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path: root/linux-core/nouveau_sgdma.c
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#include "drmP.h"
#include "nouveau_drv.h"

#define NV_CTXDMA_PAGE_SHIFT 12
#define NV_CTXDMA_PAGE_SIZE  (1 << NV_CTXDMA_PAGE_SHIFT)
#define NV_CTXDMA_PAGE_MASK  (NV_CTXDMA_PAGE_SIZE - 1)

struct nouveau_sgdma_be {
	struct drm_ttm_backend backend;
	struct drm_device *dev;

	int         pages;
	int         pages_populated;
	dma_addr_t *pagelist;
	int         is_bound;

	unsigned int pte_start;
};

static int
nouveau_sgdma_needs_ub_cache_adjust(struct drm_ttm_backend *be)
{
	return ((be->flags & DRM_BE_FLAG_BOUND_CACHED) ? 0 : 1);
}

static int
nouveau_sgdma_populate(struct drm_ttm_backend *be, unsigned long num_pages,
		       struct page **pages, struct page *dummy_read_page)
{
	struct nouveau_sgdma_be *nvbe = (struct nouveau_sgdma_be *)be;
	int p, d, o;

	DRM_DEBUG("num_pages = %ld\n", num_pages);

	if (nvbe->pagelist)
		return -EINVAL;
	nvbe->pages    = (num_pages << PAGE_SHIFT) >> NV_CTXDMA_PAGE_SHIFT;
	nvbe->pagelist = drm_alloc(nvbe->pages*sizeof(dma_addr_t),
				   DRM_MEM_PAGES);

	nvbe->pages_populated = d = 0;
	for (p = 0; p < num_pages; p++) {
		for (o = 0; o < PAGE_SIZE; o += NV_CTXDMA_PAGE_SIZE) {
			struct page *page = pages[p];
			if (!page)
				page = dummy_read_page;
			nvbe->pagelist[d] = pci_map_page(nvbe->dev->pdev,
							 page, o,
							 NV_CTXDMA_PAGE_SIZE,
							 PCI_DMA_BIDIRECTIONAL);
#if (LINUX_VERSION_CODE >= KERNEL_VERSION(2,6,27))
			if (pci_dma_mapping_error(nvbe->dev->pdev, nvbe->pagelist[d])) {
#else
			if (pci_dma_mapping_error(nvbe->pagelist[d])) {
#endif
				be->func->clear(be);
				DRM_ERROR("pci_map_page failed\n");
				return -EINVAL;
			}
			nvbe->pages_populated = ++d;
		}
	}

	return 0;
}

static void
nouveau_sgdma_clear(struct drm_ttm_backend *be)
{
	struct nouveau_sgdma_be *nvbe = (struct nouveau_sgdma_be *)be;
	int d;

	DRM_DEBUG("\n");

	if (nvbe && nvbe->pagelist) {
		if (nvbe->is_bound)
			be->func->unbind(be);

		for (d = 0; d < nvbe->pages_populated; d++) {
			pci_unmap_page(nvbe->dev->pdev, nvbe->pagelist[d],
				       NV_CTXDMA_PAGE_SIZE,
				       PCI_DMA_BIDIRECTIONAL);
		}
		drm_free(nvbe->pagelist, nvbe->pages*sizeof(dma_addr_t),
			 DRM_MEM_PAGES);
	}
}

static int
nouveau_sgdma_bind(struct drm_ttm_backend *be, struct drm_bo_mem_reg *mem)
{
	struct nouveau_sgdma_be *nvbe = (struct nouveau_sgdma_be *)be;
	struct drm_nouveau_private *dev_priv = nvbe->dev->dev_private;
	struct nouveau_gpuobj *gpuobj = dev_priv->gart_info.sg_ctxdma;
	uint64_t offset = (mem->mm_node->start << PAGE_SHIFT);
	uint32_t i;

	DRM_DEBUG("pg=0x%lx (0x%llx), cached=%d\n", mem->mm_node->start,
		  offset, (mem->flags & DRM_BO_FLAG_CACHED) == 1);

	if (offset & NV_CTXDMA_PAGE_MASK)
		return -EINVAL;
	nvbe->pte_start = (offset >> NV_CTXDMA_PAGE_SHIFT);
	if (dev_priv->card_type < NV_50)
		nvbe->pte_start += 2; /* skip ctxdma header */

	for (i = nvbe->pte_start; i < nvbe->pte_start + nvbe->pages; i++) {
		uint64_t pteval = nvbe->pagelist[i - nvbe->pte_start];

		if (pteval & NV_CTXDMA_PAGE_MASK) {
			DRM_ERROR("Bad pteval 0x%llx\n", pteval);
			return -EINVAL;
		}

		if (dev_priv->card_type < NV_50) {
			INSTANCE_WR(gpuobj, i, pteval | 3);
		} else {
			INSTANCE_WR(gpuobj, (i<<1)+0, pteval | 0x21);
			INSTANCE_WR(gpuobj, (i<<1)+1, 0x00000000);
		}
	}

	nvbe->is_bound  = 1;
	return 0;
}

static int
nouveau_sgdma_unbind(struct drm_ttm_backend *be)
{
	struct nouveau_sgdma_be *nvbe = (struct nouveau_sgdma_be *)be;
	struct drm_nouveau_private *dev_priv = nvbe->dev->dev_private;

	DRM_DEBUG("\n");

	if (nvbe->is_bound) {
		struct nouveau_gpuobj *gpuobj = dev_priv->gart_info.sg_ctxdma;
		unsigned int pte;

		pte = nvbe->pte_start;
		while (pte < (nvbe->pte_start + nvbe->pages)) {
			uint64_t pteval = dev_priv->gart_info.sg_dummy_bus;

			if (dev_priv->card_type < NV_50) {
				INSTANCE_WR(gpuobj, pte, pteval | 3);
			} else {
				INSTANCE_WR(gpuobj, (pte<<1)+0, pteval | 0x21);
				INSTANCE_WR(gpuobj, (pte<<1)+1, 0x00000000);
			}

			pte++;
		}

		nvbe->is_bound = 0;
	}

	return 0;
}

static void
nouveau_sgdma_destroy(struct drm_ttm_backend *be)
{
	DRM_DEBUG("\n");
	if (be) {
		struct nouveau_sgdma_be *nvbe = (struct nouveau_sgdma_be *)be;
		if (nvbe) {
			if (nvbe->pagelist)
				be->func->clear(be);
			drm_ctl_free(nvbe, sizeof(*nvbe), DRM_MEM_TTM);
		}
	}
}

static struct drm_ttm_backend_func nouveau_sgdma_backend = {
	.needs_ub_cache_adjust	= nouveau_sgdma_needs_ub_cache_adjust,
	.populate		= nouveau_sgdma_populate,
	.clear			= nouveau_sgdma_clear,
	.bind			= nouveau_sgdma_bind,
	.unbind			= nouveau_sgdma_unbind,
	.destroy		= nouveau_sgdma_destroy
};

struct drm_ttm_backend *
nouveau_sgdma_init_ttm(struct drm_device *dev)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;
	struct nouveau_sgdma_be *nvbe;

	if (!dev_priv->gart_info.sg_ctxdma)
		return NULL;

	nvbe = drm_ctl_calloc(1, sizeof(*nvbe), DRM_MEM_TTM);
	if (!nvbe)
		return NULL;

	nvbe->dev = dev;

	nvbe->backend.func	= &nouveau_sgdma_backend;

	return &nvbe->backend;
}

int
nouveau_sgdma_init(struct drm_device *dev)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;
	struct nouveau_gpuobj *gpuobj = NULL;
	uint32_t aper_size, obj_size;
	int i, ret;

	if (dev_priv->card_type < NV_50) {
		aper_size = (64 * 1024 * 1024);
		obj_size  = (aper_size >> NV_CTXDMA_PAGE_SHIFT) * 4;
		obj_size += 8; /* ctxdma header */
	} else {
		/* 1 entire VM page table */
		aper_size = (512 * 1024 * 1024);
		obj_size  = (aper_size >> NV_CTXDMA_PAGE_SHIFT) * 8;
	}

	if ((ret = nouveau_gpuobj_new(dev, NULL, obj_size, 16,
				      NVOBJ_FLAG_ALLOW_NO_REFS |
				      NVOBJ_FLAG_ZERO_ALLOC |
				      NVOBJ_FLAG_ZERO_FREE, &gpuobj)))  {
		DRM_ERROR("Error creating sgdma object: %d\n", ret);
		return ret;
	}

	dev_priv->gart_info.sg_dummy_page =
		alloc_page(GFP_KERNEL|__GFP_DMA32);
#if (LINUX_VERSION_CODE >= KERNEL_VERSION(2,6,27))
	set_page_locked(dev_priv->gart_info.sg_dummy_page);
#else
	SetPageLocked(dev_priv->gart_info.sg_dummy_page);
#endif
	dev_priv->gart_info.sg_dummy_bus =
		pci_map_page(dev->pdev, dev_priv->gart_info.sg_dummy_page, 0,
			     PAGE_SIZE, PCI_DMA_BIDIRECTIONAL);

	if (dev_priv->card_type < NV_50) {
		/* Maybe use NV_DMA_TARGET_AGP for PCIE? NVIDIA do this, and
		 * confirmed to work on c51.  Perhaps means NV_DMA_TARGET_PCIE
		 * on those cards? */
		INSTANCE_WR(gpuobj, 0, NV_CLASS_DMA_IN_MEMORY |
				       (1 << 12) /* PT present */ |
				       (0 << 13) /* PT *not* linear */ |
				       (NV_DMA_ACCESS_RW  << 14) |
				       (NV_DMA_TARGET_PCI << 16));
		INSTANCE_WR(gpuobj, 1, aper_size - 1);
		for (i=2; i<2+(aper_size>>12); i++) {
			INSTANCE_WR(gpuobj, i,
				    dev_priv->gart_info.sg_dummy_bus | 3);
		}
	} else {
		for (i=0; i<obj_size; i+=8) {
			INSTANCE_WR(gpuobj, (i+0)/4,
				    dev_priv->gart_info.sg_dummy_bus | 0x21);
			INSTANCE_WR(gpuobj, (i+4)/4, 0);
		}
	}

	dev_priv->gart_info.type      = NOUVEAU_GART_SGDMA;
	dev_priv->gart_info.aper_base = 0;
	dev_priv->gart_info.aper_size = aper_size;
	dev_priv->gart_info.sg_ctxdma = gpuobj;
	return 0;
}

void
nouveau_sgdma_takedown(struct drm_device *dev)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;

	if (dev_priv->gart_info.sg_dummy_page) {
		pci_unmap_page(dev->pdev, dev_priv->gart_info.sg_dummy_bus,
			       NV_CTXDMA_PAGE_SIZE, PCI_DMA_BIDIRECTIONAL);
		unlock_page(dev_priv->gart_info.sg_dummy_page);
		__free_page(dev_priv->gart_info.sg_dummy_page);
		dev_priv->gart_info.sg_dummy_page = NULL;
		dev_priv->gart_info.sg_dummy_bus = 0;
	}

	nouveau_gpuobj_del(dev, &dev_priv->gart_info.sg_ctxdma);
}

int
nouveau_sgdma_nottm_hack_init(struct drm_device *dev)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;
	struct drm_ttm_backend *be;
	struct drm_scatter_gather sgreq;
	struct drm_mm_node mm_node;
	struct drm_bo_mem_reg mem;
	int ret;

	dev_priv->gart_info.sg_be = nouveau_sgdma_init_ttm(dev);
	if (!dev_priv->gart_info.sg_be)
		return -ENOMEM;
	be = dev_priv->gart_info.sg_be;

	/* Hack the aperture size down to the amount of system memory
	 * we're going to bind into it.
	 */
	if (dev_priv->gart_info.aper_size > 32*1024*1024)
		dev_priv->gart_info.aper_size = 32*1024*1024;

	sgreq.size = dev_priv->gart_info.aper_size;
	if ((ret = drm_sg_alloc(dev, &sgreq))) {
		DRM_ERROR("drm_sg_alloc failed: %d\n", ret);
		return ret;
	}
	dev_priv->gart_info.sg_handle = sgreq.handle;

	if ((ret = be->func->populate(be, dev->sg->pages, dev->sg->pagelist, dev->bm.dummy_read_page))) {
		DRM_ERROR("failed populate: %d\n", ret);
		return ret;
	}

	mm_node.start = 0;
	mem.mm_node = &mm_node;

	if ((ret = be->func->bind(be, &mem))) {
		DRM_ERROR("failed bind: %d\n", ret);
		return ret;
	}

	return 0;
}

void
nouveau_sgdma_nottm_hack_takedown(struct drm_device *dev)
{
}

int
nouveau_sgdma_get_page(struct drm_device *dev, uint32_t offset, uint32_t *page)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;
	struct nouveau_gpuobj *gpuobj = dev_priv->gart_info.sg_ctxdma;
	int pte;

	pte = (offset >> NV_CTXDMA_PAGE_SHIFT);
	if (dev_priv->card_type < NV_50) {
		*page = INSTANCE_RD(gpuobj, (pte + 2)) & ~NV_CTXDMA_PAGE_MASK;
		return 0;
	}

	DRM_ERROR("Unimplemented on NV50\n");
	return -EINVAL;
}
\ : "2" (old), \ "r" (new)); \ } while (0) #elif defined(__alpha__) #define DRM_CAS(lock, old, new, ret) \ do { \ int old32; \ int cur32; \ __asm__ __volatile__( \ " mb\n" \ " zap %4, 0xF0, %0\n" \ " ldl_l %1, %2\n" \ " zap %1, 0xF0, %1\n" \ " cmpeq %0, %1, %1\n" \ " beq %1, 1f\n" \ " bis %5, %5, %1\n" \ " stl_c %1, %2\n" \ "1: xor %1, 1, %1\n" \ " stl %1, %3" \ : "=r" (old32), \ "=&r" (cur32), \ "=m" (__drm_dummy_lock(lock)),\ "=m" (ret) \ : "r" (old), \ "r" (new)); \ } while(0) #elif defined(__sparc__) #define DRM_CAS(lock,old,new,__ret) \ do { register unsigned int __old __asm("o0"); \ register unsigned int __new __asm("o1"); \ register volatile unsigned int *__lock __asm("o2"); \ __old = old; \ __new = new; \ __lock = (volatile unsigned int *)lock; \ __asm__ __volatile__( \ /*"cas [%2], %3, %0"*/ \ ".word 0xd3e29008\n\t" \ /*"membar #StoreStore | #StoreLoad"*/ \ ".word 0x8143e00a" \ : "=&r" (__new) \ : "0" (__new), \ "r" (__lock), \ "r" (__old) \ : "memory"); \ __ret = (__new != __old); \ } while(0) #elif defined(__ia64__) #ifdef __INTEL_COMPILER /* this currently generates bad code (missing stop bits)... */ #include <ia64intrin.h> #define DRM_CAS(lock,old,new,__ret) \ do { \ unsigned long __result, __old = (old) & 0xffffffff; \ __mf(); \ __result = _InterlockedCompareExchange_acq(&__drm_dummy_lock(lock), (new), __old);\ __ret = (__result) != (__old); \ /* __ret = (__sync_val_compare_and_swap(&__drm_dummy_lock(lock), \ (old), (new)) \ != (old)); */\ } while (0) #else #define DRM_CAS(lock,old,new,__ret) \ do { \ unsigned int __result, __old = (old); \ __asm__ __volatile__( \ "mf\n" \ "mov ar.ccv=%2\n" \ ";;\n" \ "cmpxchg4.acq %0=%1,%3,ar.ccv" \ : "=r" (__result), "=m" (__drm_dummy_lock(lock)) \ : "r" ((unsigned long)__old), "r" (new) \ : "memory"); \ __ret = (__result) != (__old); \ } while (0) #endif #elif defined(__powerpc__) #define DRM_CAS(lock,old,new,__ret) \ do { \ __asm__ __volatile__( \ "sync;" \ "0: lwarx %0,0,%1;" \ " xor. %0,%3,%0;" \ " bne 1f;" \ " stwcx. %2,0,%1;" \ " bne- 0b;" \ "1: " \ "sync;" \ : "=&r"(__ret) \ : "r"(lock), "r"(new), "r"(old) \ : "cr0", "memory"); \ } while (0) #endif /* architecture */ #endif /* __GNUC__ >= 2 */ #ifndef DRM_CAS #define DRM_CAS(lock,old,new,ret) do { ret=1; } while (0) /* FAST LOCK FAILS */ #endif #if defined(__alpha__) || defined(__powerpc__) #define DRM_CAS_RESULT(_result) int _result #else #define DRM_CAS_RESULT(_result) char _result #endif #define DRM_LIGHT_LOCK(fd,lock,context) \ do { \ DRM_CAS_RESULT(__ret); \ DRM_CAS(lock,context,DRM_LOCK_HELD|context,__ret); \ if (__ret) drmGetLock(fd,context,0); \ } while(0) /* This one counts fast locks -- for benchmarking only. */ #define DRM_LIGHT_LOCK_COUNT(fd,lock,context,count) \ do { \ DRM_CAS_RESULT(__ret); \ DRM_CAS(lock,context,DRM_LOCK_HELD|context,__ret); \ if (__ret) drmGetLock(fd,context,0); \ else ++count; \ } while(0) #define DRM_LOCK(fd,lock,context,flags) \ do { \ if (flags) drmGetLock(fd,context,flags); \ else DRM_LIGHT_LOCK(fd,lock,context); \ } while(0) #define DRM_UNLOCK(fd,lock,context) \ do { \ DRM_CAS_RESULT(__ret); \ DRM_CAS(lock,DRM_LOCK_HELD|context,context,__ret); \ if (__ret) drmUnlock(fd,context); \ } while(0) /* Simple spin locks */ #define DRM_SPINLOCK(spin,val) \ do { \ DRM_CAS_RESULT(__ret); \ do { \ DRM_CAS(spin,0,val,__ret); \ if (__ret) while ((spin)->lock); \ } while (__ret); \ } while(0) #define DRM_SPINLOCK_TAKE(spin,val) \ do { \ DRM_CAS_RESULT(__ret); \ int cur; \ do { \ cur = (*spin).lock; \ DRM_CAS(spin,cur,val,__ret); \ } while (__ret); \ } while(0) #define DRM_SPINLOCK_COUNT(spin,val,count,__ret) \ do { \ int __i; \ __ret = 1; \ for (__i = 0; __ret && __i < count; __i++) { \ DRM_CAS(spin,0,val,__ret); \ if (__ret) for (;__i < count && (spin)->lock; __i++); \ } \ } while(0) #define DRM_SPINUNLOCK(spin,val) \ do { \ DRM_CAS_RESULT(__ret); \ if ((*spin).lock == val) { /* else server stole lock */ \ do { \ DRM_CAS(spin,val,0,__ret); \ } while (__ret); \ } \ } while(0) /* General user-level programmer's API: unprivileged */ extern int drmAvailable(void); extern int drmOpen(const char *name, const char *busid); extern int drmClose(int fd); extern drmVersionPtr drmGetVersion(int fd); extern drmVersionPtr drmGetLibVersion(int fd); extern void drmFreeVersion(drmVersionPtr); extern int drmGetMagic(int fd, drm_magic_t * magic); extern char *drmGetBusid(int fd); extern int drmGetInterruptFromBusID(int fd, int busnum, int devnum, int funcnum); extern int drmGetMap(int fd, int idx, drm_handle_t *offset, drmSize *size, drmMapType *type, drmMapFlags *flags, drm_handle_t *handle, int *mtrr); extern int drmGetClient(int fd, int idx, int *auth, int *pid, int *uid, unsigned long *magic, unsigned long *iocs); extern int drmGetStats(int fd, drmStatsT *stats); extern int drmSetInterfaceVersion(int fd, drmSetVersion *version); extern int drmCommandNone(int fd, unsigned long drmCommandIndex); extern int drmCommandRead(int fd, unsigned long drmCommandIndex, void *data, unsigned long size); extern int drmCommandWrite(int fd, unsigned long drmCommandIndex, void *data, unsigned long size); extern int drmCommandWriteRead(int fd, unsigned long drmCommandIndex, void *data, unsigned long size); /* General user-level programmer's API: X server (root) only */ extern void drmFreeBusid(const char *busid); extern int drmSetBusid(int fd, const char *busid); extern int drmAuthMagic(int fd, drm_magic_t magic); extern int drmAddMap(int fd, drm_handle_t offset, drmSize size, drmMapType type, drmMapFlags flags, drm_handle_t * handle); extern int drmRmMap(int fd, drm_handle_t handle); extern int drmAddContextPrivateMapping(int fd, drm_context_t ctx_id, drm_handle_t handle); extern int drmAddBufs(int fd, int count, int size, drmBufDescFlags flags, int agp_offset); extern int drmMarkBufs(int fd, double low, double high); extern int drmCreateContext(int fd, drm_context_t * handle); extern int drmSetContextFlags(int fd, drm_context_t context, drm_context_tFlags flags); extern int drmGetContextFlags(int fd, drm_context_t context, drm_context_tFlagsPtr flags); extern int drmAddContextTag(int fd, drm_context_t context, void *tag); extern int drmDelContextTag(int fd, drm_context_t context); extern void *drmGetContextTag(int fd, drm_context_t context); extern drm_context_t * drmGetReservedContextList(int fd, int *count); extern void drmFreeReservedContextList(drm_context_t *); extern int drmSwitchToContext(int fd, drm_context_t context); extern int drmDestroyContext(int fd, drm_context_t handle); extern int drmCreateDrawable(int fd, drm_drawable_t * handle); extern int drmDestroyDrawable(int fd, drm_drawable_t handle); extern int drmUpdateDrawableInfo(int fd, drm_drawable_t handle, drm_drawable_info_type_t type, unsigned int num, void *data); extern int drmCtlInstHandler(int fd, int irq); extern int drmCtlUninstHandler(int fd); /* General user-level programmer's API: authenticated client and/or X */ extern int drmMap(int fd, drm_handle_t handle, drmSize size, drmAddressPtr address); extern int drmUnmap(drmAddress address, drmSize size); extern drmBufInfoPtr drmGetBufInfo(int fd); extern drmBufMapPtr drmMapBufs(int fd); extern int drmUnmapBufs(drmBufMapPtr bufs); extern int drmDMA(int fd, drmDMAReqPtr request); extern int drmFreeBufs(int fd, int count, int *list); extern int drmGetLock(int fd, drm_context_t context, drmLockFlags flags); extern int drmUnlock(int fd, drm_context_t context); extern int drmFinish(int fd, int context, drmLockFlags flags); extern int drmGetContextPrivateMapping(int fd, drm_context_t ctx_id, drm_handle_t * handle); /* AGP/GART support: X server (root) only */ extern int drmAgpAcquire(int fd); extern int drmAgpRelease(int fd); extern int drmAgpEnable(int fd, unsigned long mode); extern int drmAgpAlloc(int fd, unsigned long size, unsigned long type, unsigned long *address, drm_handle_t *handle); extern int drmAgpFree(int fd, drm_handle_t handle); extern int drmAgpBind(int fd, drm_handle_t handle, unsigned long offset); extern int drmAgpUnbind(int fd, drm_handle_t handle); /* AGP/GART info: authenticated client and/or X */ extern int drmAgpVersionMajor(int fd); extern int drmAgpVersionMinor(int fd); extern unsigned long drmAgpGetMode(int fd); extern unsigned long drmAgpBase(int fd); /* Physical location */ extern unsigned long drmAgpSize(int fd); /* Bytes */ extern unsigned long drmAgpMemoryUsed(int fd); extern unsigned long drmAgpMemoryAvail(int fd); extern unsigned int drmAgpVendorId(int fd); extern unsigned int drmAgpDeviceId(int fd); /* PCI scatter/gather support: X server (root) only */ extern int drmScatterGatherAlloc(int fd, unsigned long size, drm_handle_t *handle); extern int drmScatterGatherFree(int fd, drm_handle_t handle); extern int drmWaitVBlank(int fd, drmVBlankPtr vbl); /* Support routines */ extern void drmSetServerInfo(drmServerInfoPtr info); extern int drmError(int err, const char *label); extern void *drmMalloc(int size); extern void drmFree(void *pt); /* Hash table routines */ extern void *drmHashCreate(void); extern int drmHashDestroy(void *t); extern int drmHashLookup(void *t, unsigned long key, void **value); extern int drmHashInsert(void *t, unsigned long key, void *value); extern int drmHashDelete(void *t, unsigned long key); extern int drmHashFirst(void *t, unsigned long *key, void **value); extern int drmHashNext(void *t, unsigned long *key, void **value); /* PRNG routines */ extern void *drmRandomCreate(unsigned long seed); extern int drmRandomDestroy(void *state); extern unsigned long drmRandom(void *state); extern double drmRandomDouble(void *state); /* Skip list routines */ extern void *drmSLCreate(void); extern int drmSLDestroy(void *l); extern int drmSLLookup(void *l, unsigned long key, void **value); extern int drmSLInsert(void *l, unsigned long key, void *value); extern int drmSLDelete(void *l, unsigned long key); extern int drmSLNext(void *l, unsigned long *key, void **value); extern int drmSLFirst(void *l, unsigned long *key, void **value); extern void drmSLDump(void *l); extern int drmSLLookupNeighbors(void *l, unsigned long key, unsigned long *prev_key, void **prev_value, unsigned long *next_key, void **next_value); extern int drmOpenOnce(void *unused, const char *BusID, int *newlyopened); extern void drmCloseOnce(int fd); #include "xf86mm.h" #endif