilcox static int dmam_pool_match(struct device *dev, void *res, void *match_data) 453141e9d4bSMatthew Wilcox { 454141e9d4bSMatthew Wilcox return *(struct dma_pool **)res == match_data; 455141e9d4bSMatthew Wilcox } 456141e9d4bSMatthew Wilcox 457141e9d4bSMatthew Wilcox /** 458141e9d4bSMatthew Wilcox * dmam_pool_create - Managed dma_pool_create() 459141e9d4bSMatthew Wilcox * @name: name of pool, for diagnostics 460141e9d4bSMatthew Wilcox * @dev: device that will be doing the DMA 461141e9d4bSMatthew Wilcox * @size: size of the blocks in this pool. 462141e9d4bSMatthew Wilcox * @align: alignment requirement for blocks; must be a power of two 463141e9d4bSMatthew Wilcox * @allocation: returned blocks won't cross this boundary (or zero) 464141e9d4bSMatthew Wilcox * 465141e9d4bSMatthew Wilcox * Managed dma_pool_create(). DMA pool created with this function is 466141e9d4bSMatthew Wilcox * automatically destroyed on driver detach. 467141e9d4bSMatthew Wilcox */ 468141e9d4bSMatthew Wilcox struct dma_pool *dmam_pool_create(const char *name, struct device *dev, 469141e9d4bSMatthew Wilcox size_t size, size_t align, size_t allocation) 470141e9d4bSMatthew Wilcox { 471141e9d4bSMatthew Wilcox struct dma_pool **ptr, *pool; 472141e9d4bSMatthew Wilcox 473141e9d4bSMatthew Wilcox ptr = devres_alloc(dmam_pool_release, sizeof(*ptr), GFP_KERNEL); 474141e9d4bSMatthew Wilcox if (!ptr) 475141e9d4bSMatthew Wilcox return NULL; 476141e9d4bSMatthew Wilcox 477141e9d4bSMatthew Wilcox pool = *ptr = dma_pool_create(name, dev, size, align, allocation); 478141e9d4bSMatthew Wilcox if (pool) 479141e9d4bSMatthew Wilcox devres_add(dev, ptr); 480141e9d4bSMatthew Wilcox else 481141e9d4bSMatthew Wilcox devres_free(ptr); 482141e9d4bSMatthew Wilcox 483141e9d4bSMatthew Wilcox return pool; 484141e9d4bSMatthew Wilcox } 485e87aa773SMatthew Wilcox EXPORT_SYMBOL(dmam_pool_create); 486141e9d4bSMatthew Wilcox 487141e9d4bSMatthew Wilcox /** 488141e9d4bSMatthew Wilcox * dmam_pool_destroy - Managed dma_pool_destroy() 489141e9d4bSMatthew Wilcox * @pool: dma pool that will be destroyed 490141e9d4bSMatthew Wilcox * 491141e9d4bSMatthew Wilcox * Managed dma_pool_destroy(). 492141e9d4bSMatthew Wilcox */ 493141e9d4bSMatthew Wilcox void dmam_pool_destroy(struct dma_pool *pool) 494141e9d4bSMatthew Wilcox { 495141e9d4bSMatthew Wilcox struct device *dev = pool->dev; 496141e9d4bSMatthew Wilcox 497141e9d4bSMatthew Wilcox dma_pool_destroy(pool); 498141e9d4bSMatthew Wilcox WARN_ON(devres_destroy(dev, dmam_pool_release, dmam_pool_match, pool)); 499141e9d4bSMatthew Wilcox } 500141e9d4bSMatthew Wilcox EXPORT_SYMBOL(dmam_pool_destroy); 501