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path: root/linux/drm_vm.h
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/* drm_vm.h -- Memory mapping for DRM -*- linux-c -*-
 * Created: Mon Jan  4 08:58:31 1999 by faith@valinux.com
 *
 * Copyright 1999 Precision Insight, Inc., Cedar Park, Texas.
 * Copyright 2000 VA Linux Systems, Inc., Sunnyvale, California.
 * All Rights Reserved.
 *
 * Permission is hereby granted, free of charge, to any person obtaining a
 * copy of this software and associated documentation files (the "Software"),
 * to deal in the Software without restriction, including without limitation
 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
 * and/or sell copies of the Software, and to permit persons to whom the
 * Software is furnished to do so, subject to the following conditions:
 *
 * The above copyright notice and this permission notice (including the next
 * paragraph) shall be included in all copies or substantial portions of the
 * Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
 * VA LINUX SYSTEMS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM, DAMAGES OR
 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
 * OTHER DEALINGS IN THE SOFTWARE.
 *
 * Authors:
 *    Rickard E. (Rik) Faith <faith@valinux.com>
 *    Gareth Hughes <gareth@valinux.com>
 */

#define __NO_VERSION__
#include "drmP.h"

struct vm_operations_struct   drm_vm_ops = {
	nopage:	 DRM(vm_nopage),
	open:	 DRM(vm_open),
	close:	 DRM(vm_close),
};

struct vm_operations_struct   drm_vm_shm_ops = {
	nopage:	 DRM(vm_shm_nopage),
	open:	 DRM(vm_open),
	close:	 DRM(vm_shm_close),
};

struct vm_operations_struct   drm_vm_dma_ops = {
	nopage:	 DRM(vm_dma_nopage),
	open:	 DRM(vm_open),
	close:	 DRM(vm_close),
};

struct vm_operations_struct   drm_vm_sg_ops = {
	nopage:  DRM(vm_sg_nopage),
	open:    DRM(vm_open),
	close:   DRM(vm_close),
};

#if LINUX_VERSION_CODE < 0x020317
unsigned long DRM(vm_nopage)(struct vm_area_struct *vma,
			     unsigned long address,
			     int write_access)
#else
				/* Return type changed in 2.3.23 */
struct page *DRM(vm_nopage)(struct vm_area_struct *vma,
			    unsigned long address,
			    int write_access)
#endif
{
	return NOPAGE_SIGBUS;		/* Disallow mremap */
}

#if LINUX_VERSION_CODE < 0x020317
unsigned long DRM(vm_shm_nopage)(struct vm_area_struct *vma,
				 unsigned long address,
				 int write_access)
#else
				/* Return type changed in 2.3.23 */
struct page *DRM(vm_shm_nopage)(struct vm_area_struct *vma,
				unsigned long address,
				int write_access)
#endif
{
#if LINUX_VERSION_CODE >= 0x020300
	drm_map_t	 *map	 = (drm_map_t *)vma->vm_private_data;
#else
	drm_map_t	 *map	 = (drm_map_t *)vma->vm_pte;
#endif
	unsigned long	 physical;
	unsigned long	 offset;
	unsigned long	 i;
	pgd_t		 *pgd;
	pmd_t		 *pmd;
	pte_t		 *pte;

	if (address > vma->vm_end) return NOPAGE_SIGBUS; /* Disallow mremap */
	if (!map)    		   return NOPAGE_OOM;  /* Nothing allocated */

	offset	 = address - vma->vm_start;
	i = (unsigned long)map->handle + offset;
	/* We have to walk page tables here because we need large SAREA's, and
	 * they need to be virtually contiguous in kernel space.
	 */
	pgd = pgd_offset_k( i );
	if( !pgd_present( *pgd ) ) return NOPAGE_OOM;
	pmd = pmd_offset( pgd, i );
	if( !pmd_present( *pmd ) ) return NOPAGE_OOM;
	pte = pte_offset( pmd, i );
	if( !pte_present( *pte ) ) return NOPAGE_OOM;
	physical = (unsigned long)pte_page( *pte )->virtual;
	atomic_inc(&virt_to_page(physical)->count); /* Dec. by kernel */

	DRM_DEBUG("0x%08lx => 0x%08lx\n", address, physical);
#if LINUX_VERSION_CODE < 0x020317
	return physical;
#else
	return virt_to_page(physical);
#endif
}

/* Special close routine which deletes map information if we are the last
 * person to close a mapping and its not in the global maplist.
 */

void DRM(vm_shm_close)(struct vm_area_struct *vma)
{
	drm_file_t	*priv	= vma->vm_file->private_data;
	drm_device_t	*dev	= priv->dev;
	drm_vma_entry_t *pt, *prev;
	drm_map_t *map;
	drm_map_list_t *r_list;
	struct list_head *list;
	int found_maps = 0;

	DRM_DEBUG("0x%08lx,0x%08lx\n",
		  vma->vm_start, vma->vm_end - vma->vm_start);
#if LINUX_VERSION_CODE < 0x020333
	MOD_DEC_USE_COUNT; /* Needed before Linux 2.3.51 */
#endif
	atomic_dec(&dev->vma_count);

#if LINUX_VERSION_CODE >= 0x020300
	map = vma->vm_private_data;
#else
	map = vma->vm_pte;
#endif

	down(&dev->struct_sem);
	for (pt = dev->vmalist, prev = NULL; pt; prev = pt, pt = pt->next) {
#if LINUX_VERSION_CODE >= 0x020300
		if (pt->vma->vm_private_data == map) found_maps++;
#else
		if (pt->vma->vm_pte == map) found_maps++;
#endif
		if (pt->vma == vma) {
			if (prev) {
				prev->next = pt->next;
			} else {
				dev->vmalist = pt->next;
			}
			DRM(free)(pt, sizeof(*pt), DRM_MEM_VMAS);
		}
	}
	/* We were the only map that was found */
	if(found_maps == 1 &&
	   map->flags & _DRM_REMOVABLE) {
		/* Check to see if we are in the maplist, if we are not, then
		 * we delete this mappings information.
		 */
		found_maps = 0;
		list = &dev->maplist->head;
		list_for_each(list, &dev->maplist->head) {
			r_list = (drm_map_list_t *) list;
			if (r_list->map == map) found_maps++;
		}

		if(!found_maps) {
			switch (map->type) {
			case _DRM_REGISTERS:
			case _DRM_FRAME_BUFFER:
#if __REALLY_HAVE_MTRR
				if (map->mtrr >= 0) {
					int retcode;
					retcode = mtrr_del(map->mtrr,
							   map->offset,
							   map->size);
					DRM_DEBUG("mtrr_del = %d\n", retcode);
				}
#endif
				DRM(ioremapfree)(map->handle, map->size);
				break;
			case _DRM_SHM:
				vfree(map->handle);
				break;
			case _DRM_AGP:
			case _DRM_SCATTER_GATHER:
				break;
			}
			DRM(free)(map, sizeof(*map), DRM_MEM_MAPS);
		}
	}
	up(&dev->struct_sem);
}

#if LINUX_VERSION_CODE < 0x020317
unsigned long DRM(vm_dma_nopage)(struct vm_area_struct *vma,
				 unsigned long address,
				 int write_access)
#else
				/* Return type changed in 2.3.23 */
struct page *DRM(vm_dma_nopage)(struct vm_area_struct *vma,
				unsigned long address,
				int write_access)
#endif
{
	drm_file_t	 *priv	 = vma->vm_file->private_data;
	drm_device_t	 *dev	 = priv->dev;
	drm_device_dma_t *dma	 = dev->dma;
	unsigned long	 physical;
	unsigned long	 offset;
	unsigned long	 page;

	if (!dma)		   return NOPAGE_SIGBUS; /* Error */
	if (address > vma->vm_end) return NOPAGE_SIGBUS; /* Disallow mremap */
	if (!dma->pagelist)	   return NOPAGE_OOM ; /* Nothing allocated */

	offset	 = address - vma->vm_start; /* vm_[pg]off[set] should be 0 */
	page	 = offset >> PAGE_SHIFT;
	physical = dma->pagelist[page] + (offset & (~PAGE_MASK));
	atomic_inc(&virt_to_page(physical)->count); /* Dec. by kernel */

	DRM_DEBUG("0x%08lx (page %lu) => 0x%08lx\n", address, page, physical);
#if LINUX_VERSION_CODE < 0x020317
	return physical;
#else
	return virt_to_page(physical);
#endif
}

#if LINUX_VERSION_CODE < 0x020317
unsigned long DRM(vm_sg_nopage)(struct vm_area_struct *vma,
				unsigned long address,
				int write_access)
#else
				/* Return type changed in 2.3.23 */
struct page *DRM(vm_sg_nopage)(struct vm_area_struct *vma,
			       unsigned long address,
			       int write_access)
#endif
{
#if LINUX_VERSION_CODE >= 0x020300
	drm_map_t        *map    = (drm_map_t *)vma->vm_private_data;
#else
	drm_map_t        *map    = (drm_map_t *)vma->vm_pte;
#endif
	drm_file_t *priv = vma->vm_file->private_data;
	drm_device_t *dev = priv->dev;
	drm_sg_mem_t *entry = dev->sg;
	unsigned long offset;
	unsigned long map_offset;
	unsigned long page_offset;
	struct page *page;

	if (!entry)                return NOPAGE_SIGBUS; /* Error */
	if (address > vma->vm_end) return NOPAGE_SIGBUS; /* Disallow mremap */
	if (!entry->pagelist)      return NOPAGE_OOM ;  /* Nothing allocated */


	offset = address - vma->vm_start;
	map_offset = map->offset - dev->sg->handle;
	page_offset = (offset >> PAGE_SHIFT) + (map_offset >> PAGE_SHIFT);
	page = entry->pagelist[page_offset];
	atomic_inc(&page->count);                       /* Dec. by kernel */

#if LINUX_VERSION_CODE < 0x020317
	return (unsigned long)virt_to_phys(page->virtual);
#else
	return page;
#endif
}

void DRM(vm_open)(struct vm_area_struct *vma)
{
	drm_file_t	*priv	= vma->vm_file->private_data;
	drm_device_t	*dev	= priv->dev;
	drm_vma_entry_t *vma_entry;

	DRM_DEBUG("0x%08lx,0x%08lx\n",
		  vma->vm_start, vma->vm_end - vma->vm_start);
	atomic_inc(&dev->vma_count);
#if LINUX_VERSION_CODE < 0x020333
				/* The map can exist after the fd is closed. */
	MOD_INC_USE_COUNT; /* Needed before Linux 2.3.51 */
#endif

	vma_entry = DRM(alloc)(sizeof(*vma_entry), DRM_MEM_VMAS);
	if (vma_entry) {
		down(&dev->struct_sem);
		vma_entry->vma	= vma;
		vma_entry->next = dev->vmalist;
		vma_entry->pid	= current->pid;
		dev->vmalist	= vma_entry;
		up(&dev->struct_sem);
	}
}

void DRM(vm_close)(struct vm_area_struct *vma)
{
	drm_file_t	*priv	= vma->vm_file->private_data;
	drm_device_t	*dev	= priv->dev;
	drm_vma_entry_t *pt, *prev;

	DRM_DEBUG("0x%08lx,0x%08lx\n",
		  vma->vm_start, vma->vm_end - vma->vm_start);
#if LINUX_VERSION_CODE < 0x020333
	MOD_DEC_USE_COUNT; /* Needed before Linux 2.3.51 */
#endif
	atomic_dec(&dev->vma_count);

	down(&dev->struct_sem);
	for (pt = dev->vmalist, prev = NULL; pt; prev = pt, pt = pt->next) {
		if (pt->vma == vma) {
			if (prev) {
				prev->next = pt->next;
			} else {
				dev->vmalist = pt->next;
			}
			DRM(free)(pt, sizeof(*pt), DRM_MEM_VMAS);
			break;
		}
	}
	up(&dev->struct_sem);
}

int DRM(mmap_dma)(struct file *filp, struct vm_area_struct *vma)
{
	drm_file_t	 *priv	 = filp->private_data;
	drm_device_t	 *dev;
	drm_device_dma_t *dma;
	unsigned long	 length	 = vma->vm_end - vma->vm_start;

	lock_kernel();
	dev	 = priv->dev;
	dma	 = dev->dma;
	DRM_DEBUG("start = 0x%lx, end = 0x%lx, offset = 0x%lx\n",
		  vma->vm_start, vma->vm_end, VM_OFFSET(vma));

				/* Length must match exact page count */
	if (!dma || (length >> PAGE_SHIFT) != dma->page_count) {
		unlock_kernel();
		return -EINVAL;
	}
	unlock_kernel();

	vma->vm_ops   = &drm_vm_dma_ops;
	vma->vm_flags |= VM_LOCKED | VM_SHM; /* Don't swap */

#if LINUX_VERSION_CODE < 0x020203 /* KERNEL_VERSION(2,2,3) */
				/* In Linux 2.2.3 and above, this is
				   handled in do_mmap() in mm/mmap.c. */
	++filp->f_count;
#endif
	vma->vm_file  =	 filp;	/* Needed for drm_vm_open() */
	DRM(vm_open)(vma);
	return 0;
}

int DRM(mmap)(struct file *filp, struct vm_area_struct *vma)
{
	drm_file_t	*priv	= filp->private_data;
	drm_device_t	*dev	= priv->dev;
	drm_map_t	*map	= NULL;
	drm_map_list_t  *r_list;
	unsigned long   offset  = 0;
	struct list_head *list;

	DRM_DEBUG("start = 0x%lx, end = 0x%lx, offset = 0x%lx\n",
		  vma->vm_start, vma->vm_end, VM_OFFSET(vma));

	if ( !priv->authenticated ) return -EACCES;

	if (!VM_OFFSET(vma)) return DRM(mmap_dma)(filp, vma);

				/* A sequential search of a linked list is
				   fine here because: 1) there will only be
				   about 5-10 entries in the list and, 2) a
				   DRI client only has to do this mapping
				   once, so it doesn't have to be optimized
				   for performance, even if the list was a
				   bit longer. */
	list_for_each(list, &dev->maplist->head) {
		r_list = (drm_map_list_t *)list;
		map = r_list->map;
		if (!map) continue;
		if (map->offset == VM_OFFSET(vma)) break;
	}

	if (!map || ((map->flags&_DRM_RESTRICTED) && !capable(CAP_SYS_ADMIN)))
		return -EPERM;

				/* Check for valid size. */
	if (map->size != vma->vm_end - vma->vm_start) return -EINVAL;

	if (!capable(CAP_SYS_ADMIN) && (map->flags & _DRM_READ_ONLY)) {
		vma->vm_flags &= VM_MAYWRITE;
#if defined(__i386__)
		pgprot_val(vma->vm_page_prot) &= ~_PAGE_RW;
#else
				/* Ye gads this is ugly.  With more thought
                                   we could move this up higher and use
                                   `protection_map' instead.  */
		vma->vm_page_prot = __pgprot(pte_val(pte_wrprotect(
			__pte(pgprot_val(vma->vm_page_prot)))));
#endif
	}

	switch (map->type) {
	case _DRM_FRAME_BUFFER:
	case _DRM_REGISTERS:
	case _DRM_AGP:
		if (VM_OFFSET(vma) >= __pa(high_memory)) {
#if defined(__i386__)
			if (boot_cpu_data.x86 > 3 && map->type != _DRM_AGP) {
				pgprot_val(vma->vm_page_prot) |= _PAGE_PCD;
				pgprot_val(vma->vm_page_prot) &= ~_PAGE_PWT;
			}
#elif defined(__ia64__)
			if (map->type != _DRM_AGP)
				vma->vm_page_prot =
					pgprot_writecombine(vma->vm_page_prot);
#elif defined(__powerpc__)
			pgprot_val(vma->vm_page_prot) |= _PAGE_NO_CACHE | _PAGE_GUARDED;
#endif
			vma->vm_flags |= VM_IO;	/* not in core dump */
		}
#ifdef __alpha__
                offset = dev->hose->dense_mem_base -
		         dev->hose->mem_space->start;
#endif
		if (remap_page_range(vma->vm_start,
				     VM_OFFSET(vma) + offset,
				     vma->vm_end - vma->vm_start,
				     vma->vm_page_prot))
				return -EAGAIN;
		DRM_DEBUG("   Type = %d; start = 0x%lx, end = 0x%lx,"
			  " offset = 0x%lx\n",
			  map->type,
			  vma->vm_start, vma->vm_end, VM_OFFSET(vma) + offset);
		vma->vm_ops = &drm_vm_ops;
		break;
	case _DRM_SHM:
		vma->vm_ops = &drm_vm_shm_ops;
#if LINUX_VERSION_CODE >= 0x020300
		vma->vm_private_data = (void *)map;
#else
		vma->vm_pte = (unsigned long)map;
#endif
				/* Don't let this area swap.  Change when
				   DRM_KERNEL advisory is supported. */
		vma->vm_flags |= VM_LOCKED;
		break;
	case _DRM_SCATTER_GATHER:
		vma->vm_ops = &drm_vm_sg_ops;
#if LINUX_VERSION_CODE >= 0x020300
		vma->vm_private_data = (void *)map;
#else
		vma->vm_pte = (unsigned long)map;
#endif
                vma->vm_flags |= VM_LOCKED;
                break;
	default:
		return -EINVAL;	/* This should never happen. */
	}
	vma->vm_flags |= VM_LOCKED | VM_SHM; /* Don't swap */

#if LINUX_VERSION_CODE < 0x020203 /* KERNEL_VERSION(2,2,3) */
				/* In Linux 2.2.3 and above, this is
				   handled in do_mmap() in mm/mmap.c. */
	++filp->f_count;
#endif
	vma->vm_file  =	 filp;	/* Needed for drm_vm_open() */
	DRM(vm_open)(vma);
	return 0;
}
#define MACH64_VERTEX_3_SECONDARY_S 0x02a0 #define MACH64_VERTEX_3_SECONDARY_T 0x02a4 #define MACH64_VERTEX_3_SECONDARY_W 0x02a8 #define MACH64_VERTEX_3_SPEC_ARGB 0x028c #define MACH64_VERTEX_3_T 0x0284 #define MACH64_VERTEX_3_W 0x0288 #define MACH64_VERTEX_3_X_Y 0x0298 #define MACH64_VERTEX_3_Z 0x0290 #define MACH64_Z_CNTL 0x054c #define MACH64_Z_OFF_PITCH 0x0548 #define MACH64_CRTC_VLINE_CRNT_VLINE 0x0410 # define MACH64_CRTC_VLINE_MASK 0x000007ff # define MACH64_CRTC_CRNT_VLINE_MASK 0x07ff0000 #define MACH64_CRTC_OFF_PITCH 0x0414 #define MACH64_CRTC_INT_CNTL 0x0418 # define MACH64_CRTC_VBLANK (1 << 0) # define MACH64_CRTC_VBLANK_INT_EN (1 << 1) # define MACH64_CRTC_VBLANK_INT (1 << 2) # define MACH64_CRTC_VLINE_INT_EN (1 << 3) # define MACH64_CRTC_VLINE_INT (1 << 4) # define MACH64_CRTC_VLINE_SYNC (1 << 5) /* 0=even, 1=odd */ # define MACH64_CRTC_FRAME (1 << 6) /* 0=even, 1=odd */ # define MACH64_CRTC_SNAPSHOT_INT_EN (1 << 7) # define MACH64_CRTC_SNAPSHOT_INT (1 << 8) # define MACH64_CRTC_I2C_INT_EN (1 << 9) # define MACH64_CRTC_I2C_INT (1 << 10) # define MACH64_CRTC2_VBLANK (1 << 11) /* LT Pro */ # define MACH64_CRTC2_VBLANK_INT_EN (1 << 12) /* LT Pro */ # define MACH64_CRTC2_VBLANK_INT (1 << 13) /* LT Pro */ # define MACH64_CRTC2_VLINE_INT_EN (1 << 14) /* LT Pro */ # define MACH64_CRTC2_VLINE_INT (1 << 15) /* LT Pro */ # define MACH64_CRTC_CAPBUF0_INT_EN (1 << 16) # define MACH64_CRTC_CAPBUF0_INT (1 << 17) # define MACH64_CRTC_CAPBUF1_INT_EN (1 << 18) # define MACH64_CRTC_CAPBUF1_INT (1 << 19) # define MACH64_CRTC_OVERLAY_EOF_INT_EN (1 << 20) # define MACH64_CRTC_OVERLAY_EOF_INT (1 << 21) # define MACH64_CRTC_ONESHOT_CAP_INT_EN (1 << 22) # define MACH64_CRTC_ONESHOT_CAP_INT (1 << 23) # define MACH64_CRTC_BUSMASTER_EOL_INT_EN (1 << 24) # define MACH64_CRTC_BUSMASTER_EOL_INT (1 << 25) # define MACH64_CRTC_GP_INT_EN (1 << 26) # define MACH64_CRTC_GP_INT (1 << 27) # define MACH64_CRTC2_VLINE_SYNC (1 << 28) /* LT Pro */ /* 0=even, 1=odd */ # define MACH64_CRTC_SNAPSHOT2_INT_EN (1 << 29) /* LT Pro */ # define MACH64_CRTC_SNAPSHOT2_INT (1 << 30) /* LT Pro */ # define MACH64_CRTC_VBLANK2_INT (1 << 31) # define MACH64_CRTC_INT_ENS \ ( \ MACH64_CRTC_VBLANK_INT_EN | \ MACH64_CRTC_VLINE_INT_EN | \ MACH64_CRTC_SNAPSHOT_INT_EN | \ MACH64_CRTC_I2C_INT_EN | \ MACH64_CRTC2_VBLANK_INT_EN | \ MACH64_CRTC2_VLINE_INT_EN | \ MACH64_CRTC_CAPBUF0_INT_EN | \ MACH64_CRTC_CAPBUF1_INT_EN | \ MACH64_CRTC_OVERLAY_EOF_INT_EN | \ MACH64_CRTC_ONESHOT_CAP_INT_EN | \ MACH64_CRTC_BUSMASTER_EOL_INT_EN | \ MACH64_CRTC_GP_INT_EN | \ MACH64_CRTC_SNAPSHOT2_INT_EN | \ 0 \ ) # define MACH64_CRTC_INT_ACKS \ ( \ MACH64_CRTC_VBLANK_INT | \ MACH64_CRTC_VLINE_INT | \ MACH64_CRTC_SNAPSHOT_INT | \ MACH64_CRTC_I2C_INT | \ MACH64_CRTC2_VBLANK_INT | \ MACH64_CRTC2_VLINE_INT | \ MACH64_CRTC_CAPBUF0_INT | \ MACH64_CRTC_CAPBUF1_INT | \ MACH64_CRTC_OVERLAY_EOF_INT | \ MACH64_CRTC_ONESHOT_CAP_INT | \ MACH64_CRTC_BUSMASTER_EOL_INT | \ MACH64_CRTC_GP_INT | \ MACH64_CRTC_SNAPSHOT2_INT | \ MACH64_CRTC_VBLANK2_INT | \ 0 \ ) #define MACH64_DATATYPE_CI8 2 #define MACH64_DATATYPE_ARGB1555 3 #define MACH64_DATATYPE_RGB565 4 #define MACH64_DATATYPE_ARGB8888 6 #define MACH64_DATATYPE_RGB332 7 #define MACH64_DATATYPE_Y8 8 #define MACH64_DATATYPE_RGB8 9 #define MACH64_DATATYPE_VYUY422 11 #define MACH64_DATATYPE_YVYU422 12 #define MACH64_DATATYPE_AYUV444 14 #define MACH64_DATATYPE_ARGB4444 15 #define MACH64_READ(reg) DRM_READ32(dev_priv->mmio, (reg) ) #define MACH64_WRITE(reg,val) DRM_WRITE32(dev_priv->mmio, (reg), (val) ) #define DWMREG0 0x0400 #define DWMREG0_END 0x07ff #define DWMREG1 0x0000 #define DWMREG1_END 0x03ff #define ISREG0(r) (((r) >= DWMREG0) && ((r) <= DWMREG0_END)) #define DMAREG0(r) (((r) - DWMREG0) >> 2) #define DMAREG1(r) ((((r) - DWMREG1) >> 2 ) | 0x0100) #define DMAREG(r) (ISREG0(r) ? DMAREG0(r) : DMAREG1(r)) #define MMREG0 0x0000 #define MMREG0_END 0x00ff #define ISMMREG0(r) (((r) >= MMREG0) && ((r) <= MMREG0_END)) #define MMSELECT0(r) (((r) << 2) + DWMREG0) #define MMSELECT1(r) (((((r) & 0xff) << 2) + DWMREG1)) #define MMSELECT(r) (ISMMREG0(r) ? MMSELECT0(r) : MMSELECT1(r)) /* ================================================================ * DMA constants */ /* DMA descriptor field indices: * The descriptor fields are loaded into the read-only * BM_* system bus master registers during a bus-master operation */ #define MACH64_DMA_FRAME_BUF_OFFSET 0 /* BM_FRAME_BUF_OFFSET */ #define MACH64_DMA_SYS_MEM_ADDR 1 /* BM_SYSTEM_MEM_ADDR */ #define MACH64_DMA_COMMAND 2 /* BM_COMMAND */ #define MACH64_DMA_RESERVED 3 /* BM_STATUS */ /* BM_COMMAND descriptor field flags */ #define MACH64_DMA_HOLD_OFFSET (1<<30) /* Don't increment DMA_FRAME_BUF_OFFSET */ #define MACH64_DMA_EOL (1<<31) /* End of descriptor list flag */ #define MACH64_DMA_CHUNKSIZE 0x1000 /* 4kB per DMA descriptor */ #define MACH64_APERTURE_OFFSET 0x7ff800 /* frame-buffer offset for gui-masters */ /* ================================================================ * Misc helper macros */ static __inline__ void mach64_set_dma_eol(volatile u32 * addr) { #if defined(__i386__) int nr = 31; /* Taken from include/asm-i386/bitops.h linux header */ __asm__ __volatile__("lock;" "btsl %1,%0":"=m"(*addr) :"Ir"(nr)); #elif defined(__powerpc__) u32 old; u32 mask = cpu_to_le32(MACH64_DMA_EOL); /* Taken from the include/asm-ppc/bitops.h linux header */ __asm__ __volatile__("\n\ 1: lwarx %0,0,%3 \n\ or %0,%0,%2 \n\ stwcx. %0,0,%3 \n\ bne- 1b":"=&r"(old), "=m"(*addr) :"r"(mask), "r"(addr), "m"(*addr) :"cc"); #elif defined(__alpha__) u32 temp; u32 mask = MACH64_DMA_EOL; /* Taken from the include/asm-alpha/bitops.h linux header */ __asm__ __volatile__("1: ldl_l %0,%3\n" " bis %0,%2,%0\n" " stl_c %0,%1\n" " beq %0,2f\n" ".subsection 2\n" "2: br 1b\n" ".previous":"=&r"(temp), "=m"(*addr) :"Ir"(mask), "m"(*addr)); #else u32 mask = cpu_to_le32(MACH64_DMA_EOL); *addr |= mask; #endif } static __inline__ void mach64_clear_dma_eol(volatile u32 * addr) { #if defined(__i386__) int nr = 31; /* Taken from include/asm-i386/bitops.h linux header */ __asm__ __volatile__("lock;" "btrl %1,%0":"=m"(*addr) :"Ir"(nr)); #elif defined(__powerpc__) u32 old; u32 mask = cpu_to_le32(MACH64_DMA_EOL); /* Taken from the include/asm-ppc/bitops.h linux header */ __asm__ __volatile__("\n\ 1: lwarx %0,0,%3 \n\ andc %0,%0,%2 \n\ stwcx. %0,0,%3 \n\ bne- 1b":"=&r"(old), "=m"(*addr) :"r"(mask), "r"(addr), "m"(*addr) :"cc"); #elif defined(__alpha__) u32 temp; u32 mask = ~MACH64_DMA_EOL; /* Taken from the include/asm-alpha/bitops.h linux header */ __asm__ __volatile__("1: ldl_l %0,%3\n" " and %0,%2,%0\n" " stl_c %0,%1\n" " beq %0,2f\n" ".subsection 2\n" "2: br 1b\n" ".previous":"=&r"(temp), "=m"(*addr) :"Ir"(mask), "m"(*addr)); #else u32 mask = cpu_to_le32(~MACH64_DMA_EOL); *addr &= mask; #endif } static __inline__ void mach64_ring_start(drm_mach64_private_t * dev_priv) { drm_mach64_descriptor_ring_t *ring = &dev_priv->ring; DRM_DEBUG("%s: head_addr: 0x%08x head: %d tail: %d space: %d\n", __FUNCTION__, ring->head_addr, ring->head, ring->tail, ring->space); if (mach64_do_wait_for_idle(dev_priv) < 0) { mach64_do_engine_reset(dev_priv); } if (dev_priv->driver_mode != MACH64_MODE_MMIO) { /* enable bus mastering and block 1 registers */ MACH64_WRITE(MACH64_BUS_CNTL, (MACH64_READ(MACH64_BUS_CNTL) & ~MACH64_BUS_MASTER_DIS) | MACH64_BUS_EXT_REG_EN); mach64_do_wait_for_idle(dev_priv); } /* reset descriptor table ring head */ MACH64_WRITE(MACH64_BM_GUI_TABLE_CMD, ring->head_addr | MACH64_CIRCULAR_BUF_SIZE_16KB); dev_priv->ring_running = 1; } static __inline__ void mach64_ring_resume(drm_mach64_private_t * dev_priv, drm_mach64_descriptor_ring_t * ring) { DRM_DEBUG("%s: head_addr: 0x%08x head: %d tail: %d space: %d\n", __FUNCTION__, ring->head_addr, ring->head, ring->tail, ring->space); /* reset descriptor table ring head */ MACH64_WRITE(MACH64_BM_GUI_TABLE_CMD, ring->head_addr | MACH64_CIRCULAR_BUF_SIZE_16KB); if (dev_priv->driver_mode == MACH64_MODE_MMIO) { mach64_do_dispatch_pseudo_dma(dev_priv); } else { /* enable GUI bus mastering, and sync the bus master to the GUI */ MACH64_WRITE(MACH64_SRC_CNTL, MACH64_SRC_BM_ENABLE | MACH64_SRC_BM_SYNC | MACH64_SRC_BM_OP_SYSTEM_TO_REG); /* kick off the transfer */ MACH64_WRITE(MACH64_DST_HEIGHT_WIDTH, 0); if (dev_priv->driver_mode == MACH64_MODE_DMA_SYNC) { if ((mach64_do_wait_for_idle(dev_priv)) < 0) { DRM_ERROR("%s: idle failed, resetting engine\n", __FUNCTION__); mach64_dump_engine_info(dev_priv); mach64_do_engine_reset(dev_priv); return; } mach64_do_release_used_buffers(dev_priv); } } } static __inline__ void mach64_ring_tick(drm_mach64_private_t * dev_priv, drm_mach64_descriptor_ring_t * ring) { DRM_DEBUG("%s: head_addr: 0x%08x head: %d tail: %d space: %d\n", __FUNCTION__, ring->head_addr, ring->head, ring->tail, ring->space); if (!dev_priv->ring_running) { mach64_ring_start(dev_priv); if (ring->head != ring->tail) { mach64_ring_resume(dev_priv, ring); } } else { /* GUI_ACTIVE must be read before BM_GUI_TABLE to * correctly determine the ring head */ int gui_active = MACH64_READ(MACH64_GUI_STAT) & MACH64_GUI_ACTIVE; ring->head_addr = MACH64_READ(MACH64_BM_GUI_TABLE) & 0xfffffff0; if (gui_active) { /* If not idle, BM_GUI_TABLE points one descriptor * past the current head */ if (ring->head_addr == ring->start_addr) { ring->head_addr += ring->size; } ring->head_addr -= 4 * sizeof(u32); } if (ring->head_addr < ring->start_addr || ring->head_addr >= ring->start_addr + ring->size) { DRM_ERROR("bad ring head address: 0x%08x\n", ring->head_addr); mach64_dump_ring_info(dev_priv); mach64_do_engine_reset(dev_priv); return; } ring->head = (ring->head_addr - ring->start_addr) / sizeof(u32); if (!gui_active && ring->head != ring->tail) { mach64_ring_resume(dev_priv, ring); } } } static __inline__ void mach64_ring_stop(drm_mach64_private_t * dev_priv) { DRM_DEBUG("%s: head_addr: 0x%08x head: %d tail: %d space: %d\n", __FUNCTION__, dev_priv->ring.head_addr, dev_priv->ring.head, dev_priv->ring.tail, dev_priv->ring.space); /* restore previous SRC_CNTL to disable busmastering */ mach64_do_wait_for_fifo(dev_priv, 1); MACH64_WRITE(MACH64_SRC_CNTL, 0); /* disable busmastering but keep the block 1 registers enabled */ mach64_do_wait_for_idle(dev_priv); MACH64_WRITE(MACH64_BUS_CNTL, MACH64_READ(MACH64_BUS_CNTL) | MACH64_BUS_MASTER_DIS | MACH64_BUS_EXT_REG_EN); dev_priv->ring_running = 0; } static __inline__ void mach64_update_ring_snapshot(drm_mach64_private_t * dev_priv) { drm_mach64_descriptor_ring_t *ring = &dev_priv->ring; DRM_DEBUG("%s\n", __FUNCTION__); mach64_ring_tick(dev_priv, ring); ring->space = (ring->head - ring->tail) * sizeof(u32); if (ring->space <= 0) { ring->space += ring->size; } } /* ================================================================ * DMA descriptor ring macros */ #define RING_LOCALS \ int _ring_tail, _ring_write; unsigned int _ring_mask; volatile u32 *_ring #define RING_WRITE_OFS _ring_write #define BEGIN_RING( n ) \ do { \ if ( MACH64_VERBOSE ) { \ DRM_INFO( "BEGIN_RING( %d ) in %s\n", \ (n), __FUNCTION__ ); \ } \ if ( dev_priv->ring.space <= (n) * sizeof(u32) ) { \ int ret; \ if ((ret=mach64_wait_ring( dev_priv, (n) * sizeof(u32))) < 0 ) { \ DRM_ERROR( "wait_ring failed, resetting engine\n"); \ mach64_dump_engine_info( dev_priv ); \ mach64_do_engine_reset( dev_priv ); \ return ret; \ } \ } \ dev_priv->ring.space -= (n) * sizeof(u32); \ _ring = (u32 *) dev_priv->ring.start; \ _ring_tail = _ring_write = dev_priv->ring.tail; \ _ring_mask = dev_priv->ring.tail_mask; \ } while (0) #define OUT_RING( x ) \ do { \ if ( MACH64_VERBOSE ) { \ DRM_INFO( " OUT_RING( 0x%08x ) at 0x%x\n", \ (unsigned int)(x), _ring_write ); \ } \ _ring[_ring_write++] = cpu_to_le32( x ); \ _ring_write &= _ring_mask; \ } while (0) #define ADVANCE_RING() \ do { \ if ( MACH64_VERBOSE ) { \ DRM_INFO( "ADVANCE_RING() wr=0x%06x tail=0x%06x\n", \ _ring_write, _ring_tail ); \ } \ DRM_MEMORYBARRIER(); \ mach64_clear_dma_eol( &_ring[(_ring_tail - 2) & _ring_mask] ); \ DRM_MEMORYBARRIER(); \ dev_priv->ring.tail = _ring_write; \ mach64_ring_tick( dev_priv, &(dev_priv)->ring ); \ } while (0) /* ================================================================ * DMA macros */ #define DMALOCALS \ drm_mach64_freelist_t *_entry = NULL; \ struct drm_buf *_buf = NULL; \ u32 *_buf_wptr; int _outcount #define GETBUFPTR( __buf ) \ ((dev_priv->is_pci) ? \ ((u32 *)(__buf)->address) : \ ((u32 *)((char *)dev_priv->dev_buffers->handle + (__buf)->offset))) #define GETBUFADDR( __buf ) ((u32)(__buf)->bus_address) #define GETRINGOFFSET() (_entry->ring_ofs) static __inline__ int mach64_find_pending_buf_entry(drm_mach64_private_t * dev_priv, drm_mach64_freelist_t ** entry, struct drm_buf * buf) { struct list_head *ptr; #if MACH64_EXTRA_CHECKING if (list_empty(&dev_priv->pending)) { DRM_ERROR("Empty pending list in %s\n", __FUNCTION__); return -EINVAL; } #endif ptr = dev_priv->pending.prev; *entry = list_entry(ptr, drm_mach64_freelist_t, list); while ((*entry)->buf != buf) { if (ptr == &dev_priv->pending) { return -EFAULT; } ptr = ptr->prev; *entry = list_entry(ptr, drm_mach64_freelist_t, list); } return 0; } #define DMASETPTR( _p ) \ do { \ _buf = (_p); \ _outcount = 0; \ _buf_wptr = GETBUFPTR( _buf ); \ } while(0) /* FIXME: use a private set of smaller buffers for state emits, clears, and swaps? */ #define DMAGETPTR( file_priv, dev_priv, n ) \ do { \ if ( MACH64_VERBOSE ) { \ DRM_INFO( "DMAGETPTR( %d ) in %s\n", \ n, __FUNCTION__ ); \ } \ _buf = mach64_freelist_get( dev_priv ); \ if (_buf == NULL) { \ DRM_ERROR("%s: couldn't get buffer in DMAGETPTR\n", \ __FUNCTION__ ); \ return -EAGAIN; \ } \ if (_buf->pending) { \ DRM_ERROR("%s: pending buf in DMAGETPTR\n", \ __FUNCTION__ ); \ return -EFAULT; \ } \ _buf->file_priv = file_priv; \ _outcount = 0; \ \ _buf_wptr = GETBUFPTR( _buf ); \ } while (0) #define DMAOUTREG( reg, val ) \ do { \ if ( MACH64_VERBOSE ) { \ DRM_INFO( " DMAOUTREG( 0x%x = 0x%08x )\n", \ reg, val ); \ } \ _buf_wptr[_outcount++] = cpu_to_le32(DMAREG(reg)); \ _buf_wptr[_outcount++] = cpu_to_le32((val)); \ _buf->used += 8; \ } while (0) #define DMAADVANCE( dev_priv, _discard ) \ do { \ struct list_head *ptr; \ RING_LOCALS; \ \ if ( MACH64_VERBOSE ) { \ DRM_INFO( "DMAADVANCE() in %s\n", __FUNCTION__ ); \ } \ \ if (_buf->used <= 0) { \ DRM_ERROR( "DMAADVANCE() in %s: sending empty buf %d\n", \ __FUNCTION__, _buf->idx ); \ return -EFAULT; \ } \ if (_buf->pending) { \ /* This is a resued buffer, so we need to find it in the pending list */ \ int ret; \ if ( (ret=mach64_find_pending_buf_entry(dev_priv, &_entry, _buf)) ) { \ DRM_ERROR( "DMAADVANCE() in %s: couldn't find pending buf %d\n", \ __FUNCTION__, _buf->idx ); \ return ret; \ } \ if (_entry->discard) { \ DRM_ERROR( "DMAADVANCE() in %s: sending discarded pending buf %d\n", \ __FUNCTION__, _buf->idx ); \ return -EFAULT; \ } \ } else { \ if (list_empty(&dev_priv->placeholders)) { \ DRM_ERROR( "DMAADVANCE() in %s: empty placeholder list\n", \ __FUNCTION__ ); \ return -EFAULT; \ } \ ptr = dev_priv->placeholders.next; \ list_del(ptr); \ _entry = list_entry(ptr, drm_mach64_freelist_t, list); \ _buf->pending = 1; \ _entry->buf = _buf; \ list_add_tail(ptr, &dev_priv->pending); \ } \ _entry->discard = (_discard); \ ADD_BUF_TO_RING( dev_priv ); \ } while (0) #define DMADISCARDBUF() \ do { \ if (_entry == NULL) { \ int ret; \ if ( (ret=mach64_find_pending_buf_entry(dev_priv, &_entry, _buf)) ) { \ DRM_ERROR( "%s: couldn't find pending buf %d\n", \ __FUNCTION__, _buf->idx ); \ return ret; \ } \ } \ _entry->discard = 1; \ } while(0) #define ADD_BUF_TO_RING( dev_priv ) \ do { \ int bytes, pages, remainder; \ u32 address, page; \ int i; \ \ bytes = _buf->used; \ address = GETBUFADDR( _buf ); \ \ pages = (bytes + MACH64_DMA_CHUNKSIZE - 1) / MACH64_DMA_CHUNKSIZE; \ \ BEGIN_RING( pages * 4 ); \ \ for ( i = 0 ; i < pages-1 ; i++ ) { \ page = address + i * MACH64_DMA_CHUNKSIZE; \ OUT_RING( MACH64_APERTURE_OFFSET + MACH64_BM_ADDR ); \ OUT_RING( page ); \ OUT_RING( MACH64_DMA_CHUNKSIZE | MACH64_DMA_HOLD_OFFSET ); \ OUT_RING( 0 ); \ } \ \ /* generate the final descriptor for any remaining commands in this buffer */ \ page = address + i * MACH64_DMA_CHUNKSIZE; \ remainder = bytes - i * MACH64_DMA_CHUNKSIZE; \ \ /* Save dword offset of last descriptor for this buffer. \ * This is needed to check for completion of the buffer in freelist_get \ */ \ _entry->ring_ofs = RING_WRITE_OFS; \ \ OUT_RING( MACH64_APERTURE_OFFSET + MACH64_BM_ADDR ); \ OUT_RING( page ); \ OUT_RING( remainder | MACH64_DMA_HOLD_OFFSET | MACH64_DMA_EOL ); \ OUT_RING( 0 ); \ \ ADVANCE_RING(); \ } while(0) #define DMAADVANCEHOSTDATA( dev_priv ) \ do { \ struct list_head *ptr; \ RING_LOCALS; \ \ if ( MACH64_VERBOSE ) { \ DRM_INFO( "DMAADVANCEHOSTDATA() in %s\n", __FUNCTION__ ); \ } \ \ if (_buf->used <= 0) { \ DRM_ERROR( "DMAADVANCEHOSTDATA() in %s: sending empty buf %d\n", \ __FUNCTION__, _buf->idx ); \ return -EFAULT; \ } \ if (list_empty(&dev_priv->placeholders)) { \ DRM_ERROR( "%s: empty placeholder list in DMAADVANCEHOSTDATA()\n", \ __FUNCTION__ ); \ return -EFAULT; \ } \ \ ptr = dev_priv->placeholders.next; \ list_del(ptr); \ _entry = list_entry(ptr, drm_mach64_freelist_t, list); \ _entry->buf = _buf; \ _entry->buf->pending = 1; \ list_add_tail(ptr, &dev_priv->pending); \ _entry->discard = 1; \ ADD_HOSTDATA_BUF_TO_RING( dev_priv ); \ } while (0) #define ADD_HOSTDATA_BUF_TO_RING( dev_priv ) \ do { \ int bytes, pages, remainder; \ u32 address, page; \ int i; \ \ bytes = _buf->used - MACH64_HOSTDATA_BLIT_OFFSET; \ pages = (bytes + MACH64_DMA_CHUNKSIZE - 1) / MACH64_DMA_CHUNKSIZE; \ address = GETBUFADDR( _buf ); \ \ BEGIN_RING( 4 + pages * 4 ); \ \ OUT_RING( MACH64_APERTURE_OFFSET + MACH64_BM_ADDR ); \ OUT_RING( address ); \ OUT_RING( MACH64_HOSTDATA_BLIT_OFFSET | MACH64_DMA_HOLD_OFFSET ); \ OUT_RING( 0 ); \ \ address += MACH64_HOSTDATA_BLIT_OFFSET; \ \ for ( i = 0 ; i < pages-1 ; i++ ) { \ page = address + i * MACH64_DMA_CHUNKSIZE; \ OUT_RING( MACH64_APERTURE_OFFSET + MACH64_BM_HOSTDATA ); \ OUT_RING( page ); \ OUT_RING( MACH64_DMA_CHUNKSIZE | MACH64_DMA_HOLD_OFFSET ); \ OUT_RING( 0 ); \ } \ \ /* generate the final descriptor for any remaining commands in this buffer */ \ page = address + i * MACH64_DMA_CHUNKSIZE; \ remainder = bytes - i * MACH64_DMA_CHUNKSIZE; \ \ /* Save dword offset of last descriptor for this buffer. \ * This is needed to check for completion of the buffer in freelist_get \ */ \ _entry->ring_ofs = RING_WRITE_OFS; \ \ OUT_RING( MACH64_APERTURE_OFFSET + MACH64_BM_HOSTDATA ); \ OUT_RING( page ); \ OUT_RING( remainder | MACH64_DMA_HOLD_OFFSET | MACH64_DMA_EOL ); \ OUT_RING( 0 ); \ \ ADVANCE_RING(); \ } while(0) #endif /* __MACH64_DRV_H__ */