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path: root/linux/drm_bufs.h
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/* drm_bufs.h -- Generic buffer template -*- linux-c -*-
 * Created: Thu Nov 23 03:10:50 2000 by gareth@valinux.com
 *
 * Copyright 1999, 2000 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 <linux/vmalloc.h>
#include "drmP.h"

#ifndef __HAVE_PCI_DMA
#define __HAVE_PCI_DMA		0
#endif

#ifndef __HAVE_SG
#define __HAVE_SG		0
#endif

#ifndef DRIVER_BUF_PRIV_T
#define DRIVER_BUF_PRIV_T		u32
#endif
#ifndef DRIVER_AGP_BUFFERS_MAP
#if __HAVE_AGP && __HAVE_DMA
#error "You must define DRIVER_AGP_BUFFERS_MAP()"
#else
#define DRIVER_AGP_BUFFERS_MAP( dev )	NULL
#endif
#endif

/*
 * Compute order.  Can be made faster.
 */
int DRM(order)( unsigned long size )
{
	int order;
	unsigned long tmp;

	for ( order = 0, tmp = size ; tmp >>= 1 ; ++order );

	if ( size & ~(1 << order) )
		++order;

	return order;
}

int DRM(addmap)( struct inode *inode, struct file *filp,
		 unsigned int cmd, unsigned long arg )
{
	drm_file_t *priv = filp->private_data;
	drm_device_t *dev = priv->dev;
	drm_map_t *map;
	drm_map_list_t *list;

	if ( !(filp->f_mode & 3) ) return -EACCES; /* Require read/write */

	map = DRM(alloc)( sizeof(*map), DRM_MEM_MAPS );
	if ( !map )
		return -ENOMEM;

	if ( copy_from_user( map, (drm_map_t *)arg, sizeof(*map) ) ) {
		DRM(free)( map, sizeof(*map), DRM_MEM_MAPS );
		return -EFAULT;
	}

	/* Only allow shared memory to be removable since we only keep enough
	 * book keeping information about shared memory to allow for removal
	 * when processes fork.
	 */
	if ( (map->flags & _DRM_REMOVABLE) && map->type != _DRM_SHM ) {
		DRM(free)( map, sizeof(*map), DRM_MEM_MAPS );
		return -EINVAL;
	}
	DRM_DEBUG( "offset = 0x%08lx, size = 0x%08lx, type = %d\n",
		   map->offset, map->size, map->type );
	if ( (map->offset & (~PAGE_MASK)) || (map->size & (~PAGE_MASK)) ) {
		DRM(free)( map, sizeof(*map), DRM_MEM_MAPS );
		return -EINVAL;
	}
	map->mtrr   = -1;
	map->handle = 0;

	switch ( map->type ) {
	case _DRM_REGISTERS:
	case _DRM_FRAME_BUFFER:
#if !defined(__sparc__) && !defined(__alpha__)
		if ( map->offset + map->size < map->offset ||
		     map->offset < virt_to_phys(high_memory) ) {
			DRM(free)( map, sizeof(*map), DRM_MEM_MAPS );
			return -EINVAL;
		}
#endif
#ifdef __alpha__
		map->offset += dev->hose->mem_space->start;
#endif
#if __REALLY_HAVE_MTRR
		if ( map->type == _DRM_FRAME_BUFFER ||
		     (map->flags & _DRM_WRITE_COMBINING) ) {
			map->mtrr = mtrr_add( map->offset, map->size,
					      MTRR_TYPE_WRCOMB, 1 );
		}
#endif
		map->handle = DRM(ioremap)( map->offset, map->size );
		break;

	case _DRM_SHM:
		map->handle = vmalloc_32(map->size);
		DRM_DEBUG( "%ld %d %p\n",
			   map->size, DRM(order)( map->size ), map->handle );
		if ( !map->handle ) {
			DRM(free)( map, sizeof(*map), DRM_MEM_MAPS );
			return -ENOMEM;
		}
		map->offset = (unsigned long)map->handle;
		if ( map->flags & _DRM_CONTAINS_LOCK ) {
			dev->lock.hw_lock = map->handle; /* Pointer to lock */
		}
		break;
#if __REALLY_HAVE_AGP
	case _DRM_AGP:
#ifdef __alpha__
		map->offset += dev->hose->mem_space->start;
#endif
		map->offset = map->offset + dev->agp->base;
		map->mtrr   = dev->agp->agp_mtrr; /* for getmap */
		break;
#endif
	case _DRM_SCATTER_GATHER:
		if (!dev->sg) {
			DRM(free)(map, sizeof(*map), DRM_MEM_MAPS);
			return -EINVAL;
		}
		map->offset = map->offset + dev->sg->handle;
		break;

	default:
		DRM(free)( map, sizeof(*map), DRM_MEM_MAPS );
		return -EINVAL;
	}

	list = DRM(alloc)(sizeof(*list), DRM_MEM_MAPS);
	if(!list) {
		DRM(free)(map, sizeof(*map), DRM_MEM_MAPS);
		return -EINVAL;
	}
	memset(list, 0, sizeof(*list));
	list->map = map;

	down(&dev->struct_sem);
	list_add(&list->head, &dev->maplist->head);
 	up(&dev->struct_sem);

	if ( copy_to_user( (drm_map_t *)arg, map, sizeof(*map) ) )
		return -EFAULT;
	if ( map->type != _DRM_SHM ) {
		if ( copy_to_user( &((drm_map_t *)arg)->handle,
				   &map->offset,
				   sizeof(map->offset) ) )
			return -EFAULT;
	}
	return 0;
}


/* Remove a map private from list and deallocate resources if the mapping
 * isn't in use.
 */

int DRM(rmmap)(struct inode *inode, struct file *filp,
	       unsigned int cmd, unsigned long arg)
{
	drm_file_t	*priv	= filp->private_data;
	drm_device_t	*dev	= priv->dev;
	struct list_head *list;
	drm_map_list_t *r_list = NULL;
	drm_vma_entry_t *pt, *prev;
	drm_map_t *map;
	drm_map_t request;
	int found_maps = 0;

	if (copy_from_user(&request, (drm_map_t *)arg,
			   sizeof(request))) {
		return -EFAULT;
	}

	down(&dev->struct_sem);
	list = &dev->maplist->head;
	list_for_each(list, &dev->maplist->head) {
		r_list = (drm_map_list_t *) list;

		if(r_list->map &&
		   r_list->map->handle == request.handle &&
		   r_list->map->flags & _DRM_REMOVABLE) break;
	}

	/* List has wrapped around to the head pointer, or its empty we didn't
	 * find anything.
	 */
	if(list == (&dev->maplist->head)) {
		up(&dev->struct_sem);
		return -EINVAL;
	}
	map = r_list->map;
	list_del(list);
	DRM(free)(list, sizeof(*list), DRM_MEM_MAPS);

	for (pt = dev->vmalist, prev = NULL; pt; prev = pt, pt = pt->next) {
		if (pt->vma->vm_private_data == 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);
	return 0;
}

#if __HAVE_DMA


static void DRM(cleanup_buf_error)(drm_buf_entry_t *entry)
{
	int i;

	if (entry->seg_count) {
		for (i = 0; i < entry->seg_count; i++) {
			DRM(free_pages)(entry->seglist[i],
					entry->page_order,
					DRM_MEM_DMA);
		}
		DRM(free)(entry->seglist,
			  entry->seg_count *
			  sizeof(*entry->seglist),
			  DRM_MEM_SEGS);

		entry->seg_count = 0;
	}

   	if(entry->buf_count) {
	   	for(i = 0; i < entry->buf_count; i++) {
			if(entry->buflist[i].dev_private) {
				DRM(free)(entry->buflist[i].dev_private,
					  entry->buflist[i].dev_priv_size,
					  DRM_MEM_BUFS);
			}
		}
		DRM(free)(entry->buflist,
			  entry->buf_count *
			  sizeof(*entry->buflist),
			  DRM_MEM_BUFS);

#if __HAVE_DMA_FREELIST
	   	DRM(freelist_destroy)(&entry->freelist);
#endif

		entry->buf_count = 0;
	}
}

#if __REALLY_HAVE_AGP
int DRM(addbufs_agp)( struct inode *inode, struct file *filp,
		      unsigned int cmd, unsigned long arg )
{
	drm_file_t *priv = filp->private_data;
	drm_device_t *dev = priv->dev;
	drm_device_dma_t *dma = dev->dma;
	drm_buf_desc_t request;
	drm_buf_entry_t *entry;
	drm_buf_t *buf;
	unsigned long offset;
	unsigned long agp_offset;
	int count;
	int order;
	int size;
	int alignment;
	int page_order;
	int total;
	int byte_count;
	int i;
	drm_buf_t **temp_buflist;

	if ( !dma ) return -EINVAL;

	if ( copy_from_user( &request, (drm_buf_desc_t *)arg,
			     sizeof(request) ) )
		return -EFAULT;

	count = request.count;
	order = DRM(order)( request.size );
	size = 1 << order;

	alignment  = (request.flags & _DRM_PAGE_ALIGN)
		? PAGE_ALIGN(size) : size;
	page_order = order - PAGE_SHIFT > 0 ? order - PAGE_SHIFT : 0;
	total = PAGE_SIZE << page_order;

	byte_count = 0;
	agp_offset = dev->agp->base + request.agp_start;

	DRM_DEBUG( "count:      %d\n",  count );
	DRM_DEBUG( "order:      %d\n",  order );
	DRM_DEBUG( "size:       %d\n",  size );
	DRM_DEBUG( "agp_offset: %ld\n", agp_offset );
	DRM_DEBUG( "alignment:  %d\n",  alignment );
	DRM_DEBUG( "page_order: %d\n",  page_order );
	DRM_DEBUG( "total:      %d\n",  total );

	if ( order < DRM_MIN_ORDER || order > DRM_MAX_ORDER ) return -EINVAL;
	if ( dev->queue_count ) return -EBUSY; /* Not while in use */

	spin_lock( &dev->count_lock );
	if ( dev->buf_use ) {
		spin_unlock( &dev->count_lock );
		return -EBUSY;
	}
	atomic_inc( &dev->buf_alloc );
	spin_unlock( &dev->count_lock );

	down( &dev->struct_sem );
	entry = &dma->bufs[order];
	if ( entry->buf_count ) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM; /* May only call once for each order */
	}

	if (count < 0 || count > 4096) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -EINVAL;
	}

	entry->buflist = DRM(alloc)( count * sizeof(*entry->buflist),
				    DRM_MEM_BUFS );
	if ( !entry->buflist ) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;
	}
	memset( entry->buflist, 0, count * sizeof(*entry->buflist) );

	entry->buf_size = size;
	entry->page_order = page_order;

	offset = 0;

	while ( entry->buf_count < count ) {
		buf          = &entry->buflist[entry->buf_count];
		buf->idx     = dma->buf_count + entry->buf_count;
		buf->total   = alignment;
		buf->order   = order;
		buf->used    = 0;

		buf->offset  = (dma->byte_count + offset);
		buf->bus_address = agp_offset + offset;
		buf->address = (void *)(agp_offset + offset);
		buf->next    = NULL;
		buf->waiting = 0;
		buf->pending = 0;
		init_waitqueue_head( &buf->dma_wait );
		buf->pid     = 0;

		buf->dev_priv_size = sizeof(DRIVER_BUF_PRIV_T);
		buf->dev_private = DRM(alloc)( sizeof(DRIVER_BUF_PRIV_T),
					       DRM_MEM_BUFS );
		if(!buf->dev_private) {
			/* Set count correctly so we free the proper amount. */
			entry->buf_count = count;
			DRM(cleanup_buf_error)(entry);
		}
		memset( buf->dev_private, 0, buf->dev_priv_size );

#if __HAVE_DMA_HISTOGRAM
		buf->time_queued = 0;
		buf->time_dispatched = 0;
		buf->time_completed = 0;
		buf->time_freed = 0;
#endif
		DRM_DEBUG( "buffer %d @ %p\n",
			   entry->buf_count, buf->address );

		offset += alignment;
		entry->buf_count++;
		byte_count += PAGE_SIZE << page_order;
	}

	DRM_DEBUG( "byte_count: %d\n", byte_count );

	temp_buflist = DRM(realloc)( dma->buflist,
				     dma->buf_count * sizeof(*dma->buflist),
				     (dma->buf_count + entry->buf_count)
				     * sizeof(*dma->buflist),
				     DRM_MEM_BUFS );
	if(!temp_buflist) {
		/* Free the entry because it isn't valid */
		DRM(cleanup_buf_error)(entry);
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;
	}
	dma->buflist = temp_buflist;

	for ( i = 0 ; i < entry->buf_count ; i++ ) {
		dma->buflist[i + dma->buf_count] = &entry->buflist[i];
	}

	dma->buf_count += entry->buf_count;
	dma->byte_count += byte_count;

	DRM_DEBUG( "dma->buf_count : %d\n", dma->buf_count );
	DRM_DEBUG( "entry->buf_count : %d\n", entry->buf_count );

#if __HAVE_DMA_FREELIST
	DRM(freelist_create)( &entry->freelist, entry->buf_count );
	for ( i = 0 ; i < entry->buf_count ; i++ ) {
		DRM(freelist_put)( dev, &entry->freelist, &entry->buflist[i] );
	}
#endif
	up( &dev->struct_sem );

	request.count = entry->buf_count;
	request.size = size;

	if ( copy_to_user( (drm_buf_desc_t *)arg, &request, sizeof(request) ) )
		return -EFAULT;

	dma->flags = _DRM_DMA_USE_AGP;

	atomic_dec( &dev->buf_alloc );
	return 0;
}
#endif /* __REALLY_HAVE_AGP */

#if __HAVE_PCI_DMA
int DRM(addbufs_pci)( struct inode *inode, struct file *filp,
		      unsigned int cmd, unsigned long arg )
{
   	drm_file_t *priv = filp->private_data;
	drm_device_t *dev = priv->dev;
	drm_device_dma_t *dma = dev->dma;
	drm_buf_desc_t request;
	int count;
	int order;
	int size;
	int total;
	int page_order;
	drm_buf_entry_t *entry;
	unsigned long page;
	drm_buf_t *buf;
	int alignment;
	unsigned long offset;
	int i;
	int byte_count;
	int page_count;
	unsigned long *temp_pagelist;
	drm_buf_t **temp_buflist;

	if ( !dma ) return -EINVAL;

	if ( copy_from_user( &request, (drm_buf_desc_t *)arg,
			     sizeof(request) ) )
		return -EFAULT;

	count = request.count;
	order = DRM(order)( request.size );
	size = 1 << order;

	DRM_DEBUG( "count=%d, size=%d (%d), order=%d, queue_count=%d\n",
		   request.count, request.size, size,
		   order, dev->queue_count );

	if ( order < DRM_MIN_ORDER || order > DRM_MAX_ORDER ) return -EINVAL;
	if ( dev->queue_count ) return -EBUSY; /* Not while in use */

	alignment = (request.flags & _DRM_PAGE_ALIGN)
		? PAGE_ALIGN(size) : size;
	page_order = order - PAGE_SHIFT > 0 ? order - PAGE_SHIFT : 0;
	total = PAGE_SIZE << page_order;

	spin_lock( &dev->count_lock );
	if ( dev->buf_use ) {
		spin_unlock( &dev->count_lock );
		return -EBUSY;
	}
	atomic_inc( &dev->buf_alloc );
	spin_unlock( &dev->count_lock );

	down( &dev->struct_sem );
	entry = &dma->bufs[order];
	if ( entry->buf_count ) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;	/* May only call once for each order */
	}

	if (count < 0 || count > 4096) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -EINVAL;
	}

	entry->buflist = DRM(alloc)( count * sizeof(*entry->buflist),
				    DRM_MEM_BUFS );
	if ( !entry->buflist ) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;
	}
	memset( entry->buflist, 0, count * sizeof(*entry->buflist) );

	entry->seglist = DRM(alloc)( count * sizeof(*entry->seglist),
				    DRM_MEM_SEGS );
	if ( !entry->seglist ) {
		DRM(free)( entry->buflist,
			  count * sizeof(*entry->buflist),
			  DRM_MEM_BUFS );
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;
	}
	memset( entry->seglist, 0, count * sizeof(*entry->seglist) );

	temp_pagelist = DRM(realloc)( dma->pagelist,
				      dma->page_count * sizeof(*dma->pagelist),
				      (dma->page_count + (count << page_order))
				      * sizeof(*dma->pagelist),
				      DRM_MEM_PAGES );
	if(!temp_pagelist) {
		DRM(free)( entry->buflist,
			   count * sizeof(*entry->buflist),
			   DRM_MEM_BUFS );
		DRM(free)( entry->seglist,
			   count * sizeof(*entry->seglist),
			   DRM_MEM_SEGS );
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;
	}

	dma->pagelist = temp_pagelist;
	DRM_DEBUG( "pagelist: %d entries\n",
		   dma->page_count + (count << page_order) );

	entry->buf_size	= size;
	entry->page_order = page_order;
	byte_count = 0;
	page_count = 0;

	while ( entry->buf_count < count ) {
		page = DRM(alloc_pages)( page_order, DRM_MEM_DMA );
		if ( !page ) break;
		entry->seglist[entry->seg_count++] = page;
		for ( i = 0 ; i < (1 << page_order) ; i++ ) {
			DRM_DEBUG( "page %d @ 0x%08lx\n",
				   dma->page_count + page_count,
				   page + PAGE_SIZE * i );
			dma->pagelist[dma->page_count + page_count++]
				= page + PAGE_SIZE * i;
		}
		for ( offset = 0 ;
		      offset + size <= total && entry->buf_count < count ;
		      offset += alignment, ++entry->buf_count ) {
			buf	     = &entry->buflist[entry->buf_count];
			buf->idx     = dma->buf_count + entry->buf_count;
			buf->total   = alignment;
			buf->order   = order;
			buf->used    = 0;
			buf->offset  = (dma->byte_count + byte_count + offset);
			buf->address = (void *)(page + offset);
			buf->next    = NULL;
			buf->waiting = 0;
			buf->pending = 0;
			init_waitqueue_head( &buf->dma_wait );
			buf->pid     = 0;
#if __HAVE_DMA_HISTOGRAM
			buf->time_queued     = 0;
			buf->time_dispatched = 0;
			buf->time_completed  = 0;
			buf->time_freed      = 0;
#endif
			DRM_DEBUG( "buffer %d @ %p\n",
				   entry->buf_count, buf->address );
		}
		byte_count += PAGE_SIZE << page_order;
	}

	temp_buflist = DRM(realloc)( dma->buflist,
				     dma->buf_count * sizeof(*dma->buflist),
				     (dma->buf_count + entry->buf_count)
				     * sizeof(*dma->buflist),
				     DRM_MEM_BUFS );
	if(!temp_buflist) {
		/* Free the entry because it isn't valid */
		DRM(cleanup_buf_error)(entry);
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;
	}
	dma->buflist = temp_buflist;

	for ( i = 0 ; i < entry->buf_count ; i++ ) {
		dma->buflist[i + dma->buf_count] = &entry->buflist[i];
	}

	dma->buf_count += entry->buf_count;
	dma->seg_count += entry->seg_count;
	dma->page_count += entry->seg_count << page_order;
	dma->byte_count += PAGE_SIZE * (entry->seg_count << page_order);

#if __HAVE_DMA_FREELIST
	DRM(freelist_create)( &entry->freelist, entry->buf_count );
	for ( i = 0 ; i < entry->buf_count ; i++ ) {
		DRM(freelist_put)( dev, &entry->freelist, &entry->buflist[i] );
	}
#endif
	up( &dev->struct_sem );

	request.count = entry->buf_count;
	request.size = size;

	if ( copy_to_user( (drm_buf_desc_t *)arg, &request, sizeof(request) ) )
		return -EFAULT;

	atomic_dec( &dev->buf_alloc );
	return 0;

}
#endif /* __HAVE_PCI_DMA */

#ifdef __HAVE_SG
int DRM(addbufs_sg)( struct inode *inode, struct file *filp,
                     unsigned int cmd, unsigned long arg )
{
	drm_file_t *priv = filp->private_data;
	drm_device_t *dev = priv->dev;
	drm_device_dma_t *dma = dev->dma;
	drm_buf_desc_t request;
	drm_buf_entry_t *entry;
	drm_buf_t *buf;
	unsigned long offset;
	unsigned long agp_offset;
	int count;
	int order;
	int size;
	int alignment;
	int page_order;
	int total;
	int byte_count;
	int i;
	drm_buf_t **temp_buflist;

	if ( !dma ) return -EINVAL;

	if ( copy_from_user( &request, (drm_buf_desc_t *)arg,
                             sizeof(request) ) )
		return -EFAULT;

	count = request.count;
	order = DRM(order)( request.size );
	size = 1 << order;

	alignment  = (request.flags & _DRM_PAGE_ALIGN)
			? PAGE_ALIGN(size) : size;
	page_order = order - PAGE_SHIFT > 0 ? order - PAGE_SHIFT : 0;
	total = PAGE_SIZE << page_order;

	byte_count = 0;
	agp_offset = request.agp_start;

	DRM_DEBUG( "count:      %d\n",  count );
	DRM_DEBUG( "order:      %d\n",  order );
	DRM_DEBUG( "size:       %d\n",  size );
	DRM_DEBUG( "agp_offset: %ld\n", agp_offset );
	DRM_DEBUG( "alignment:  %d\n",  alignment );
	DRM_DEBUG( "page_order: %d\n",  page_order );
	DRM_DEBUG( "total:      %d\n",  total );

	if ( order < DRM_MIN_ORDER || order > DRM_MAX_ORDER ) return -EINVAL;
	if ( dev->queue_count ) return -EBUSY; /* Not while in use */

	spin_lock( &dev->count_lock );
	if ( dev->buf_use ) {
		spin_unlock( &dev->count_lock );
		return -EBUSY;
	}
	atomic_inc( &dev->buf_alloc );
	spin_unlock( &dev->count_lock );

	down( &dev->struct_sem );
	entry = &dma->bufs[order];
	if ( entry->buf_count ) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM; /* May only call once for each order */
	}

	if (count < 0 || count > 4096) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -EINVAL;
	}

	entry->buflist = DRM(alloc)( count * sizeof(*entry->buflist),
				     DRM_MEM_BUFS );
	if ( !entry->buflist ) {
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;
	}
	memset( entry->buflist, 0, count * sizeof(*entry->buflist) );

	entry->buf_size = size;
	entry->page_order = page_order;

	offset = 0;

	while ( entry->buf_count < count ) {
		buf          = &entry->buflist[entry->buf_count];
		buf->idx     = dma->buf_count + entry->buf_count;
		buf->total   = alignment;
		buf->order   = order;
		buf->used    = 0;

		buf->offset  = (dma->byte_count + offset);
		buf->bus_address = agp_offset + offset;
		buf->address = (void *)(agp_offset + offset + dev->sg->handle);
		buf->next    = NULL;
		buf->waiting = 0;
		buf->pending = 0;
		init_waitqueue_head( &buf->dma_wait );
		buf->pid     = 0;

		buf->dev_priv_size = sizeof(DRIVER_BUF_PRIV_T);
		buf->dev_private = DRM(alloc)( sizeof(DRIVER_BUF_PRIV_T),
					       DRM_MEM_BUFS );
		if(!buf->dev_private) {
			/* Set count correctly so we free the proper amount. */
			entry->buf_count = count;
			DRM(cleanup_buf_error)(entry);
			up( &dev->struct_sem );
			atomic_dec( &dev->buf_alloc );
			return -ENOMEM;
		}

		memset( buf->dev_private, 0, buf->dev_priv_size );

# if __HAVE_DMA_HISTOGRAM
		buf->time_queued = 0;
		buf->time_dispatched = 0;
		buf->time_completed = 0;
		buf->time_freed = 0;
# endif
		DRM_DEBUG( "buffer %d @ %p\n",
			   entry->buf_count, buf->address );

		offset += alignment;
		entry->buf_count++;
		byte_count += PAGE_SIZE << page_order;
	}

	DRM_DEBUG( "byte_count: %d\n", byte_count );

	temp_buflist = DRM(realloc)( dma->buflist,
				     dma->buf_count * sizeof(*dma->buflist),
				     (dma->buf_count + entry->buf_count)
				     * sizeof(*dma->buflist),
				     DRM_MEM_BUFS );
	if(!temp_buflist) {
		/* Free the entry because it isn't valid */
		DRM(cleanup_buf_error)(entry);
		up( &dev->struct_sem );
		atomic_dec( &dev->buf_alloc );
		return -ENOMEM;
	}
	dma->buflist = temp_buflist;

	for ( i = 0 ; i < entry->buf_count ; i++ ) {
		dma->buflist[i + dma->buf_count] = &entry->buflist[i];
	}

	dma->buf_count += entry->buf_count;
	dma->byte_count += byte_count;

	DRM_DEBUG( "dma->buf_count : %d\n", dma->buf_count );
	DRM_DEBUG( "entry->buf_count : %d\n", entry->buf_count );

#if __HAVE_DMA_FREELIST
	DRM(freelist_create)( &entry->freelist, entry->buf_count );
	for ( i = 0 ; i < entry->buf_count ; i++ ) {
		DRM(freelist_put)( dev, &entry->freelist, &entry->buflist[i] );
	}
#endif
	up( &dev->struct_sem );

	request.count = entry->buf_count;
	request.size = size;

	if ( copy_to_user( (drm_buf_desc_t *)arg, &request, sizeof(request) ) )
		return -EFAULT;

	dma->flags = _DRM_DMA_USE_SG;

	atomic_dec( &dev->buf_alloc );
	return 0;
}
#endif /* __HAVE_SG */

int DRM(addbufs)( struct inode *inode, struct file *filp,
		  unsigned int cmd, unsigned long arg )
{
	drm_buf_desc_t request;

	if ( copy_from_user( &request, (drm_buf_desc_t *)arg,
			     sizeof(request) ) )
		return -EFAULT;

#if __REALLY_HAVE_AGP
	if ( request.flags & _DRM_AGP_BUFFER )
		return DRM(addbufs_agp)( inode, filp, cmd, arg );
	else
#endif
#if __HAVE_SG
	if ( request.flags & _DRM_SG_BUFFER )
		return DRM(addbufs_sg)( inode, filp, cmd, arg );
	else
#endif
#if __HAVE_PCI_DMA
		return DRM(addbufs_pci)( inode, filp, cmd, arg );
#else
		return -EINVAL;
#endif
}

int DRM(infobufs)( struct inode *inode, struct file *filp,
		   unsigned int cmd, unsigned long arg )
{
	drm_file_t *priv = filp->private_data;
	drm_device_t *dev = priv->dev;
	drm_device_dma_t *dma = dev->dma;
	drm_buf_info_t request;
	int i;
	int count;

	if ( !dma ) return -EINVAL;

	spin_lock( &dev->count_lock );
	if ( atomic_read( &dev->buf_alloc ) ) {
		spin_unlock( &dev->count_lock );
		return -EBUSY;
	}
	++dev->buf_use;		/* Can't allocate more after this call */
	spin_unlock( &dev->count_lock );

	if ( copy_from_user( &request,
			     (drm_buf_info_t *)arg,
			     sizeof(request) ) )
		return -EFAULT;

	for ( i = 0, count = 0 ; i < DRM_MAX_ORDER + 1 ; i++ ) {
		if ( dma->bufs[i].buf_count ) ++count;
	}

	DRM_DEBUG( "count = %d\n", count );

	if ( request.count >= count ) {
		for ( i = 0, count = 0 ; i < DRM_MAX_ORDER + 1 ; i++ ) {
			if ( dma->bufs[i].buf_count ) {
				drm_buf_desc_t *to = &request.list[count];
				drm_buf_entry_t *from = &dma->bufs[i];
				drm_freelist_t *list = &dma->bufs[i].freelist;
				if ( copy_to_user( &to->count,
						   &from->buf_count,
						   sizeof(from->buf_count) ) ||
				     copy_to_user( &to->size,
						   &from->buf_size,
						   sizeof(from->buf_size) ) ||
				     copy_to_user( &to->low_mark,
						   &list->low_mark,
						   sizeof(list->low_mark) ) ||
				     copy_to_user( &to->high_mark,
						   &list->high_mark,
						   sizeof(list->high_mark) ) )
					return -EFAULT;

				DRM_DEBUG( "%d %d %d %d %d\n",
					   i,
					   dma->bufs[i].buf_count,
					   dma->bufs[i].buf_size,
					   dma->bufs[i].freelist.low_mark,
					   dma->bufs[i].freelist.high_mark );
				++count;
			}
		}
	}
	request.count = count;

	if ( copy_to_user( (drm_buf_info_t *)arg,
			   &request,
			   sizeof(request) ) )
		return -EFAULT;

	return 0;
}

int DRM(markbufs)( struct inode *inode, struct file *filp,
		   unsigned int cmd, unsigned long arg )
{
	drm_file_t *priv = filp->private_data;
	drm_device_t *dev = priv->dev;
	drm_device_dma_t *dma = dev->dma;
	drm_buf_desc_t request;
	int order;
	drm_buf_entry_t *entry;

	if ( !dma ) return -EINVAL;

	if ( copy_from_user( &request,
			     (drm_buf_desc_t *)arg,
			     sizeof(request) ) )
		return -EFAULT;

	DRM_DEBUG( "%d, %d, %d\n",
		   request.size, request.low_mark, request.high_mark );
	order = DRM(order)( request.size );
	if ( order < DRM_MIN_ORDER || order > DRM_MAX_ORDER ) return -EINVAL;
	entry = &dma->bufs[order];

	if ( request.low_mark < 0 || request.low_mark > entry->buf_count )
		return -EINVAL;
	if ( request.high_mark < 0 || request.high_mark > entry->buf_count )
		return -EINVAL;

	entry->freelist.low_mark  = request.low_mark;
	entry->freelist.high_mark = request.high_mark;

	return 0;
}

int DRM(freebufs)( struct inode *inode, struct file *filp,
		   unsigned int cmd, unsigned long arg )
{
	drm_file_t *priv = filp->private_data;
	drm_device_t *dev = priv->dev;
	drm_device_dma_t *dma = dev->dma;
	drm_buf_free_t request;
	int i;
	int idx;
	drm_buf_t *buf;

	if ( !dma ) return -EINVAL;

	if ( copy_from_user( &request,
			     (drm_buf_free_t *)arg,
			     sizeof(request) ) )
		return -EFAULT;

	DRM_DEBUG( "%d\n", request.count );
	for ( i = 0 ; i < request.count ; i++ ) {
		if ( copy_from_user( &idx,
				     &request.list[i],
				     sizeof(idx) ) )
			return -EFAULT;
		if ( idx < 0 || idx >= dma->buf_count ) {
			DRM_ERROR( "Index %d (of %d max)\n",
				   idx, dma->buf_count - 1 );
			return -EINVAL;
		}
		buf = dma->buflist[idx];
		if ( buf->pid != current->pid ) {
			DRM_ERROR( "Process %d freeing buffer owned by %d\n",
				   current->pid, buf->pid );
			return -EINVAL;
		}
		DRM(free_buffer)( dev, buf );
	}

	return 0;
}

int DRM(mapbufs)( struct inode *inode, struct file *filp,
		  unsigned int cmd, unsigned long arg )
{
	drm_file_t *priv = filp->private_data;
	drm_device_t *dev = priv->dev;
	drm_device_dma_t *dma = dev->dma;
	int retcode = 0;
	const int zero = 0;
	unsigned long virtual;
	unsigned long address;
	drm_buf_map_t request;
	int i;

	if ( !dma ) return -EINVAL;

	spin_lock( &dev->count_lock );
	if ( atomic_read( &dev->buf_alloc ) ) {
		spin_unlock( &dev->count_lock );
		return -EBUSY;
	}
	dev->buf_use++;		/* Can't allocate more after this call */
	spin_unlock( &dev->count_lock );

	if ( copy_from_user( &request, (drm_buf_map_t *)arg,
			     sizeof(request) ) )
		return -EFAULT;

	if ( request.count >= dma->buf_count ) {
		if ( (__HAVE_AGP && (dma->flags & _DRM_DMA_USE_AGP)) ||
		     (__HAVE_SG && (dma->flags & _DRM_DMA_USE_SG)) ) {
			drm_map_t *map = DRIVER_AGP_BUFFERS_MAP( dev );

			if ( !map ) {
				retcode = -EINVAL;
				goto done;
			}

#if LINUX_VERSION_CODE <= 0x020402
			down( &current->mm->mmap_sem );
#else
			down_write( &current->mm->mmap_sem );
#endif
			virtual = do_mmap( filp, 0, map->size,
					   PROT_READ | PROT_WRITE,
					   MAP_SHARED,
					   (unsigned long)map->offset );
#if LINUX_VERSION_CODE <= 0x020402
			up( &current->mm->mmap_sem );
#else
			up_write( &current->mm->mmap_sem );
#endif
		} else {
#if LINUX_VERSION_CODE <= 0x020402
			down( &current->mm->mmap_sem );
#else
			down_write( &current->mm->mmap_sem );
#endif
			virtual = do_mmap( filp, 0, dma->byte_count,
					   PROT_READ | PROT_WRITE,
					   MAP_SHARED, 0 );
#if LINUX_VERSION_CODE <= 0x020402
			up( &current->mm->mmap_sem );
#else
			up_write( &current->mm->mmap_sem );
#endif
		}
		if ( virtual > -1024UL ) {
			/* Real error */
			retcode = (signed long)virtual;
			goto done;
		}
		request.virtual = (void *)virtual;

		for ( i = 0 ; i < dma->buf_count ; i++ ) {
			if ( copy_to_user( &request.list[i].idx,
					   &dma->buflist[i]->idx,
					   sizeof(request.list[0].idx) ) ) {
				retcode = -EFAULT;
				goto done;
			}
			if ( copy_to_user( &request.list[i].total,
					   &dma->buflist[i]->total,
					   sizeof(request.list[0].total) ) ) {
				retcode = -EFAULT;
				goto done;
			}
			if ( copy_to_user( &request.list[i].used,
					   &zero,
					   sizeof(zero) ) ) {
				retcode = -EFAULT;
				goto done;
			}
			address = virtual + dma->buflist[i]->offset; /* *** */
			if ( copy_to_user( &request.list[i].address,
					   &address,
					   sizeof(address) ) ) {
				retcode = -EFAULT;
				goto done;
			}
		}
	}
 done:
	request.count = dma->buf_count;
	DRM_DEBUG( "%d buffers, retcode = %d\n", request.count, retcode );

	if ( copy_to_user( (drm_buf_map_t *)arg, &request, sizeof(request) ) )
		return -EFAULT;

	return retcode;
}

#endif /* __HAVE_DMA */
/span>fd, DRM_IOCTL_INFO_BUFS, &info)) { int retval = -errno; drmFree(info.list); return retval; } for (i = 0; i < info.count; i++) { info.list[i].low_mark = low * info.list[i].count; info.list[i].high_mark = high * info.list[i].count; if (drmIoctl(fd, DRM_IOCTL_MARK_BUFS, &info.list[i])) { int retval = -errno; drmFree(info.list); return retval; } } drmFree(info.list); return 0; } /** * Free buffers. * * \param fd file descriptor. * \param count number of buffers to free. * \param list list of buffers to be freed. * * \return zero on success, or a negative value on failure. * * \note This function is primarily used for debugging. * * \internal * This function is a wrapper around the DRM_IOCTL_FREE_BUFS ioctl, passing * the arguments in a drm_buf_free structure. */ int drmFreeBufs(int fd, int count, int *list) { drm_buf_free_t request; request.count = count; request.list = list; if (drmIoctl(fd, DRM_IOCTL_FREE_BUFS, &request)) return -errno; return 0; } /** * Close the device. * * \param fd file descriptor. * * \internal * This function closes the file descriptor. */ int drmClose(int fd) { unsigned long key = drmGetKeyFromFd(fd); drmHashEntry *entry = drmGetEntry(fd); drmHashDestroy(entry->tagTable); entry->fd = 0; entry->f = NULL; entry->tagTable = NULL; drmHashDelete(drmHashTable, key); drmFree(entry); return close(fd); } /** * Map a region of memory. * * \param fd file descriptor. * \param handle handle returned by drmAddMap(). * \param size size in bytes. Must match the size used by drmAddMap(). * \param address will contain the user-space virtual address where the mapping * begins. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper for mmap(). */ int drmMap(int fd, drm_handle_t handle, drmSize size, drmAddressPtr address) { static unsigned long pagesize_mask = 0; if (fd < 0) return -EINVAL; if (!pagesize_mask) pagesize_mask = getpagesize() - 1; size = (size + pagesize_mask) & ~pagesize_mask; *address = mmap(0, size, PROT_READ|PROT_WRITE, MAP_SHARED, fd, handle); if (*address == MAP_FAILED) return -errno; return 0; } /** * Unmap mappings obtained with drmMap(). * * \param address address as given by drmMap(). * \param size size in bytes. Must match the size used by drmMap(). * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper for munmap(). */ int drmUnmap(drmAddress address, drmSize size) { return munmap(address, size); } drmBufInfoPtr drmGetBufInfo(int fd) { drm_buf_info_t info; drmBufInfoPtr retval; int i; info.count = 0; info.list = NULL; if (drmIoctl(fd, DRM_IOCTL_INFO_BUFS, &info)) return NULL; if (info.count) { if (!(info.list = drmMalloc(info.count * sizeof(*info.list)))) return NULL; if (drmIoctl(fd, DRM_IOCTL_INFO_BUFS, &info)) { drmFree(info.list); return NULL; } retval = drmMalloc(sizeof(*retval)); retval->count = info.count; retval->list = drmMalloc(info.count * sizeof(*retval->list)); for (i = 0; i < info.count; i++) { retval->list[i].count = info.list[i].count; retval->list[i].size = info.list[i].size; retval->list[i].low_mark = info.list[i].low_mark; retval->list[i].high_mark = info.list[i].high_mark; } drmFree(info.list); return retval; } return NULL; } /** * Map all DMA buffers into client-virtual space. * * \param fd file descriptor. * * \return a pointer to a ::drmBufMap structure. * * \note The client may not use these buffers until obtaining buffer indices * with drmDMA(). * * \internal * This function calls the DRM_IOCTL_MAP_BUFS ioctl and copies the returned * information about the buffers in a drm_buf_map structure into the * client-visible data structures. */ drmBufMapPtr drmMapBufs(int fd) { drm_buf_map_t bufs; drmBufMapPtr retval; int i; bufs.count = 0; bufs.list = NULL; bufs.virtual = NULL; if (drmIoctl(fd, DRM_IOCTL_MAP_BUFS, &bufs)) return NULL; if (!bufs.count) return NULL; if (!(bufs.list = drmMalloc(bufs.count * sizeof(*bufs.list)))) return NULL; if (drmIoctl(fd, DRM_IOCTL_MAP_BUFS, &bufs)) { drmFree(bufs.list); return NULL; } retval = drmMalloc(sizeof(*retval)); retval->count = bufs.count; retval->list = drmMalloc(bufs.count * sizeof(*retval->list)); for (i = 0; i < bufs.count; i++) { retval->list[i].idx = bufs.list[i].idx; retval->list[i].total = bufs.list[i].total; retval->list[i].used = 0; retval->list[i].address = bufs.list[i].address; } drmFree(bufs.list); return retval; } /** * Unmap buffers allocated with drmMapBufs(). * * \return zero on success, or negative value on failure. * * \internal * Calls munmap() for every buffer stored in \p bufs and frees the * memory allocated by drmMapBufs(). */ int drmUnmapBufs(drmBufMapPtr bufs) { int i; for (i = 0; i < bufs->count; i++) { munmap(bufs->list[i].address, bufs->list[i].total); } drmFree(bufs->list); drmFree(bufs); return 0; } #define DRM_DMA_RETRY 16 /** * Reserve DMA buffers. * * \param fd file descriptor. * \param request * * \return zero on success, or a negative value on failure. * * \internal * Assemble the arguments into a drm_dma structure and keeps issuing the * DRM_IOCTL_DMA ioctl until success or until maximum number of retries. */ int drmDMA(int fd, drmDMAReqPtr request) { drm_dma_t dma; int ret, i = 0; dma.context = request->context; dma.send_count = request->send_count; dma.send_indices = request->send_list; dma.send_sizes = request->send_sizes; dma.flags = request->flags; dma.request_count = request->request_count; dma.request_size = request->request_size; dma.request_indices = request->request_list; dma.request_sizes = request->request_sizes; dma.granted_count = 0; do { ret = ioctl( fd, DRM_IOCTL_DMA, &dma ); } while ( ret && errno == EAGAIN && i++ < DRM_DMA_RETRY ); if ( ret == 0 ) { request->granted_count = dma.granted_count; return 0; } else { return -errno; } } /** * Obtain heavyweight hardware lock. * * \param fd file descriptor. * \param context context. * \param flags flags that determine the sate of the hardware when the function * returns. * * \return always zero. * * \internal * This function translates the arguments into a drm_lock structure and issue * the DRM_IOCTL_LOCK ioctl until the lock is successfully acquired. */ int drmGetLock(int fd, drm_context_t context, drmLockFlags flags) { drm_lock_t lock; lock.context = context; lock.flags = 0; if (flags & DRM_LOCK_READY) lock.flags |= _DRM_LOCK_READY; if (flags & DRM_LOCK_QUIESCENT) lock.flags |= _DRM_LOCK_QUIESCENT; if (flags & DRM_LOCK_FLUSH) lock.flags |= _DRM_LOCK_FLUSH; if (flags & DRM_LOCK_FLUSH_ALL) lock.flags |= _DRM_LOCK_FLUSH_ALL; if (flags & DRM_HALT_ALL_QUEUES) lock.flags |= _DRM_HALT_ALL_QUEUES; if (flags & DRM_HALT_CUR_QUEUES) lock.flags |= _DRM_HALT_CUR_QUEUES; while (drmIoctl(fd, DRM_IOCTL_LOCK, &lock)) ; return 0; } /** * Release the hardware lock. * * \param fd file descriptor. * \param context context. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_UNLOCK ioctl, passing the * argument in a drm_lock structure. */ int drmUnlock(int fd, drm_context_t context) { drm_lock_t lock; lock.context = context; lock.flags = 0; return drmIoctl(fd, DRM_IOCTL_UNLOCK, &lock); } drm_context_t *drmGetReservedContextList(int fd, int *count) { drm_ctx_res_t res; drm_ctx_t *list; drm_context_t * retval; int i; res.count = 0; res.contexts = NULL; if (drmIoctl(fd, DRM_IOCTL_RES_CTX, &res)) return NULL; if (!res.count) return NULL; if (!(list = drmMalloc(res.count * sizeof(*list)))) return NULL; if (!(retval = drmMalloc(res.count * sizeof(*retval)))) { drmFree(list); return NULL; } res.contexts = list; if (drmIoctl(fd, DRM_IOCTL_RES_CTX, &res)) return NULL; for (i = 0; i < res.count; i++) retval[i] = list[i].handle; drmFree(list); *count = res.count; return retval; } void drmFreeReservedContextList(drm_context_t *pt) { drmFree(pt); } /** * Create context. * * Used by the X server during GLXContext initialization. This causes * per-context kernel-level resources to be allocated. * * \param fd file descriptor. * \param handle is set on success. To be used by the client when requesting DMA * dispatch with drmDMA(). * * \return zero on success, or a negative value on failure. * * \note May only be called by root. * * \internal * This function is a wrapper around the DRM_IOCTL_ADD_CTX ioctl, passing the * argument in a drm_ctx structure. */ int drmCreateContext(int fd, drm_context_t *handle) { drm_ctx_t ctx; ctx.flags = 0; /* Modified with functions below */ if (drmIoctl(fd, DRM_IOCTL_ADD_CTX, &ctx)) return -errno; *handle = ctx.handle; return 0; } int drmSwitchToContext(int fd, drm_context_t context) { drm_ctx_t ctx; ctx.handle = context; if (drmIoctl(fd, DRM_IOCTL_SWITCH_CTX, &ctx)) return -errno; return 0; } int drmSetContextFlags(int fd, drm_context_t context, drm_context_tFlags flags) { drm_ctx_t ctx; /* * Context preserving means that no context switches are done between DMA * buffers from one context and the next. This is suitable for use in the * X server (which promises to maintain hardware context), or in the * client-side library when buffers are swapped on behalf of two threads. */ ctx.handle = context; ctx.flags = 0; if (flags & DRM_CONTEXT_PRESERVED) ctx.flags |= _DRM_CONTEXT_PRESERVED; if (flags & DRM_CONTEXT_2DONLY) ctx.flags |= _DRM_CONTEXT_2DONLY; if (drmIoctl(fd, DRM_IOCTL_MOD_CTX, &ctx)) return -errno; return 0; } int drmGetContextFlags(int fd, drm_context_t context, drm_context_tFlagsPtr flags) { drm_ctx_t ctx; ctx.handle = context; if (drmIoctl(fd, DRM_IOCTL_GET_CTX, &ctx)) return -errno; *flags = 0; if (ctx.flags & _DRM_CONTEXT_PRESERVED) *flags |= DRM_CONTEXT_PRESERVED; if (ctx.flags & _DRM_CONTEXT_2DONLY) *flags |= DRM_CONTEXT_2DONLY; return 0; } /** * Destroy context. * * Free any kernel-level resources allocated with drmCreateContext() associated * with the context. * * \param fd file descriptor. * \param handle handle given by drmCreateContext(). * * \return zero on success, or a negative value on failure. * * \note May only be called by root. * * \internal * This function is a wrapper around the DRM_IOCTL_RM_CTX ioctl, passing the * argument in a drm_ctx structure. */ int drmDestroyContext(int fd, drm_context_t handle) { drm_ctx_t ctx; ctx.handle = handle; if (drmIoctl(fd, DRM_IOCTL_RM_CTX, &ctx)) return -errno; return 0; } int drmCreateDrawable(int fd, drm_drawable_t *handle) { drm_draw_t draw; if (drmIoctl(fd, DRM_IOCTL_ADD_DRAW, &draw)) return -errno; *handle = draw.handle; return 0; } int drmDestroyDrawable(int fd, drm_drawable_t handle) { drm_draw_t draw; draw.handle = handle; if (drmIoctl(fd, DRM_IOCTL_RM_DRAW, &draw)) return -errno; return 0; } int drmUpdateDrawableInfo(int fd, drm_drawable_t handle, drm_drawable_info_type_t type, unsigned int num, void *data) { drm_update_draw_t update; update.handle = handle; update.type = type; update.num = num; update.data = (unsigned long long)(unsigned long)data; if (drmIoctl(fd, DRM_IOCTL_UPDATE_DRAW, &update)) return -errno; return 0; } /** * Acquire the AGP device. * * Must be called before any of the other AGP related calls. * * \param fd file descriptor. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_ACQUIRE ioctl. */ int drmAgpAcquire(int fd) { if (drmIoctl(fd, DRM_IOCTL_AGP_ACQUIRE, NULL)) return -errno; return 0; } /** * Release the AGP device. * * \param fd file descriptor. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_RELEASE ioctl. */ int drmAgpRelease(int fd) { if (drmIoctl(fd, DRM_IOCTL_AGP_RELEASE, NULL)) return -errno; return 0; } /** * Set the AGP mode. * * \param fd file descriptor. * \param mode AGP mode. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_ENABLE ioctl, passing the * argument in a drm_agp_mode structure. */ int drmAgpEnable(int fd, unsigned long mode) { drm_agp_mode_t m; m.mode = mode; if (drmIoctl(fd, DRM_IOCTL_AGP_ENABLE, &m)) return -errno; return 0; } /** * Allocate a chunk of AGP memory. * * \param fd file descriptor. * \param size requested memory size in bytes. Will be rounded to page boundary. * \param type type of memory to allocate. * \param address if not zero, will be set to the physical address of the * allocated memory. * \param handle on success will be set to a handle of the allocated memory. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_ALLOC ioctl, passing the * arguments in a drm_agp_buffer structure. */ int drmAgpAlloc(int fd, unsigned long size, unsigned long type, unsigned long *address, drm_handle_t *handle) { drm_agp_buffer_t b; *handle = DRM_AGP_NO_HANDLE; b.size = size; b.handle = 0; b.type = type; if (drmIoctl(fd, DRM_IOCTL_AGP_ALLOC, &b)) return -errno; if (address != 0UL) *address = b.physical; *handle = b.handle; return 0; } /** * Free a chunk of AGP memory. * * \param fd file descriptor. * \param handle handle to the allocated memory, as given by drmAgpAllocate(). * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_FREE ioctl, passing the * argument in a drm_agp_buffer structure. */ int drmAgpFree(int fd, drm_handle_t handle) { drm_agp_buffer_t b; b.size = 0; b.handle = handle; if (drmIoctl(fd, DRM_IOCTL_AGP_FREE, &b)) return -errno; return 0; } /** * Bind a chunk of AGP memory. * * \param fd file descriptor. * \param handle handle to the allocated memory, as given by drmAgpAllocate(). * \param offset offset in bytes. It will round to page boundary. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_BIND ioctl, passing the * argument in a drm_agp_binding structure. */ int drmAgpBind(int fd, drm_handle_t handle, unsigned long offset) { drm_agp_binding_t b; b.handle = handle; b.offset = offset; if (drmIoctl(fd, DRM_IOCTL_AGP_BIND, &b)) return -errno; return 0; } /** * Unbind a chunk of AGP memory. * * \param fd file descriptor. * \param handle handle to the allocated memory, as given by drmAgpAllocate(). * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_UNBIND ioctl, passing * the argument in a drm_agp_binding structure. */ int drmAgpUnbind(int fd, drm_handle_t handle) { drm_agp_binding_t b; b.handle = handle; b.offset = 0; if (drmIoctl(fd, DRM_IOCTL_AGP_UNBIND, &b)) return -errno; return 0; } /** * Get AGP driver major version number. * * \param fd file descriptor. * * \return major version number on success, or a negative value on failure.. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ int drmAgpVersionMajor(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return -errno; return i.agp_version_major; } /** * Get AGP driver minor version number. * * \param fd file descriptor. * * \return minor version number on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ int drmAgpVersionMinor(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return -errno; return i.agp_version_minor; } /** * Get AGP mode. * * \param fd file descriptor. * * \return mode on success, or zero on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ unsigned long drmAgpGetMode(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return 0; return i.mode; } /** * Get AGP aperture base. * * \param fd file descriptor. * * \return aperture base on success, zero on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ unsigned long drmAgpBase(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return 0; return i.aperture_base; } /** * Get AGP aperture size. * * \param fd file descriptor. * * \return aperture size on success, zero on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ unsigned long drmAgpSize(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return 0; return i.aperture_size; } /** * Get used AGP memory. * * \param fd file descriptor. * * \return memory used on success, or zero on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ unsigned long drmAgpMemoryUsed(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return 0; return i.memory_used; } /** * Get available AGP memory. * * \param fd file descriptor. * * \return memory available on success, or zero on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ unsigned long drmAgpMemoryAvail(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return 0; return i.memory_allowed; } /** * Get hardware vendor ID. * * \param fd file descriptor. * * \return vendor ID on success, or zero on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ unsigned int drmAgpVendorId(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return 0; return i.id_vendor; } /** * Get hardware device ID. * * \param fd file descriptor. * * \return zero on success, or zero on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_AGP_INFO ioctl, getting the * necessary information in a drm_agp_info structure. */ unsigned int drmAgpDeviceId(int fd) { drm_agp_info_t i; if (drmIoctl(fd, DRM_IOCTL_AGP_INFO, &i)) return 0; return i.id_device; } int drmScatterGatherAlloc(int fd, unsigned long size, drm_handle_t *handle) { drm_scatter_gather_t sg; *handle = 0; sg.size = size; sg.handle = 0; if (drmIoctl(fd, DRM_IOCTL_SG_ALLOC, &sg)) return -errno; *handle = sg.handle; return 0; } int drmScatterGatherFree(int fd, drm_handle_t handle) { drm_scatter_gather_t sg; sg.size = 0; sg.handle = handle; if (drmIoctl(fd, DRM_IOCTL_SG_FREE, &sg)) return -errno; return 0; } /** * Wait for VBLANK. * * \param fd file descriptor. * \param vbl pointer to a drmVBlank structure. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_WAIT_VBLANK ioctl. */ int drmWaitVBlank(int fd, drmVBlankPtr vbl) { int ret; do { ret = drmIoctl(fd, DRM_IOCTL_WAIT_VBLANK, vbl); vbl->request.type &= ~DRM_VBLANK_RELATIVE; } while (ret && errno == EINTR); return ret; } int drmError(int err, const char *label) { switch (err) { case DRM_ERR_NO_DEVICE: fprintf(stderr, "%s: no device\n", label); break; case DRM_ERR_NO_ACCESS: fprintf(stderr, "%s: no access\n", label); break; case DRM_ERR_NOT_ROOT: fprintf(stderr, "%s: not root\n", label); break; case DRM_ERR_INVALID: fprintf(stderr, "%s: invalid args\n", label); break; default: if (err < 0) err = -err; fprintf( stderr, "%s: error %d (%s)\n", label, err, strerror(err) ); break; } return 1; } /** * Install IRQ handler. * * \param fd file descriptor. * \param irq IRQ number. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_CONTROL ioctl, passing the * argument in a drm_control structure. */ int drmCtlInstHandler(int fd, int irq) { drm_control_t ctl; ctl.func = DRM_INST_HANDLER; ctl.irq = irq; if (drmIoctl(fd, DRM_IOCTL_CONTROL, &ctl)) return -errno; return 0; } /** * Uninstall IRQ handler. * * \param fd file descriptor. * * \return zero on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_CONTROL ioctl, passing the * argument in a drm_control structure. */ int drmCtlUninstHandler(int fd) { drm_control_t ctl; ctl.func = DRM_UNINST_HANDLER; ctl.irq = 0; if (drmIoctl(fd, DRM_IOCTL_CONTROL, &ctl)) return -errno; return 0; } int drmFinish(int fd, int context, drmLockFlags flags) { drm_lock_t lock; lock.context = context; lock.flags = 0; if (flags & DRM_LOCK_READY) lock.flags |= _DRM_LOCK_READY; if (flags & DRM_LOCK_QUIESCENT) lock.flags |= _DRM_LOCK_QUIESCENT; if (flags & DRM_LOCK_FLUSH) lock.flags |= _DRM_LOCK_FLUSH; if (flags & DRM_LOCK_FLUSH_ALL) lock.flags |= _DRM_LOCK_FLUSH_ALL; if (flags & DRM_HALT_ALL_QUEUES) lock.flags |= _DRM_HALT_ALL_QUEUES; if (flags & DRM_HALT_CUR_QUEUES) lock.flags |= _DRM_HALT_CUR_QUEUES; if (drmIoctl(fd, DRM_IOCTL_FINISH, &lock)) return -errno; return 0; } /** * Get IRQ from bus ID. * * \param fd file descriptor. * \param busnum bus number. * \param devnum device number. * \param funcnum function number. * * \return IRQ number on success, or a negative value on failure. * * \internal * This function is a wrapper around the DRM_IOCTL_IRQ_BUSID ioctl, passing the * arguments in a drm_irq_busid structure. */ int drmGetInterruptFromBusID(int fd, int busnum, int devnum, int funcnum) { drm_irq_busid_t p; p.busnum = busnum; p.devnum = devnum; p.funcnum = funcnum; if (drmIoctl(fd, DRM_IOCTL_IRQ_BUSID, &p)) return -errno; return p.irq; } int drmAddContextTag(int fd, drm_context_t context, void *tag) { drmHashEntry *entry = drmGetEntry(fd); if (drmHashInsert(entry->tagTable, context, tag)) { drmHashDelete(entry->tagTable, context); drmHashInsert(entry->tagTable, context, tag); } return 0; } int drmDelContextTag(int fd, drm_context_t context) { drmHashEntry *entry = drmGetEntry(fd); return drmHashDelete(entry->tagTable, context); } void *drmGetContextTag(int fd, drm_context_t context) { drmHashEntry *entry = drmGetEntry(fd); void *value; if (drmHashLookup(entry->tagTable, context, &value)) return NULL; return value; } int drmAddContextPrivateMapping(int fd, drm_context_t ctx_id, drm_handle_t handle) { drm_ctx_priv_map_t map; map.ctx_id = ctx_id; map.handle = (void *)handle; if (drmIoctl(fd, DRM_IOCTL_SET_SAREA_CTX, &map)) return -errno; return 0; } int drmGetContextPrivateMapping(int fd, drm_context_t ctx_id, drm_handle_t *handle) { drm_ctx_priv_map_t map; map.ctx_id = ctx_id; if (drmIoctl(fd, DRM_IOCTL_GET_SAREA_CTX, &map)) return -errno; if (handle) *handle = (drm_handle_t)map.handle; return 0; } int drmGetMap(int fd, int idx, drm_handle_t *offset, drmSize *size, drmMapType *type, drmMapFlags *flags, drm_handle_t *handle, int *mtrr) { drm_map_t map; map.offset = idx; if (drmIoctl(fd, DRM_IOCTL_GET_MAP, &map)) return -errno; *offset = map.offset; *size = map.size; *type = map.type; *flags = map.flags; *handle = (unsigned long)map.handle; *mtrr = map.mtrr; return 0; } int drmGetClient(int fd, int idx, int *auth, int *pid, int *uid, unsigned long *magic, unsigned long *iocs) { drm_client_t client; client.idx = idx; if (drmIoctl(fd, DRM_IOCTL_GET_CLIENT, &client)) return -errno; *auth = client.auth; *pid = client.pid; *uid = client.uid; *magic = client.magic; *iocs = client.iocs; return 0; } int drmGetStats(int fd, drmStatsT *stats) { drm_stats_t s; int i; if (drmIoctl(fd, DRM_IOCTL_GET_STATS, &s)) return -errno; stats->count = 0; memset(stats, 0, sizeof(*stats)); if (s.count > sizeof(stats->data)/sizeof(stats->data[0])) return -1; #define SET_VALUE \ stats->data[i].long_format = "%-20.20s"; \ stats->data[i].rate_format = "%8.8s"; \ stats->data[i].isvalue = 1; \ stats->data[i].verbose = 0 #define SET_COUNT \ stats->data[i].long_format = "%-20.20s"; \ stats->data[i].rate_format = "%5.5s"; \ stats->data[i].isvalue = 0; \ stats->data[i].mult_names = "kgm"; \ stats->data[i].mult = 1000; \ stats->data[i].verbose = 0 #define SET_BYTE \ stats->data[i].long_format = "%-20.20s"; \ stats->data[i].rate_format = "%5.5s"; \ stats->data[i].isvalue = 0; \ stats->data[i].mult_names = "KGM"; \ stats->data[i].mult = 1024; \ stats->data[i].verbose = 0 stats->count = s.count; for (i = 0; i < s.count; i++) { stats->data[i].value = s.data[i].value; switch (s.data[i].type) { case _DRM_STAT_LOCK: stats->data[i].long_name = "Lock"; stats->data[i].rate_name = "Lock"; SET_VALUE; break; case _DRM_STAT_OPENS: stats->data[i].long_name = "Opens"; stats->data[i].rate_name = "O"; SET_COUNT; stats->data[i].verbose = 1; break; case _DRM_STAT_CLOSES: stats->data[i].long_name = "Closes"; stats->data[i].rate_name = "Lock"; SET_COUNT; stats->data[i].verbose = 1; break; case _DRM_STAT_IOCTLS: stats->data[i].long_name = "Ioctls"; stats->data[i].rate_name = "Ioc/s"; SET_COUNT; break; case _DRM_STAT_LOCKS: stats->data[i].long_name = "Locks"; stats->data[i].rate_name = "Lck/s"; SET_COUNT; break; case _DRM_STAT_UNLOCKS: stats->data[i].long_name = "Unlocks"; stats->data[i].rate_name = "Unl/s"; SET_COUNT; break; case _DRM_STAT_IRQ: stats->data[i].long_name = "IRQs"; stats->data[i].rate_name = "IRQ/s"; SET_COUNT; break; case _DRM_STAT_PRIMARY: stats->data[i].long_name = "Primary Bytes"; stats->data[i].rate_name = "PB/s"; SET_BYTE; break; case _DRM_STAT_SECONDARY: stats->data[i].long_name = "Secondary Bytes"; stats->data[i].rate_name = "SB/s"; SET_BYTE; break; case _DRM_STAT_DMA: stats->data[i].long_name = "DMA"; stats->data[i].rate_name = "DMA/s"; SET_COUNT; break; case _DRM_STAT_SPECIAL: stats->data[i].long_name = "Special DMA"; stats->data[i].rate_name = "dma/s"; SET_COUNT; break; case _DRM_STAT_MISSED: stats->data[i].long_name = "Miss"; stats->data[i].rate_name = "Ms/s"; SET_COUNT; break; case _DRM_STAT_VALUE: stats->data[i].long_name = "Value"; stats->data[i].rate_name = "Value"; SET_VALUE; break; case _DRM_STAT_BYTE: stats->data[i].long_name = "Bytes"; stats->data[i].rate_name = "B/s"; SET_BYTE; break; case _DRM_STAT_COUNT: default: stats->data[i].long_name = "Count"; stats->data[i].rate_name = "Cnt/s"; SET_COUNT; break; } } return 0; } /** * Issue a set-version ioctl. * * \param fd file descriptor. * \param drmCommandIndex command index * \param data source pointer of the data to be read and written. * \param size size of the data to be read and written. * * \return zero on success, or a negative value on failure. * * \internal * It issues a read-write ioctl given by * \code DRM_COMMAND_BASE + drmCommandIndex \endcode. */ int drmSetInterfaceVersion(int fd, drmSetVersion *version) { int retcode = 0; drm_set_version_t sv; sv.drm_di_major = version->drm_di_major; sv.drm_di_minor = version->drm_di_minor; sv.drm_dd_major = version->drm_dd_major; sv.drm_dd_minor = version->drm_dd_minor; if (drmIoctl(fd, DRM_IOCTL_SET_VERSION, &sv)) { retcode = -errno; } version->drm_di_major = sv.drm_di_major; version->drm_di_minor = sv.drm_di_minor; version->drm_dd_major = sv.drm_dd_major; version->drm_dd_minor = sv.drm_dd_minor; return retcode; } /** * Send a device-specific command. * * \param fd file descriptor. * \param drmCommandIndex command index * * \return zero on success, or a negative value on failure. * * \internal * It issues a ioctl given by * \code DRM_COMMAND_BASE + drmCommandIndex \endcode. */ int drmCommandNone(int fd, unsigned long drmCommandIndex) { void *data = NULL; /* dummy */ unsigned long request; request = DRM_IO( DRM_COMMAND_BASE + drmCommandIndex); if (drmIoctl(fd, request, data)) { return -errno; } return 0; } /** * Send a device-specific read command. * * \param fd file descriptor. * \param drmCommandIndex command index * \param data destination pointer of the data to be read. * \param size size of the data to be read. * * \return zero on success, or a negative value on failure. * * \internal * It issues a read ioctl given by * \code DRM_COMMAND_BASE + drmCommandIndex \endcode. */ int drmCommandRead(int fd, unsigned long drmCommandIndex, void *data, unsigned long size) { unsigned long request; request = DRM_IOC( DRM_IOC_READ, DRM_IOCTL_BASE, DRM_COMMAND_BASE + drmCommandIndex, size); if (drmIoctl(fd, request, data)) { return -errno; } return 0; } /** * Send a device-specific write command. * * \param fd file descriptor. * \param drmCommandIndex command index * \param data source pointer of the data to be written. * \param size size of the data to be written. * * \return zero on success, or a negative value on failure. * * \internal * It issues a write ioctl given by * \code DRM_COMMAND_BASE + drmCommandIndex \endcode. */ int drmCommandWrite(int fd, unsigned long drmCommandIndex, void *data, unsigned long size) { unsigned long request; request = DRM_IOC( DRM_IOC_WRITE, DRM_IOCTL_BASE, DRM_COMMAND_BASE + drmCommandIndex, size); if (drmIoctl(fd, request, data)) { return -errno; } return 0; } /** * Send a device-specific read-write command. * * \param fd file descriptor. * \param drmCommandIndex command index * \param data source pointer of the data to be read and written. * \param size size of the data to be read and written. * * \return zero on success, or a negative value on failure. * * \internal * It issues a read-write ioctl given by * \code DRM_COMMAND_BASE + drmCommandIndex \endcode. */ int drmCommandWriteRead(int fd, unsigned long drmCommandIndex, void *data, unsigned long size) { unsigned long request; request = DRM_IOC( DRM_IOC_READ|DRM_IOC_WRITE, DRM_IOCTL_BASE, DRM_COMMAND_BASE + drmCommandIndex, size); if (drmIoctl(fd, request, data)) return -errno; return 0; } #define DRM_MAX_FDS 16 static struct { char *BusID; int fd; int refcount; } connection[DRM_MAX_FDS]; static int nr_fds = 0; int drmOpenOnce(void *unused, const char *BusID, int *newlyopened) { int i; int fd; for (i = 0; i < nr_fds; i++) if (strcmp(BusID, connection[i].BusID) == 0) { connection[i].refcount++; *newlyopened = 0; return connection[i].fd; } fd = drmOpen(unused, BusID); if (fd <= 0 || nr_fds == DRM_MAX_FDS) return fd; connection[nr_fds].BusID = strdup(BusID); connection[nr_fds].fd = fd; connection[nr_fds].refcount = 1; *newlyopened = 1; if (0) fprintf(stderr, "saved connection %d for %s %d\n", nr_fds, connection[nr_fds].BusID, strcmp(BusID, connection[nr_fds].BusID)); nr_fds++; return fd; } void drmCloseOnce(int fd) { int i; for (i = 0; i < nr_fds; i++) { if (fd == connection[i].fd) { if (--connection[i].refcount == 0) { drmClose(connection[i].fd); free(connection[i].BusID); if (i < --nr_fds) connection[i] = connection[nr_fds]; return; } } } } int drmSetMaster(int fd) { int ret; fprintf(stderr,"Setting master \n"); ret = ioctl(fd, DRM_IOCTL_SET_MASTER, 0); return ret; } int drmDropMaster(int fd) { int ret; fprintf(stderr,"Dropping master \n"); ret = ioctl(fd, DRM_IOCTL_DROP_MASTER, 0); return ret; }