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path: root/shared-core/mga_dma.c
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/* mga_dma.c -- DMA support for mga g200/g400 -*- linux-c -*-
 * Created: Mon Dec 13 01:50:01 1999 by jhartmann@precisioninsight.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
 * PRECISION INSIGHT 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.
 */

/**
 * \file mga_dma.c
 * DMA support for MGA G200 / G400.
 *
 * \author Rickard E. (Rik) Faith <faith@valinux.com>
 * \author Jeff Hartmann <jhartmann@valinux.com>
 * \author Keith Whitwell <keith@tungstengraphics.com>
 * \author Gareth Hughes <gareth@valinux.com>
 */

#include "drmP.h"
#include "drm.h"
#include "drm_sarea.h"
#include "mga_drm.h"
#include "mga_drv.h"

#define MGA_DEFAULT_USEC_TIMEOUT	10000
#define MGA_FREELIST_DEBUG		0

#define MINIMAL_CLEANUP    0
#define FULL_CLEANUP       1
static int mga_do_cleanup_dma(struct drm_device *dev, int full_cleanup);

/* ================================================================
 * Engine control
 */

int mga_do_wait_for_idle(drm_mga_private_t * dev_priv)
{
	u32 status = 0;
	int i;
	DRM_DEBUG("\n");

	for (i = 0; i < dev_priv->usec_timeout; i++) {
		status = MGA_READ(MGA_STATUS) & MGA_ENGINE_IDLE_MASK;
		if (status == MGA_ENDPRDMASTS) {
			MGA_WRITE8(MGA_CRTC_INDEX, 0);
			return 0;
		}
		DRM_UDELAY(1);
	}

#if MGA_DMA_DEBUG
	DRM_ERROR("failed!\n");
	DRM_INFO("   status=0x%08x\n", status);
#endif
	return -EBUSY;
}

static int mga_do_dma_reset(drm_mga_private_t * dev_priv)
{
	drm_mga_sarea_t *sarea_priv = dev_priv->sarea_priv;
	drm_mga_primary_buffer_t *primary = &dev_priv->prim;

	DRM_DEBUG("\n");

	/* The primary DMA stream should look like new right about now.
	 */
	primary->tail = 0;
	primary->space = primary->size;
	primary->last_flush = 0;

	sarea_priv->last_wrap = 0;

	/* FIXME: Reset counters, buffer ages etc...
	 */

	/* FIXME: What else do we need to reinitialize?  WARP stuff?
	 */

	return 0;
}

/* ================================================================
 * Primary DMA stream
 */

void mga_do_dma_flush(drm_mga_private_t * dev_priv)
{
	drm_mga_primary_buffer_t *primary = &dev_priv->prim;
	u32 head, tail;
	u32 status = 0;
	int i;
	DMA_LOCALS;
	DRM_DEBUG("\n");

	/* We need to wait so that we can do an safe flush */
	for (i = 0; i < dev_priv->usec_timeout; i++) {
		status = MGA_READ(MGA_STATUS) & MGA_ENGINE_IDLE_MASK;
		if (status == MGA_ENDPRDMASTS)
			break;
		DRM_UDELAY(1);
	}

	if (primary->tail == primary->last_flush) {
		DRM_DEBUG("   bailing out...\n");
		return;
	}

	tail = primary->tail + dev_priv->primary->offset;

	/* We need to pad the stream between flushes, as the card
	 * actually (partially?) reads the first of these commands.
	 * See page 4-16 in the G400 manual, middle of the page or so.
	 */
	BEGIN_DMA(1);

	DMA_BLOCK(MGA_DMAPAD, 0x00000000,
		  MGA_DMAPAD, 0x00000000,
		  MGA_DMAPAD, 0x00000000, MGA_DMAPAD, 0x00000000);

	ADVANCE_DMA();

	primary->last_flush = primary->tail;

	head = MGA_READ(MGA_PRIMADDRESS);

	if (head <= tail) {
		primary->space = primary->size - primary->tail;
	} else {
		primary->space = head - tail;
	}

	DRM_DEBUG("   head = 0x%06lx\n", head - dev_priv->primary->offset);
	DRM_DEBUG("   tail = 0x%06lx\n", tail - dev_priv->primary->offset);
	DRM_DEBUG("  space = 0x%06x\n", primary->space);

	mga_flush_write_combine();
	MGA_WRITE(MGA_PRIMEND, tail | dev_priv->dma_access);

	DRM_DEBUG("done.\n");
}

void mga_do_dma_wrap_start(drm_mga_private_t * dev_priv)
{
	drm_mga_primary_buffer_t *primary = &dev_priv->prim;
	u32 head, tail;
	DMA_LOCALS;
	DRM_DEBUG("\n");

	BEGIN_DMA_WRAP();

	DMA_BLOCK(MGA_DMAPAD, 0x00000000,
		  MGA_DMAPAD, 0x00000000,
		  MGA_DMAPAD, 0x00000000, MGA_DMAPAD, 0x00000000);

	ADVANCE_DMA();

	tail = primary->tail + dev_priv->primary->offset;

	primary->tail = 0;
	primary->last_flush = 0;
	primary->last_wrap++;

	head = MGA_READ(MGA_PRIMADDRESS);

	if (head == dev_priv->primary->offset) {
		primary->space = primary->size;
	} else {
		primary->space = head - dev_priv->primary->offset;
	}

	DRM_DEBUG("   head = 0x%06lx\n", head - dev_priv->primary->offset);
	DRM_DEBUG("   tail = 0x%06x\n", primary->tail);
	DRM_DEBUG("   wrap = %d\n", primary->last_wrap);
	DRM_DEBUG("  space = 0x%06x\n", primary->space);

	mga_flush_write_combine();
	MGA_WRITE(MGA_PRIMEND, tail | dev_priv->dma_access);

	set_bit(0, &primary->wrapped);
	DRM_DEBUG("done.\n");
}

void mga_do_dma_wrap_end(drm_mga_private_t * dev_priv)
{
	drm_mga_primary_buffer_t *primary = &dev_priv->prim;
	drm_mga_sarea_t *sarea_priv = dev_priv->sarea_priv;
	u32 head = dev_priv->primary->offset;
	DRM_DEBUG("\n");

	sarea_priv->last_wrap++;
	DRM_DEBUG("   wrap = %d\n", sarea_priv->last_wrap);

	mga_flush_write_combine();
	MGA_WRITE(MGA_PRIMADDRESS, head | MGA_DMA_GENERAL);

	clear_bit(0, &primary->wrapped);
	DRM_DEBUG("done.\n");
}

/* ================================================================
 * Freelist management
 */

#define MGA_BUFFER_USED		~0
#define MGA_BUFFER_FREE		0

#if MGA_FREELIST_DEBUG
static void mga_freelist_print(struct drm_device * dev)
{
	drm_mga_private_t *dev_priv = dev->dev_private;
	drm_mga_freelist_t *entry;

	DRM_INFO("\n");
	DRM_INFO("current dispatch: last=0x%x done=0x%x\n",
		 dev_priv->sarea_priv->last_dispatch,
		 (unsigned int)(MGA_READ(MGA_PRIMADDRESS) -
				dev_priv->primary->offset));
	DRM_INFO("current freelist:\n");

	for (entry = dev_priv->head->next; entry; entry = entry->next) {
		DRM_INFO("   %p   idx=%2d  age=0x%x 0x%06lx\n",
			 entry, entry->buf->idx, entry->age.head,
			 entry->age.head - dev_priv->primary->offset);
	}
	DRM_INFO("\n");
}
#endif

static int mga_freelist_init(struct drm_device * dev, drm_mga_private_t * dev_priv)
{
	struct drm_device_dma *dma = dev->dma;
	struct drm_buf *buf;
	drm_mga_buf_priv_t *buf_priv;
	drm_mga_freelist_t *entry;
	int i;
	DRM_DEBUG("count=%d\n", dma->buf_count);

	dev_priv->head = drm_alloc(sizeof(drm_mga_freelist_t), DRM_MEM_DRIVER);
	if (dev_priv->head == NULL)
		return -ENOMEM;

	memset(dev_priv->head, 0, sizeof(drm_mga_freelist_t));
	SET_AGE(&dev_priv->head->age, MGA_BUFFER_USED, 0);

	for (i = 0; i < dma->buf_count; i++) {
		buf = dma->buflist[i];
		buf_priv = buf->dev_private;

		entry = drm_alloc(sizeof(drm_mga_freelist_t), DRM_MEM_DRIVER);
		if (entry == NULL)
			return -ENOMEM;

		memset(entry, 0, sizeof(drm_mga_freelist_t));

		entry->next = dev_priv->head->next;
		entry->prev = dev_priv->head;
		SET_AGE(&entry->age, MGA_BUFFER_FREE, 0);
		entry->buf = buf;

		if (dev_priv->head->next != NULL)
			dev_priv->head->next->prev = entry;
		if (entry->next == NULL)
			dev_priv->tail = entry;

		buf_priv->list_entry = entry;
		buf_priv->discard = 0;
		buf_priv->dispatched = 0;

		dev_priv->head->next = entry;
	}

	return 0;
}

static void mga_freelist_cleanup(struct drm_device * dev)
{
	drm_mga_private_t *dev_priv = dev->dev_private;
	drm_mga_freelist_t *entry;
	drm_mga_freelist_t *next;
	DRM_DEBUG("\n");

	entry = dev_priv->head;
	while (entry) {
		next = entry->next;
		drm_free(entry, sizeof(drm_mga_freelist_t), DRM_MEM_DRIVER);
		entry = next;
	}

	dev_priv->head = dev_priv->tail = NULL;
}

#if 0
/* FIXME: Still needed?
 */
static void mga_freelist_reset(struct drm_device * dev)
{
	drm_device_dma_t *dma = dev->dma;
	struct drm_buf *buf;
	drm_mga_buf_priv_t *buf_priv;
	int i;

	for (i = 0; i < dma->buf_count; i++) {
		buf = dma->buflist[i];
		buf_priv = buf->dev_private;
		SET_AGE(&buf_priv->list_entry->age, MGA_BUFFER_FREE, 0);
	}
}
#endif

static struct drm_buf *mga_freelist_get(struct drm_device * dev)
{
	drm_mga_private_t *dev_priv = dev->dev_private;
	drm_mga_freelist_t *next;
	drm_mga_freelist_t *prev;
	drm_mga_freelist_t *tail = dev_priv->tail;
	u32 head, wrap;
	DRM_DEBUG("\n");

	head = MGA_READ(MGA_PRIMADDRESS);
	wrap = dev_priv->sarea_priv->last_wrap;

	DRM_DEBUG("   tail=0x%06lx %d\n",
		  tail->age.head ?
		  tail->age.head - dev_priv->primary->offset : 0,
		  tail->age.wrap);
	DRM_DEBUG("   head=0x%06lx %d\n",
		  head - dev_priv->primary->offset, wrap);

	if (TEST_AGE(&tail->age, head, wrap)) {
		prev = dev_priv->tail->prev;
		next = dev_priv->tail;
		prev->next = NULL;
		next->prev = next->next = NULL;
		dev_priv->tail = prev;
		SET_AGE(&next->age, MGA_BUFFER_USED, 0);
		return next->buf;
	}

	DRM_DEBUG("returning NULL!\n");
	return NULL;
}

int mga_freelist_put(struct drm_device * dev, struct drm_buf * buf)
{
	drm_mga_private_t *dev_priv = dev->dev_private;
	drm_mga_buf_priv_t *buf_priv = buf->dev_private;
	drm_mga_freelist_t *head, *entry, *prev;

	DRM_DEBUG("age=0x%06lx wrap=%d\n",
		  buf_priv->list_entry->age.head -
		  dev_priv->primary->offset, buf_priv->list_entry->age.wrap);

	entry = buf_priv->list_entry;
	head = dev_priv->head;

	if (buf_priv->list_entry->age.head == MGA_BUFFER_USED) {
		SET_AGE(&entry->age, MGA_BUFFER_FREE, 0);
		prev = dev_priv->tail;
		prev->next = entry;
		entry->prev = prev;
		entry->next = NULL;
	} else {
		prev = head->next;
		head->next = entry;
		prev->prev = entry;
		entry->prev = head;
		entry->next = prev;
	}

	return 0;
}

/* ================================================================
 * DMA initialization, cleanup
 */

int mga_driver_load(struct drm_device *dev, unsigned long flags)
{
	drm_mga_private_t *dev_priv;

	dev_priv = drm_alloc(sizeof(drm_mga_private_t), DRM_MEM_DRIVER);
	if (!dev_priv)
		return -ENOMEM;

	dev->dev_private = (void *)dev_priv;
	memset(dev_priv, 0, sizeof(drm_mga_private_t));

	dev_priv->usec_timeout = MGA_DEFAULT_USEC_TIMEOUT;
	dev_priv->chipset = flags;

	dev_priv->mmio_base = drm_get_resource_start(dev, 1);
	dev_priv->mmio_size = drm_get_resource_len(dev, 1);

	dev->counters += 3;
	dev->types[6] = _DRM_STAT_IRQ;
	dev->types[7] = _DRM_STAT_PRIMARY;
	dev->types[8] = _DRM_STAT_SECONDARY;

	return 0;
}

/**
 * Bootstrap the driver for AGP DMA.
 *
 * \todo
 * Investigate whether there is any benifit to storing the WARP microcode in
 * AGP memory.  If not, the microcode may as well always be put in PCI
 * memory.
 *
 * \todo
 * This routine needs to set dma_bs->agp_mode to the mode actually configured
 * in the hardware.  Looking just at the Linux AGP driver code, I don't see
 * an easy way to determine this.
 *
 * \sa mga_do_dma_bootstrap, mga_do_pci_dma_bootstrap
 */
static int mga_do_agp_dma_bootstrap(struct drm_device *dev,
				    drm_mga_dma_bootstrap_t * dma_bs)
{
	drm_mga_private_t *const dev_priv =
		(drm_mga_private_t *)dev->dev_private;
	unsigned int warp_size = mga_warp_microcode_size(dev_priv);
	int err;
	unsigned offset;
	const unsigned secondary_size = dma_bs->secondary_bin_count
		* dma_bs->secondary_bin_size;
	const unsigned agp_size = (dma_bs->agp_size << 20);
	struct drm_buf_desc req;
	struct drm_agp_mode mode;
	struct drm_agp_info info;
	struct drm_agp_buffer agp_req;
	struct drm_agp_binding bind_req;

	/* Acquire AGP. */
	err = drm_agp_acquire(dev);
	if (err) {
		DRM_ERROR("Unable to acquire AGP: %d\n", err);
		return err;
	}

	err = drm_agp_info(dev, &info);
	if (err) {
		DRM_ERROR("Unable to get AGP info: %d\n", err);
		return err;
	}

	mode.mode = (info.mode & ~0x07) | dma_bs->agp_mode;
	err = drm_agp_enable(dev, mode);
	if (err) {
		DRM_ERROR("Unable to enable AGP (mode = 0x%lx)\n", mode.mode);
		return err;
	}

	/* In addition to the usual AGP mode configuration, the G200 AGP cards
	 * need to have the AGP mode "manually" set.
	 */

	if (dev_priv->chipset == MGA_CARD_TYPE_G200) {
		if (mode.mode & 0x02) {
			MGA_WRITE(MGA_AGP_PLL, MGA_AGP2XPLL_ENABLE);
		} else {
			MGA_WRITE(MGA_AGP_PLL, MGA_AGP2XPLL_DISABLE);
		}
	}

	/* Allocate and bind AGP memory. */
	agp_req.size = agp_size;
	agp_req.type = 0;
	err = drm_agp_alloc(dev, &agp_req);
	if (err) {
		dev_priv->agp_size = 0;
		DRM_ERROR("Unable to allocate %uMB AGP memory\n",
			  dma_bs->agp_size);
		return err;
	}

	dev_priv->agp_size = agp_size;
	dev_priv->agp_handle = agp_req.handle;

	bind_req.handle = agp_req.handle;
	bind_req.offset = 0;
	err = drm_agp_bind( dev, &bind_req );
	if (err) {
		DRM_ERROR("Unable to bind AGP memory: %d\n", err);
		return err;
	}

	/* Make drm_addbufs happy by not trying to create a mapping for less
	 * than a page.
	 */
	if (warp_size < PAGE_SIZE)
		warp_size = PAGE_SIZE;

	offset = 0;
	err = drm_addmap(dev, offset, warp_size,
			 _DRM_AGP, _DRM_READ_ONLY, &dev_priv->warp);
	if (err) {
		DRM_ERROR("Unable to map WARP microcode: %d\n", err);
		return err;
	}

	offset += warp_size;
	err = drm_addmap(dev, offset, dma_bs->primary_size,
			 _DRM_AGP, _DRM_READ_ONLY, & dev_priv->primary);
	if (err) {
		DRM_ERROR("Unable to map primary DMA region: %d\n", err);
		return err;
	}

	offset += dma_bs->primary_size;
	err = drm_addmap(dev, offset, secondary_size,
			 _DRM_AGP, 0, & dev->agp_buffer_map);
	if (err) {
		DRM_ERROR("Unable to map secondary DMA region: %d\n", err);
		return err;
	}

	(void)memset( &req, 0, sizeof(req) );
	req.count = dma_bs->secondary_bin_count;
	req.size = dma_bs->secondary_bin_size;
	req.flags = _DRM_AGP_BUFFER;
	req.agp_start = offset;

	err = drm_addbufs_agp(dev, &req);
	if (err) {
		DRM_ERROR("Unable to add secondary DMA buffers: %d\n", err);
		return err;
	}

#ifdef __linux__
	{
		struct drm_map_list *_entry;
		unsigned long agp_token = 0;

		list_for_each_entry(_entry, &dev->maplist, head) {
			if (_entry->map == dev->agp_buffer_map)
				agp_token = _entry->user_token;
		}
		if (!agp_token)
			return -EFAULT;

		dev->agp_buffer_token = agp_token;
	}
#endif

	offset += secondary_size;
	err = drm_addmap(dev, offset, agp_size - offset,
			 _DRM_AGP, 0, & dev_priv->agp_textures);
	if (err) {
		DRM_ERROR("Unable to map AGP texture region: %d\n", err);
		return err;
	}

	drm_core_ioremap(dev_priv->warp, dev);
	drm_core_ioremap(dev_priv->primary, dev);
	drm_core_ioremap(dev->agp_buffer_map, dev);

	if (!dev_priv->warp->handle ||
	    !dev_priv->primary->handle || !dev->agp_buffer_map->handle) {
		DRM_ERROR("failed to ioremap agp regions! (%p, %p, %p)\n",
			  dev_priv->warp->handle, dev_priv->primary->handle,
			  dev->agp_buffer_map->handle);
		return -ENOMEM;
	}

	dev_priv->dma_access = MGA_PAGPXFER;
	dev_priv->wagp_enable = MGA_WAGP_ENABLE;

	DRM_INFO("Initialized card for AGP DMA.\n");
	return 0;
}

/**
 * Bootstrap the driver for PCI DMA.
 *
 * \todo
 * The algorithm for decreasing the size of the primary DMA buffer could be
 * better.  The size should be rounded up to the nearest page size, then
 * decrease the request size by a single page each pass through the loop.
 *
 * \todo
 * Determine whether the maximum address passed to drm_pci_alloc is correct.
 * The same goes for drm_addbufs_pci.
 *
 * \sa mga_do_dma_bootstrap, mga_do_agp_dma_bootstrap
 */
static int mga_do_pci_dma_bootstrap(struct drm_device * dev,
				    drm_mga_dma_bootstrap_t * dma_bs)
{
	drm_mga_private_t *const dev_priv =
		(drm_mga_private_t *) dev->dev_private;
	unsigned int warp_size = mga_warp_microcode_size(dev_priv);
	unsigned int primary_size;
	unsigned int bin_count;
	int err;
	struct drm_buf_desc req;


	if (dev->dma == NULL) {
		DRM_ERROR("dev->dma is NULL\n");
		return -EFAULT;
	}

	/* Make drm_addbufs happy by not trying to create a mapping for less
	 * than a page.
	 */
	if (warp_size < PAGE_SIZE)
		warp_size = PAGE_SIZE;

	/* The proper alignment is 0x100 for this mapping */
	err = drm_addmap(dev, 0, warp_size, _DRM_CONSISTENT,
			 _DRM_READ_ONLY, &dev_priv->warp);
	if (err != 0) {
		DRM_ERROR("Unable to create mapping for WARP microcode: %d\n",
			  err);
		return err;
	}

	/* Other than the bottom two bits being used to encode other
	 * information, there don't appear to be any restrictions on the
	 * alignment of the primary or secondary DMA buffers.
	 */

	for (primary_size = dma_bs->primary_size; primary_size != 0;
	     primary_size >>= 1 ) {
		/* The proper alignment for this mapping is 0x04 */
		err = drm_addmap(dev, 0, primary_size, _DRM_CONSISTENT,
				 _DRM_READ_ONLY, &dev_priv->primary);
		if (!err)
			break;
	}

	if (err != 0) {
		DRM_ERROR("Unable to allocate primary DMA region: %d\n", err);
		return -ENOMEM;
	}

	if (dev_priv->primary->size != dma_bs->primary_size) {
		DRM_INFO("Primary DMA buffer size reduced from %u to %u.\n",
			 dma_bs->primary_size,
			 (unsigned)dev_priv->primary->size);
		dma_bs->primary_size = dev_priv->primary->size;
	}

	for (bin_count = dma_bs->secondary_bin_count; bin_count > 0;
	     bin_count-- ) {
		(void)memset(&req, 0, sizeof(req));
		req.count = bin_count;
		req.size = dma_bs->secondary_bin_size;

		err = drm_addbufs_pci(dev, &req);
		if (!err) {
			break;
		}
	}

	if (bin_count == 0) {
		DRM_ERROR("Unable to add secondary DMA buffers: %d\n", err);
		return err;
	}

	if (bin_count != dma_bs->secondary_bin_count) {
		DRM_INFO("Secondary PCI DMA buffer bin count reduced from %u "
			 "to %u.\n", dma_bs->secondary_bin_count, bin_count);

		dma_bs->secondary_bin_count = bin_count;
	}

	dev_priv->dma_access = 0;
	dev_priv->wagp_enable = 0;

	dma_bs->agp_mode = 0;

	DRM_INFO("Initialized card for PCI DMA.\n");
	return 0;
}


static int mga_do_dma_bootstrap(struct drm_device *dev,
				drm_mga_dma_bootstrap_t *dma_bs)
{
	const int is_agp = (dma_bs->agp_mode != 0) && drm_device_is_agp(dev);
	int err;
	drm_mga_private_t *const dev_priv =
		(drm_mga_private_t *) dev->dev_private;


	dev_priv->used_new_dma_init = 1;

	/* The first steps are the same for both PCI and AGP based DMA.  Map
	 * the cards MMIO registers and map a status page.
	 */
	err = drm_addmap(dev, dev_priv->mmio_base, dev_priv->mmio_size,
			 _DRM_REGISTERS, _DRM_READ_ONLY, & dev_priv->mmio);
	if (err) {
		DRM_ERROR("Unable to map MMIO region: %d\n", err);
		return err;
	}


	err = drm_addmap(dev, 0, SAREA_MAX, _DRM_SHM,
			 _DRM_READ_ONLY | _DRM_LOCKED | _DRM_KERNEL,
			 & dev_priv->status);
	if (err) {
		DRM_ERROR("Unable to map status region: %d\n", err);
		return err;
	}


	/* The DMA initialization procedure is slightly different for PCI and
	 * AGP cards.  AGP cards just allocate a large block of AGP memory and
	 * carve off portions of it for internal uses.  The remaining memory
	 * is returned to user-mode to be used for AGP textures.
	 */

	if (is_agp) {
		err = mga_do_agp_dma_bootstrap(dev, dma_bs);
	}

	/* If we attempted to initialize the card for AGP DMA but failed,
	 * clean-up any mess that may have been created.
	 */

	if (err) {
		mga_do_cleanup_dma(dev, MINIMAL_CLEANUP);
	}


	/* Not only do we want to try and initialized PCI cards for PCI DMA,
	 * but we also try to initialized AGP cards that could not be
	 * initialized for AGP DMA.  This covers the case where we have an AGP
	 * card in a system with an unsupported AGP chipset.  In that case the
	 * card will be detected as AGP, but we won't be able to allocate any
	 * AGP memory, etc.
	 */

	if (!is_agp || err) {
		err = mga_do_pci_dma_bootstrap(dev, dma_bs);
	}


	return err;
}

int mga_dma_bootstrap(struct drm_device *dev, void *data,
		      struct drm_file *file_priv)
{
	drm_mga_dma_bootstrap_t *bootstrap = data;
	int err;
	static const int modes[] = { 0, 1, 2, 2, 4, 4, 4, 4 };
	const drm_mga_private_t *const dev_priv =
		(drm_mga_private_t *) dev->dev_private;


	err = mga_do_dma_bootstrap(dev, bootstrap);
	if (err) {
		mga_do_cleanup_dma(dev, FULL_CLEANUP);
		return err;
	}

	if (dev_priv->agp_textures != NULL) {
		bootstrap->texture_handle = dev_priv->agp_textures->offset;
		bootstrap->texture_size = dev_priv->agp_textures->size;
	} else {
		bootstrap->texture_handle = 0;
		bootstrap->texture_size = 0;
	}

	bootstrap->agp_mode = modes[bootstrap->agp_mode & 0x07];

	return 0;
}


static int mga_do_init_dma(struct drm_device * dev, drm_mga_init_t * init)
{
	drm_mga_private_t *dev_priv;
	int ret;
	DRM_DEBUG("\n");


	dev_priv = dev->dev_private;

	if (init->sgram) {
		dev_priv->clear_cmd = MGA_DWGCTL_CLEAR | MGA_ATYPE_BLK;
	} else {
		dev_priv->clear_cmd = MGA_DWGCTL_CLEAR | MGA_ATYPE_RSTR;
	}
	dev_priv->maccess = init->maccess;

	dev_priv->fb_cpp = init->fb_cpp;
	dev_priv->front_offset = init->front_offset;
	dev_priv->front_pitch = init->front_pitch;
	dev_priv->back_offset = init->back_offset;
	dev_priv->back_pitch = init->back_pitch;

	dev_priv->depth_cpp = init->depth_cpp;
	dev_priv->depth_offset = init->depth_offset;
	dev_priv->depth_pitch = init->depth_pitch;

	/* FIXME: Need to support AGP textures...
	 */
	dev_priv->texture_offset = init->texture_offset[0];
	dev_priv->texture_size = init->texture_size[0];

	dev_priv->sarea = drm_getsarea(dev);
	if (!dev_priv->sarea) {
		DRM_ERROR("failed to find sarea!\n");
		return -EINVAL;
	}

	if (!dev_priv->used_new_dma_init) {

		dev_priv->dma_access = MGA_PAGPXFER;
		dev_priv->wagp_enable = MGA_WAGP_ENABLE;

		dev_priv->status = drm_core_findmap(dev, init->status_offset);
		if (!dev_priv->status) {
			DRM_ERROR("failed to find status page!\n");
			return -EINVAL;
		}
		dev_priv->mmio = drm_core_findmap(dev, init->mmio_offset);
		if (!dev_priv->mmio) {
			DRM_ERROR("failed to find mmio region!\n");
			return -EINVAL;
		}
		dev_priv->warp = drm_core_findmap(dev, init->warp_offset);
		if (!dev_priv->warp) {
			DRM_ERROR("failed to find warp microcode region!\n");
			return -EINVAL;
		}
		dev_priv->primary = drm_core_findmap(dev, init->primary_offset);
		if (!dev_priv->primary) {
			DRM_ERROR("failed to find primary dma region!\n");
			return -EINVAL;
		}
		dev->agp_buffer_token = init->buffers_offset;
		dev->agp_buffer_map =
			drm_core_findmap(dev, init->buffers_offset);
		if (!dev->agp_buffer_map) {
			DRM_ERROR("failed to find dma buffer region!\n");
			return -EINVAL;
		}

		drm_core_ioremap(dev_priv->warp, dev);
		drm_core_ioremap(dev_priv->primary, dev);
		drm_core_ioremap(dev->agp_buffer_map, dev);
	}

	dev_priv->sarea_priv =
	    (drm_mga_sarea_t *) ((u8 *) dev_priv->sarea->handle +
				 init->sarea_priv_offset);

	if (!dev_priv->warp->handle ||
	    !dev_priv->primary->handle ||
	    ((dev_priv->dma_access != 0) &&
	     ((dev->agp_buffer_map == NULL) ||
	      (dev->agp_buffer_map->handle == NULL)))) {
		DRM_ERROR("failed to ioremap agp regions!\n");
		return -ENOMEM;
	}

	ret = mga_warp_install_microcode(dev_priv);
	if (ret != 0) {
		DRM_ERROR("failed to install WARP ucode: %d!\n", ret);
		return ret;
	}

	ret = mga_warp_init(dev_priv);
	if (ret != 0) {
		DRM_ERROR("failed to init WARP engine: %d!\n", ret);
		return ret;
	}

	dev_priv->prim.status = (u32 *) dev_priv->status->handle;

	mga_do_wait_for_idle(dev_priv);

	/* Init the primary DMA registers.
	 */
	MGA_WRITE(MGA_PRIMADDRESS, dev_priv->primary->offset | MGA_DMA_GENERAL);

	dev_priv->prim.start = (u8 *) dev_priv->primary->handle;
	dev_priv->prim.end = ((u8 *) dev_priv->primary->handle
			      + dev_priv->primary->size);
	dev_priv->prim.size = dev_priv->primary->size;

	dev_priv->prim.tail = 0;
	dev_priv->prim.space = dev_priv->prim.size;
	dev_priv->prim.wrapped = 0;

	dev_priv->prim.last_flush = 0;
	dev_priv->prim.last_wrap = 0;

	dev_priv->prim.high_mark = 256 * DMA_BLOCK_SIZE;

	dev_priv->prim.status[0] = dev_priv->primary->offset;
	dev_priv->prim.status[1] = 0;

	dev_priv->sarea_priv->last_wrap = 0;
	dev_priv->sarea_priv->last_frame.head = 0;
	dev_priv->sarea_priv->last_frame.wrap = 0;

	if (mga_freelist_init(dev, dev_priv) < 0) {
		DRM_ERROR("could not initialize freelist\n");
		return -ENOMEM;
	}

	return 0;
}

static int mga_do_cleanup_dma(struct drm_device *dev, int full_cleanup)
{
	int err = 0;
	DRM_DEBUG("\n");

	/* Make sure interrupts are disabled here because the uninstall ioctl
	 * may not have been called from userspace and after dev_private
	 * is freed, it's too late.
	 */
	if (dev->irq_enabled)
		drm_irq_uninstall(dev);

	if (dev->dev_private) {
		drm_mga_private_t *dev_priv = dev->dev_private;

		if ((dev_priv->warp != NULL)
		    && (dev_priv->warp->type != _DRM_CONSISTENT))
			drm_core_ioremapfree(dev_priv->warp, dev);

		if ((dev_priv->primary != NULL)
		    && (dev_priv->primary->type != _DRM_CONSISTENT))
			drm_core_ioremapfree(dev_priv->primary, dev);

		if (dev->agp_buffer_map != NULL)
			drm_core_ioremapfree(dev->agp_buffer_map, dev);

		if (dev_priv->used_new_dma_init) {
			if (dev_priv->agp_handle != 0) {
				struct drm_agp_binding unbind_req;
				struct drm_agp_buffer free_req;

				unbind_req.handle = dev_priv->agp_handle;
				drm_agp_unbind(dev, &unbind_req);

				free_req.handle = dev_priv->agp_handle;
				drm_agp_free(dev, &free_req);

				dev_priv->agp_textures = NULL;
				dev_priv->agp_size = 0;
				dev_priv->agp_handle = 0;
			}

			if ((dev->agp != NULL) && dev->agp->acquired) {
				err = drm_agp_release(dev);
			}
		}

		dev_priv->warp = NULL;
		dev_priv->primary = NULL;
		dev_priv->sarea = NULL;
		dev_priv->sarea_priv = NULL;
		dev->agp_buffer_map = NULL;

		if (full_cleanup) {
			dev_priv->mmio = NULL;
			dev_priv->status = NULL;
			dev_priv->used_new_dma_init = 0;
		}

		memset(&dev_priv->prim, 0, sizeof(dev_priv->prim));
		dev_priv->warp_pipe = 0;
		memset(dev_priv->warp_pipe_phys, 0,
		       sizeof(dev_priv->warp_pipe_phys));

		if (dev_priv->head != NULL) {
			mga_freelist_cleanup(dev);
		}
	}

	return err;
}

int mga_dma_init(struct drm_device *dev, void *data,
		 struct drm_file *file_priv)
{
	drm_mga_init_t *init = data;
	int err;

	LOCK_TEST_WITH_RETURN(dev, file_priv);

	switch (init->func) {
	case MGA_INIT_DMA:
		err = mga_do_init_dma(dev, init);
		if (err) {
			(void)mga_do_cleanup_dma(dev, FULL_CLEANUP);
		}
		return err;
	case MGA_CLEANUP_DMA:
		return mga_do_cleanup_dma(dev, FULL_CLEANUP);
	}

	return -EINVAL;
}

/* ================================================================
 * Primary DMA stream management
 */

int mga_dma_flush(struct drm_device *dev, void *data,
		  struct drm_file *file_priv)
{
	drm_mga_private_t *dev_priv = (drm_mga_private_t *) dev->dev_private;
	struct drm_lock *lock = data;

	LOCK_TEST_WITH_RETURN(dev, file_priv);

	DRM_DEBUG("%s%s%s\n",
		  (lock->flags & _DRM_LOCK_FLUSH) ? "flush, " : "",
		  (lock->flags & _DRM_LOCK_FLUSH_ALL) ? "flush all, " : "",
		  (lock->flags & _DRM_LOCK_QUIESCENT) ? "idle, " : "");

	WRAP_WAIT_WITH_RETURN(dev_priv);

	if (lock->flags & (_DRM_LOCK_FLUSH | _DRM_LOCK_FLUSH_ALL)) {
		mga_do_dma_flush(dev_priv);
	}

	if (lock->flags & _DRM_LOCK_QUIESCENT) {
#if MGA_DMA_DEBUG
		int ret = mga_do_wait_for_idle(dev_priv);
		if (ret < 0)
			DRM_INFO("-EBUSY\n");
		return ret;
#else
		return mga_do_wait_for_idle(dev_priv);
#endif
	} else {
		return 0;
	}
}

int mga_dma_reset(struct drm_device *dev, void *data,
		  struct drm_file *file_priv)
{
	drm_mga_private_t *dev_priv = (drm_mga_private_t *) dev->dev_private;

	LOCK_TEST_WITH_RETURN(dev, file_priv);

	return mga_do_dma_reset(dev_priv);
}

/* ================================================================
 * DMA buffer management
 */

static int mga_dma_get_buffers(struct drm_device * dev,
			       struct drm_file *file_priv, struct drm_dma * d)
{
	struct drm_buf *buf;
	int i;

	for (i = d->granted_count; i < d->request_count; i++) {
		buf = mga_freelist_get(dev);
		if (!buf)
			return -EAGAIN;

		buf->file_priv = file_priv;

		if (DRM_COPY_TO_USER(&d->request_indices[i],
				     &buf->idx, sizeof(buf->idx)))
			return -EFAULT;
		if (DRM_COPY_TO_USER(&d->request_sizes[i],
				     &buf->total, sizeof(buf->total)))
			return -EFAULT;

		d->granted_count++;
	}
	return 0;
}

int mga_dma_buffers(struct drm_device *dev, void *data,
		    struct drm_file *file_priv)
{
	struct drm_device_dma *dma = dev->dma;
	drm_mga_private_t *dev_priv = (drm_mga_private_t *) dev->dev_private;
	struct drm_dma *d = data;
	int ret = 0;

	LOCK_TEST_WITH_RETURN(dev, file_priv);

	/* Please don't send us buffers.
	 */
	if (d->send_count != 0) {
		DRM_ERROR("Process %d trying to send %d buffers via drmDMA\n",
			  DRM_CURRENTPID, d->send_count);
		return -EINVAL;
	}

	/* We'll send you buffers.
	 */
	if (d->request_count < 0 || d->request_count > dma->buf_count) {
		DRM_ERROR("Process %d trying to get %d buffers (of %d max)\n",
			  DRM_CURRENTPID, d->request_count, dma->buf_count);
		return -EINVAL;
	}

	WRAP_TEST_WITH_RETURN(dev_priv);

	d->granted_count = 0;

	if (d->request_count) {
		ret = mga_dma_get_buffers(dev, file_priv, d);
	}

	return ret;
}

/**
 * Called just before the module is unloaded.
 */
int mga_driver_unload(struct drm_device * dev)
{
	drm_free(dev->dev_private, sizeof(drm_mga_private_t), DRM_MEM_DRIVER);
	dev->dev_private = NULL;

	return 0;
}

/**
 * Called when the last opener of the device is closed.
 */
void mga_driver_lastclose(struct drm_device * dev)
{
	mga_do_cleanup_dma(dev, FULL_CLEANUP);
}

int mga_driver_dma_quiescent(struct drm_device * dev)
{
	drm_mga_private_t *dev_priv = dev->dev_private;
	return mga_do_wait_for_idle(dev_priv);
}
hl opt">{0x804075bc, 0x00000002}, {0x00108000, 0x00000002}, {0x01400000, 0x00000002}, {0x006000cd, 0x0000000c}, {0x20c07000, 0x00000020}, {0x000000cf, 0x00000012}, {0x00800000, 0x00000006}, {0x0080751d, 0x00000006}, {0000000000, 0000000000}, {0x0000775c, 0x00000002}, {0x00a05000, 0x00000002}, {0x00661000, 0x00000002}, {0x0460275d, 0x00000020}, {0x00004000, 0000000000}, {0x01e00830, 0x00000002}, {0x21007000, 0000000000}, {0x6464614d, 0000000000}, {0x69687420, 0000000000}, {0x00000073, 0000000000}, {0000000000, 0000000000}, {0x00005000, 0x00000002}, {0x000380d0, 0x00000002}, {0x040025e0, 0x00000002}, {0x000075e1, 0000000000}, {0x00000001, 0000000000}, {0x000380e0, 0x00000002}, {0x04002394, 0x00000002}, {0x00005000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0x00000008, 0000000000}, {0x00000004, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, {0000000000, 0000000000}, }; static const u32 R300_cp_microcode[][2] = { { 0x4200e000, 0000000000 }, { 0x4000e000, 0000000000 }, { 0x000000af, 0x00000008 }, { 0x000000b3, 0x00000008 }, { 0x6c5a504f, 0000000000 }, { 0x4f4f497a, 0000000000 }, { 0x5a578288, 0000000000 }, { 0x4f91906a, 0000000000 }, { 0x4f4f4f4f, 0000000000 }, { 0x4fe24f44, 0000000000 }, { 0x4f9c9c9c, 0000000000 }, { 0xdc4f4fde, 0000000000 }, { 0xa1cd4f4f, 0000000000 }, { 0xd29d9d9d, 0000000000 }, { 0x4f0f9fd7, 0000000000 }, { 0x000ca000, 0x00000004 }, { 0x000d0012, 0x00000038 }, { 0x0000e8b4, 0x00000004 }, { 0x000d0014, 0x00000038 }, { 0x0000e8b6, 0x00000004 }, { 0x000d0016, 0x00000038 }, { 0x0000e854, 0x00000004 }, { 0x000d0018, 0x00000038 }, { 0x0000e855, 0x00000004 }, { 0x000d001a, 0x00000038 }, { 0x0000e856, 0x00000004 }, { 0x000d001c, 0x00000038 }, { 0x0000e857, 0x00000004 }, { 0x000d001e, 0x00000038 }, { 0x0000e824, 0x00000004 }, { 0x000d0020, 0x00000038 }, { 0x0000e825, 0x00000004 }, { 0x000d0022, 0x00000038 }, { 0x0000e830, 0x00000004 }, { 0x000d0024, 0x00000038 }, { 0x0000f0c0, 0x00000004 }, { 0x000d0026, 0x00000038 }, { 0x0000f0c1, 0x00000004 }, { 0x000d0028, 0x00000038 }, { 0x0000f041, 0x00000004 }, { 0x000d002a, 0x00000038 }, { 0x0000f184, 0x00000004 }, { 0x000d002c, 0x00000038 }, { 0x0000f185, 0x00000004 }, { 0x000d002e, 0x00000038 }, { 0x0000f186, 0x00000004 }, { 0x000d0030, 0x00000038 }, { 0x0000f187, 0x00000004 }, { 0x000d0032, 0x00000038 }, { 0x0000f180, 0x00000004 }, { 0x000d0034, 0x00000038 }, { 0x0000f393, 0x00000004 }, { 0x000d0036, 0x00000038 }, { 0x0000f38a, 0x00000004 }, { 0x000d0038, 0x00000038 }, { 0x0000f38e, 0x00000004 }, { 0x0000e821, 0x00000004 }, { 0x0140a000, 0x00000004 }, { 0x00000043, 0x00000018 }, { 0x00cce800, 0x00000004 }, { 0x001b0001, 0x00000004 }, { 0x08004800, 0x00000004 }, { 0x001b0001, 0x00000004 }, { 0x08004800, 0x00000004 }, { 0x001b0001, 0x00000004 }, { 0x08004800, 0x00000004 }, { 0x0000003a, 0x00000008 }, { 0x0000a000, 0000000000 }, { 0x02c0a000, 0x00000004 }, { 0x000ca000, 0x00000004 }, { 0x00130000, 0x00000004 }, { 0x000c2000, 0x00000004 }, { 0xc980c045, 0x00000008 }, { 0x2000451d, 0x00000004 }, { 0x0000e580, 0x00000004 }, { 0x000ce581, 0x00000004 }, { 0x08004580, 0x00000004 }, { 0x000ce581, 0x00000004 }, { 0x0000004c, 0x00000008 }, { 0x0000a000, 0000000000 }, { 0x000c2000, 0x00000004 }, { 0x0000e50e, 0x00000004 }, { 0x00032000, 0x00000004 }, { 0x00022056, 0x00000028 }, { 0x00000056, 0x00000024 }, { 0x0800450f, 0x00000004 }, { 0x0000a050, 0x00000008 }, { 0x0000e565, 0x00000004 }, { 0x0000e566, 0x00000004 }, { 0x00000057, 0x00000008 }, { 0x03cca5b4, 0x00000004 }, { 0x05432000, 0x00000004 }, { 0x00022000, 0x00000004 }, { 0x4ccce063, 0x00000030 }, { 0x08274565, 0x00000004 }, { 0x00000063, 0x00000030 }, { 0x08004564, 0x00000004 }, { 0x0000e566, 0x00000004 }, { 0x0000005a, 0x00000008 }, { 0x00802066, 0x00000010 }, { 0x00202000, 0x00000004 }, { 0x001b00ff, 0x00000004 }, { 0x01000069, 0x00000010 }, { 0x001f2000, 0x00000004 }, { 0x001c00ff, 0x00000004 }, { 0000000000, 0x0000000c }, { 0x00000085, 0x00000030 }, { 0x0000005a, 0x00000008 }, { 0x0000e576, 0x00000004 }, { 0x000ca000, 0x00000004 }, { 0x00012000, 0x00000004 }, { 0x00082000, 0x00000004 }, { 0x1800650e, 0x00000004 }, { 0x00092000, 0x00000004 }, { 0x000a2000, 0x00000004 }, { 0x000f0000, 0x00000004 }, { 0x00400000, 0x00000004 }, { 0x00000079, 0x00000018 }, { 0x0000e563, 0x00000004 }, { 0x00c0e5f9, 0x000000c2 }, { 0x0000006e, 0x00000008 }, { 0x0000a06e, 0x00000008 }, { 0x0000e576, 0x00000004 }, { 0x0000e577, 0x00000004 }, { 0x0000e50e, 0x00000004 }, { 0x0000e50f, 0x00000004 }, { 0x0140a000, 0x00000004 }, { 0x0000007c, 0x00000018 }, { 0x00c0e5f9, 0x000000c2 }, { 0x0000007c, 0x00000008 }, { 0x0014e50e, 0x00000004 }, { 0x0040e50f, 0x00000004 }, { 0x00c0007f, 0x00000008 }, { 0x0000e570, 0x00000004 }, { 0x0000e571, 0x00000004 }, { 0x0000e572, 0x0000000c }, { 0x0000a000, 0x00000004 }, { 0x0140a000, 0x00000004 }, { 0x0000e568, 0x00000004 }, { 0x000c2000, 0x00000004 }, { 0x00000089, 0x00000018 }, { 0x000b0000, 0x00000004 }, { 0x18c0e562, 0x00000004 }, { 0x0000008b, 0x00000008 }, { 0x00c0008a, 0x00000008 }, { 0x000700e4, 0x00000004 }, { 0x00000097, 0x00000038 }, { 0x000ca099, 0x00000030 }, { 0x080045bb, 0x00000004 }, { 0x000c209a, 0x00000030 }, { 0x0800e5bc, 0000000000 }, { 0x0000e5bb, 0x00000004 }, { 0x0000e5bc, 0000000000 }, { 0x00120000, 0x0000000c }, { 0x00120000, 0x00000004 }, { 0x001b0002, 0x0000000c }, { 0x0000a000, 0x00000004 }, { 0x0000e821, 0x00000004 }, { 0x0000e800, 0000000000 }, { 0x0000e821, 0x00000004 }, { 0x0000e82e, 0000000000 }, { 0x02cca000, 0x00000004 }, { 0x00140000, 0x00000004 }, { 0x000ce1cc, 0x00000004 }, { 0x050de1cd, 0x00000004 }, { 0x000000a7, 0x00000020 }, { 0x4200e000, 0000000000 }, { 0x000000ae, 0x00000038 }, { 0x000ca000, 0x00000004 }, { 0x00140000, 0x00000004 }, { 0x000c2000, 0x00000004 }, { 0x00160000, 0x00000004 }, { 0x700ce000, 0x00000004 }, { 0x001400aa, 0x00000008 }, { 0x4000e000, 0000000000 }, { 0x02400000, 0x00000004 }, { 0x400ee000, 0x00000004 }, { 0x02400000, 0x00000004 }, { 0x4000e000, 0000000000 }, { 0x000c2000, 0x00000004 }, { 0x0240e51b, 0x00000004 }, { 0x0080e50a, 0x00000005 }, { 0x0080e50b, 0x00000005 }, { 0x00220000, 0x00000004 }, { 0x000700e4, 0x00000004 }, { 0x000000c1, 0x00000038 }, { 0x000c209a, 0x00000030 }, { 0x0880e5bd, 0x00000005 }, { 0x000c2099, 0x00000030 }, { 0x0800e5bb, 0x00000005 }, { 0x000c209a, 0x00000030 }, { 0x0880e5bc, 0x00000005 }, { 0x000000c4, 0x00000008 }, { 0x0080e5bd, 0x00000005 }, { 0x0000e5bb, 0x00000005 }, { 0x0080e5bc, 0x00000005 }, { 0x00210000, 0x00000004 }, { 0x02800000, 0x00000004 }, { 0x00c000c8, 0x00000018 }, { 0x4180e000, 0x00000040 }, { 0x000000ca, 0x00000024 }, { 0x01000000, 0x0000000c }, { 0x0100e51d, 0x0000000c }, { 0x000045bb, 0x00000004 }, { 0x000080c4, 0x00000008 }, { 0x0000f3ce, 0x00000004 }, { 0x0140a000, 0x00000004 }, { 0x00cc2000, 0x00000004 }, { 0x08c053cf, 0x00000040 }, { 0x00008000, 0000000000 }, { 0x0000f3d2, 0x00000004 }, { 0x0140a000, 0x00000004 }, { 0x00cc2000, 0x00000004 }, { 0x08c053d3, 0x00000040 }, { 0x00008000, 0000000000 }, { 0x0000f39d, 0x00000004 }, { 0x0140a000, 0x00000004 }, { 0x00cc2000, 0x00000004 }, { 0x08c0539e, 0x00000040 }, { 0x00008000, 0000000000 }, { 0x03c00830, 0x00000004 }, { 0x4200e000, 0000000000 }, { 0x0000a000, 0x00000004 }, { 0x200045e0, 0x00000004 }, { 0x0000e5e1, 0000000000 }, { 0x00000001, 0000000000 }, { 0x000700e1, 0x00000004 }, { 0x0800e394, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, { 0000000000, 0000000000 }, }; static int RADEON_READ_PLL(drm_device_t * dev, int addr) { drm_radeon_private_t *dev_priv = dev->dev_private; RADEON_WRITE8(RADEON_CLOCK_CNTL_INDEX, addr & 0x1f); return RADEON_READ(RADEON_CLOCK_CNTL_DATA); } static u32 RADEON_READ_PCIE(drm_radeon_private_t *dev_priv, int addr) { RADEON_WRITE8(RADEON_PCIE_INDEX, addr & 0xff); return RADEON_READ(RADEON_PCIE_DATA); } static u32 RADEON_READ_IGPGART(drm_radeon_private_t *dev_priv, int addr) { u32 ret; RADEON_WRITE(RADEON_IGPGART_INDEX, addr & 0x7f); ret = RADEON_READ(RADEON_IGPGART_DATA); RADEON_WRITE(RADEON_IGPGART_INDEX, 0x7f); return ret; } #if RADEON_FIFO_DEBUG static void radeon_status(drm_radeon_private_t * dev_priv) { printk("%s:\n", __FUNCTION__); printk("RBBM_STATUS = 0x%08x\n", (unsigned int)RADEON_READ(RADEON_RBBM_STATUS)); printk("CP_RB_RTPR = 0x%08x\n", (unsigned int)RADEON_READ(RADEON_CP_RB_RPTR)); printk("CP_RB_WTPR = 0x%08x\n", (unsigned int)RADEON_READ(RADEON_CP_RB_WPTR)); printk("AIC_CNTL = 0x%08x\n", (unsigned int)RADEON_READ(RADEON_AIC_CNTL)); printk("AIC_STAT = 0x%08x\n", (unsigned int)RADEON_READ(RADEON_AIC_STAT)); printk("AIC_PT_BASE = 0x%08x\n", (unsigned int)RADEON_READ(RADEON_AIC_PT_BASE)); printk("TLB_ADDR = 0x%08x\n", (unsigned int)RADEON_READ(RADEON_AIC_TLB_ADDR)); printk("TLB_DATA = 0x%08x\n", (unsigned int)RADEON_READ(RADEON_AIC_TLB_DATA)); } #endif /* ================================================================ * Engine, FIFO control */ static int radeon_do_pixcache_flush(drm_radeon_private_t * dev_priv) { u32 tmp; int i; dev_priv->stats.boxes |= RADEON_BOX_WAIT_IDLE; tmp = RADEON_READ(RADEON_RB3D_DSTCACHE_CTLSTAT); tmp |= RADEON_RB3D_DC_FLUSH_ALL; RADEON_WRITE(RADEON_RB3D_DSTCACHE_CTLSTAT, tmp); for (i = 0; i < dev_priv->usec_timeout; i++) { if (!(RADEON_READ(RADEON_RB3D_DSTCACHE_CTLSTAT) & RADEON_RB3D_DC_BUSY)) { return 0; } DRM_UDELAY(1); } #if RADEON_FIFO_DEBUG DRM_ERROR("failed!\n"); radeon_status(dev_priv); #endif return DRM_ERR(EBUSY); } static int radeon_do_wait_for_fifo(drm_radeon_private_t * dev_priv, int entries) { int i; dev_priv->stats.boxes |= RADEON_BOX_WAIT_IDLE; for (i = 0; i < dev_priv->usec_timeout; i++) { int slots = (RADEON_READ(RADEON_RBBM_STATUS) & RADEON_RBBM_FIFOCNT_MASK); if (slots >= entries) return 0; DRM_UDELAY(1); } #if RADEON_FIFO_DEBUG DRM_ERROR("failed!\n"); radeon_status(dev_priv); #endif return DRM_ERR(EBUSY); } static int radeon_do_wait_for_idle(drm_radeon_private_t * dev_priv) { int i, ret; dev_priv->stats.boxes |= RADEON_BOX_WAIT_IDLE; ret = radeon_do_wait_for_fifo(dev_priv, 64); if (ret) return ret; for (i = 0; i < dev_priv->usec_timeout; i++) { if (!(RADEON_READ(RADEON_RBBM_STATUS) & RADEON_RBBM_ACTIVE)) { radeon_do_pixcache_flush(dev_priv); return 0; } DRM_UDELAY(1); } #if RADEON_FIFO_DEBUG DRM_ERROR("failed!\n"); radeon_status(dev_priv); #endif return DRM_ERR(EBUSY); } /* ================================================================ * CP control, initialization */ /* Load the microcode for the CP */ static void radeon_cp_load_microcode(drm_radeon_private_t * dev_priv) { int i; DRM_DEBUG("\n"); radeon_do_wait_for_idle(dev_priv); RADEON_WRITE(RADEON_CP_ME_RAM_ADDR, 0); if (dev_priv->microcode_version == UCODE_R200) { DRM_INFO("Loading R200 Microcode\n"); for (i = 0; i < 256; i++) { RADEON_WRITE(RADEON_CP_ME_RAM_DATAH, R200_cp_microcode[i][1]); RADEON_WRITE(RADEON_CP_ME_RAM_DATAL, R200_cp_microcode[i][0]); } } else if (dev_priv->microcode_version == UCODE_R300) { DRM_INFO("Loading R300 Microcode\n"); for (i = 0; i < 256; i++) { RADEON_WRITE(RADEON_CP_ME_RAM_DATAH, R300_cp_microcode[i][1]); RADEON_WRITE(RADEON_CP_ME_RAM_DATAL, R300_cp_microcode[i][0]); } } else { for (i = 0; i < 256; i++) { RADEON_WRITE(RADEON_CP_ME_RAM_DATAH, radeon_cp_microcode[i][1]); RADEON_WRITE(RADEON_CP_ME_RAM_DATAL, radeon_cp_microcode[i][0]); } } } /* Flush any pending commands to the CP. This should only be used just * prior to a wait for idle, as it informs the engine that the command * stream is ending. */ static void radeon_do_cp_flush(drm_radeon_private_t * dev_priv) { DRM_DEBUG("\n"); #if 0 u32 tmp; tmp = RADEON_READ(RADEON_CP_RB_WPTR) | (1 << 31); RADEON_WRITE(RADEON_CP_RB_WPTR, tmp); #endif } /* Wait for the CP to go idle. */ int radeon_do_cp_idle(drm_radeon_private_t * dev_priv) { RING_LOCALS; DRM_DEBUG("\n"); BEGIN_RING(6); RADEON_PURGE_CACHE(); RADEON_PURGE_ZCACHE(); RADEON_WAIT_UNTIL_IDLE(); ADVANCE_RING(); COMMIT_RING(); return radeon_do_wait_for_idle(dev_priv); } /* Start the Command Processor. */ static void radeon_do_cp_start(drm_radeon_private_t * dev_priv) { RING_LOCALS; DRM_DEBUG("\n"); radeon_do_wait_for_idle(dev_priv); RADEON_WRITE(RADEON_CP_CSQ_CNTL, dev_priv->cp_mode); dev_priv->cp_running = 1; BEGIN_RING(6); RADEON_PURGE_CACHE(); RADEON_PURGE_ZCACHE(); RADEON_WAIT_UNTIL_IDLE(); ADVANCE_RING(); COMMIT_RING(); } /* Reset the Command Processor. This will not flush any pending * commands, so you must wait for the CP command stream to complete * before calling this routine. */ static void radeon_do_cp_reset(drm_radeon_private_t * dev_priv) { u32 cur_read_ptr; DRM_DEBUG("\n"); cur_read_ptr = RADEON_READ(RADEON_CP_RB_RPTR); RADEON_WRITE(RADEON_CP_RB_WPTR, cur_read_ptr); SET_RING_HEAD(dev_priv, cur_read_ptr); dev_priv->ring.tail = cur_read_ptr; } /* Stop the Command Processor. This will not flush any pending * commands, so you must flush the command stream and wait for the CP * to go idle before calling this routine. */ static void radeon_do_cp_stop(drm_radeon_private_t * dev_priv) { DRM_DEBUG("\n"); RADEON_WRITE(RADEON_CP_CSQ_CNTL, RADEON_CSQ_PRIDIS_INDDIS); dev_priv->cp_running = 0; } /* Reset the engine. This will stop the CP if it is running. */ static int radeon_do_engine_reset(drm_device_t * dev) { drm_radeon_private_t *dev_priv = dev->dev_private; u32 clock_cntl_index, mclk_cntl, rbbm_soft_reset; DRM_DEBUG("\n"); radeon_do_pixcache_flush(dev_priv); clock_cntl_index = RADEON_READ(RADEON_CLOCK_CNTL_INDEX); mclk_cntl = RADEON_READ_PLL(dev, RADEON_MCLK_CNTL); RADEON_WRITE_PLL(RADEON_MCLK_CNTL, (mclk_cntl | RADEON_FORCEON_MCLKA | RADEON_FORCEON_MCLKB | RADEON_FORCEON_YCLKA | RADEON_FORCEON_YCLKB | RADEON_FORCEON_MC | RADEON_FORCEON_AIC)); rbbm_soft_reset = RADEON_READ(RADEON_RBBM_SOFT_RESET); RADEON_WRITE(RADEON_RBBM_SOFT_RESET, (rbbm_soft_reset | RADEON_SOFT_RESET_CP | RADEON_SOFT_RESET_HI | RADEON_SOFT_RESET_SE | RADEON_SOFT_RESET_RE | RADEON_SOFT_RESET_PP | RADEON_SOFT_RESET_E2 | RADEON_SOFT_RESET_RB)); RADEON_READ(RADEON_RBBM_SOFT_RESET); RADEON_WRITE(RADEON_RBBM_SOFT_RESET, (rbbm_soft_reset & ~(RADEON_SOFT_RESET_CP | RADEON_SOFT_RESET_HI | RADEON_SOFT_RESET_SE | RADEON_SOFT_RESET_RE | RADEON_SOFT_RESET_PP | RADEON_SOFT_RESET_E2 | RADEON_SOFT_RESET_RB))); RADEON_READ(RADEON_RBBM_SOFT_RESET); RADEON_WRITE_PLL(RADEON_MCLK_CNTL, mclk_cntl); RADEON_WRITE(RADEON_CLOCK_CNTL_INDEX, clock_cntl_index); RADEON_WRITE(RADEON_RBBM_SOFT_RESET, rbbm_soft_reset); /* Reset the CP ring */ radeon_do_cp_reset(dev_priv); /* The CP is no longer running after an engine reset */ dev_priv->cp_running = 0; /* Reset any pending vertex, indirect buffers */ radeon_freelist_reset(dev); return 0; } static void radeon_cp_init_ring_buffer(drm_device_t * dev, drm_radeon_private_t * dev_priv) { u32 ring_start, cur_read_ptr; u32 tmp; /* Initialize the memory controller. With new memory map, the fb location * is not changed, it should have been properly initialized already. Part * of the problem is that the code below is bogus, assuming the GART is * always appended to the fb which is not necessarily the case */ if (!dev_priv->new_memmap) RADEON_WRITE(RADEON_MC_FB_LOCATION, ((dev_priv->gart_vm_start - 1) & 0xffff0000) | (dev_priv->fb_location >> 16)); #if __OS_HAS_AGP if (dev_priv->flags & RADEON_IS_AGP) { RADEON_WRITE(RADEON_AGP_BASE, (unsigned int)dev->agp->base); RADEON_WRITE(RADEON_MC_AGP_LOCATION, (((dev_priv->gart_vm_start - 1 + dev_priv->gart_size) & 0xffff0000) | (dev_priv->gart_vm_start >> 16))); ring_start = (dev_priv->cp_ring->offset - dev->agp->base + dev_priv->gart_vm_start); } else #endif ring_start = (dev_priv->cp_ring->offset - (unsigned long)dev->sg->virtual + dev_priv->gart_vm_start); RADEON_WRITE(RADEON_CP_RB_BASE, ring_start); /* Set the write pointer delay */ RADEON_WRITE(RADEON_CP_RB_WPTR_DELAY, 0); /* Initialize the ring buffer's read and write pointers */ cur_read_ptr = RADEON_READ(RADEON_CP_RB_RPTR); RADEON_WRITE(RADEON_CP_RB_WPTR, cur_read_ptr); SET_RING_HEAD(dev_priv, cur_read_ptr); dev_priv->ring.tail = cur_read_ptr; #if __OS_HAS_AGP if (dev_priv->flags & RADEON_IS_AGP) { RADEON_WRITE(RADEON_CP_RB_RPTR_ADDR, dev_priv->ring_rptr->offset - dev->agp->base + dev_priv->gart_vm_start); } else #endif { drm_sg_mem_t *entry = dev->sg; unsigned long tmp_ofs, page_ofs; tmp_ofs = dev_priv->ring_rptr->offset - (unsigned long)dev->sg->virtual; page_ofs = tmp_ofs >> PAGE_SHIFT; RADEON_WRITE(RADEON_CP_RB_RPTR_ADDR, entry->busaddr[page_ofs]); DRM_DEBUG("ring rptr: offset=0x%08lx handle=0x%08lx\n", (unsigned long)entry->busaddr[page_ofs], entry->handle + tmp_ofs); } /* Set ring buffer size */ #ifdef __BIG_ENDIAN RADEON_WRITE(RADEON_CP_RB_CNTL, dev_priv->ring.size_l2qw | RADEON_BUF_SWAP_32BIT); #else RADEON_WRITE(RADEON_CP_RB_CNTL, dev_priv->ring.size_l2qw); #endif /* Start with assuming that writeback doesn't work */ dev_priv->writeback_works = 0; /* Initialize the scratch register pointer. This will cause * the scratch register values to be written out to memory * whenever they are updated. * * We simply put this behind the ring read pointer, this works * with PCI GART as well as (whatever kind of) AGP GART */ RADEON_WRITE(RADEON_SCRATCH_ADDR, RADEON_READ(RADEON_CP_RB_RPTR_ADDR) + RADEON_SCRATCH_REG_OFFSET); dev_priv->scratch = ((__volatile__ u32 *) dev_priv->ring_rptr->handle + (RADEON_SCRATCH_REG_OFFSET / sizeof(u32))); RADEON_WRITE(RADEON_SCRATCH_UMSK, 0x7); /* Turn on bus mastering */ tmp = RADEON_READ(RADEON_BUS_CNTL) & ~RADEON_BUS_MASTER_DIS; RADEON_WRITE(RADEON_BUS_CNTL, tmp); dev_priv->sarea_priv->last_frame = dev_priv->scratch[0] = 0; RADEON_WRITE(RADEON_LAST_FRAME_REG, dev_priv->sarea_priv->last_frame); dev_priv->sarea_priv->last_dispatch = dev_priv->scratch[1] = 0; RADEON_WRITE(RADEON_LAST_DISPATCH_REG, dev_priv->sarea_priv->last_dispatch); dev_priv->sarea_priv->last_clear = dev_priv->scratch[2] = 0; RADEON_WRITE(RADEON_LAST_CLEAR_REG, dev_priv->sarea_priv->last_clear); radeon_do_wait_for_idle(dev_priv); /* Sync everything up */ RADEON_WRITE(RADEON_ISYNC_CNTL, (RADEON_ISYNC_ANY2D_IDLE3D | RADEON_ISYNC_ANY3D_IDLE2D | RADEON_ISYNC_WAIT_IDLEGUI | RADEON_ISYNC_CPSCRATCH_IDLEGUI)); } static void radeon_test_writeback(drm_radeon_private_t * dev_priv) { u32 tmp; /* Writeback doesn't seem to work everywhere, test it here and possibly * enable it if it appears to work */ DRM_WRITE32(dev_priv->ring_rptr, RADEON_SCRATCHOFF(1), 0); RADEON_WRITE(RADEON_SCRATCH_REG1, 0xdeadbeef); for (tmp = 0; tmp < dev_priv->usec_timeout; tmp++) { if (DRM_READ32(dev_priv->ring_rptr, RADEON_SCRATCHOFF(1)) == 0xdeadbeef) break; DRM_UDELAY(1); } if (tmp < dev_priv->usec_timeout) { dev_priv->writeback_works = 1; DRM_INFO("writeback test succeeded in %d usecs\n", tmp); } else { dev_priv->writeback_works = 0; DRM_INFO("writeback test failed\n"); } if (radeon_no_wb == 1) { dev_priv->writeback_works = 0; DRM_INFO("writeback forced off\n"); } if (!dev_priv->writeback_works) { /* Disable writeback to avoid unnecessary bus master transfers */ RADEON_WRITE(RADEON_CP_RB_CNTL, RADEON_READ(RADEON_CP_RB_CNTL) | RADEON_RB_NO_UPDATE); RADEON_WRITE(RADEON_SCRATCH_UMSK, 0); } } /* Enable or disable IGP GART on the chip */ static void radeon_set_igpgart(drm_radeon_private_t * dev_priv, int on) { u32 temp, tmp; tmp = RADEON_READ(RADEON_AIC_CNTL); DRM_DEBUG("setting igpgart AIC CNTL is %08X\n", tmp); if (on) { DRM_DEBUG("programming igpgart %08X %08lX %08X\n", dev_priv->gart_vm_start, (long)dev_priv->gart_info.bus_addr, dev_priv->gart_size); RADEON_WRITE_IGPGART(RADEON_IGPGART_UNK_18, 0x1000); RADEON_WRITE_IGPGART(RADEON_IGPGART_UNK_38, 0x1); RADEON_WRITE_IGPGART(RADEON_IGPGART_CTRL, 0x42040800); RADEON_WRITE_IGPGART(RADEON_IGPGART_BASE_ADDR, dev_priv->gart_info.bus_addr); temp = RADEON_READ_IGPGART(dev_priv, RADEON_IGPGART_UNK_39); RADEON_WRITE_IGPGART(RADEON_IGPGART_UNK_39, temp); RADEON_WRITE(RADEON_AGP_BASE, (unsigned int)dev_priv->gart_vm_start); dev_priv->gart_size = 32*1024*1024; RADEON_WRITE(RADEON_MC_AGP_LOCATION, (((dev_priv->gart_vm_start - 1 + dev_priv->gart_size) & 0xffff0000) | (dev_priv->gart_vm_start >> 16))); temp = RADEON_READ_IGPGART(dev_priv, RADEON_IGPGART_UNK_38); RADEON_WRITE_IGPGART(RADEON_IGPGART_UNK_38, temp); RADEON_READ_IGPGART(dev_priv, RADEON_IGPGART_UNK_2E); RADEON_WRITE_IGPGART(RADEON_IGPGART_UNK_2E, 0x1); RADEON_READ_IGPGART(dev_priv, RADEON_IGPGART_UNK_2E); RADEON_WRITE_IGPGART(RADEON_IGPGART_UNK_2E, 0x0); } } static void radeon_set_pciegart(drm_radeon_private_t * dev_priv, int on) { u32 tmp = RADEON_READ_PCIE(dev_priv, RADEON_PCIE_TX_GART_CNTL); if (on) { DRM_DEBUG("programming pcie %08X %08lX %08X\n", dev_priv->gart_vm_start, (long)dev_priv->gart_info.bus_addr, dev_priv->gart_size); RADEON_WRITE_PCIE(RADEON_PCIE_TX_DISCARD_RD_ADDR_LO, dev_priv->gart_vm_start); RADEON_WRITE_PCIE(RADEON_PCIE_TX_GART_BASE, dev_priv->gart_info.bus_addr); RADEON_WRITE_PCIE(RADEON_PCIE_TX_GART_START_LO, dev_priv->gart_vm_start); RADEON_WRITE_PCIE(RADEON_PCIE_TX_GART_END_LO, dev_priv->gart_vm_start + dev_priv->gart_size - 1); RADEON_WRITE(RADEON_MC_AGP_LOCATION, 0xffffffc0); /* ?? */ RADEON_WRITE_PCIE(RADEON_PCIE_TX_GART_CNTL, RADEON_PCIE_TX_GART_EN); } else { RADEON_WRITE_PCIE(RADEON_PCIE_TX_GART_CNTL, tmp & ~RADEON_PCIE_TX_GART_EN); } } /* Enable or disable PCI GART on the chip */ static void radeon_set_pcigart(drm_radeon_private_t * dev_priv, int on) { u32 tmp; if (dev_priv->flags & RADEON_IS_IGPGART) { radeon_set_igpgart(dev_priv, on); return; } if (dev_priv->flags & RADEON_IS_PCIE) { radeon_set_pciegart(dev_priv, on); return; } tmp = RADEON_READ(RADEON_AIC_CNTL); if (on) { RADEON_WRITE(RADEON_AIC_CNTL, tmp | RADEON_PCIGART_TRANSLATE_EN); /* set PCI GART page-table base address */ RADEON_WRITE(RADEON_AIC_PT_BASE, dev_priv->gart_info.bus_addr); /* set address range for PCI address translate */ RADEON_WRITE(RADEON_AIC_LO_ADDR, dev_priv->gart_vm_start); RADEON_WRITE(RADEON_AIC_HI_ADDR, dev_priv->gart_vm_start + dev_priv->gart_size - 1); /* Turn off AGP aperture -- is this required for PCI GART? */ RADEON_WRITE(RADEON_MC_AGP_LOCATION, 0xffffffc0); /* ?? */ RADEON_WRITE(RADEON_AGP_COMMAND, 0); /* clear AGP_COMMAND */ } else { RADEON_WRITE(RADEON_AIC_CNTL, tmp & ~RADEON_PCIGART_TRANSLATE_EN); } } static int radeon_do_init_cp(drm_device_t * dev, drm_radeon_init_t * init) { drm_radeon_private_t *dev_priv = dev->dev_private; DRM_DEBUG("\n"); /* if we require new memory map but we don't have it fail */ if ((dev_priv->flags & RADEON_NEW_MEMMAP) && !dev_priv->new_memmap) { DRM_ERROR("Cannot initialise DRM on this card\nThis card requires a new X.org DDX for 3D\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } if (init->is_pci && (dev_priv->flags & RADEON_IS_AGP)) { DRM_DEBUG("Forcing AGP card to PCI mode\n"); dev_priv->flags &= ~RADEON_IS_AGP; } else if (!(dev_priv->flags & (RADEON_IS_AGP | RADEON_IS_PCI | RADEON_IS_PCIE)) && !init->is_pci) { DRM_DEBUG("Restoring AGP flag\n"); dev_priv->flags |= RADEON_IS_AGP; } if ((!(dev_priv->flags & RADEON_IS_AGP)) && !dev->sg) { DRM_ERROR("PCI GART memory not allocated!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } dev_priv->usec_timeout = init->usec_timeout; if (dev_priv->usec_timeout < 1 || dev_priv->usec_timeout > RADEON_MAX_USEC_TIMEOUT) { DRM_DEBUG("TIMEOUT problem!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } switch(init->func) { case RADEON_INIT_R200_CP: dev_priv->microcode_version = UCODE_R200; break; case RADEON_INIT_R300_CP: dev_priv->microcode_version = UCODE_R300; break; default: dev_priv->microcode_version = UCODE_R100; } dev_priv->do_boxes = 0; dev_priv->cp_mode = init->cp_mode; /* We don't support anything other than bus-mastering ring mode, * but the ring can be in either AGP or PCI space for the ring * read pointer. */ if ((init->cp_mode != RADEON_CSQ_PRIBM_INDDIS) && (init->cp_mode != RADEON_CSQ_PRIBM_INDBM)) { DRM_DEBUG("BAD cp_mode (%x)!\n", init->cp_mode); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } switch (init->fb_bpp) { case 16: dev_priv->color_fmt = RADEON_COLOR_FORMAT_RGB565; break; case 32: default: dev_priv->color_fmt = RADEON_COLOR_FORMAT_ARGB8888; break; } dev_priv->front_offset = init->front_offset; dev_priv->front_pitch = init->front_pitch; dev_priv->back_offset = init->back_offset; dev_priv->back_pitch = init->back_pitch; switch (init->depth_bpp) { case 16: dev_priv->depth_fmt = RADEON_DEPTH_FORMAT_16BIT_INT_Z; break; case 32: default: dev_priv->depth_fmt = RADEON_DEPTH_FORMAT_24BIT_INT_Z; break; } dev_priv->depth_offset = init->depth_offset; dev_priv->depth_pitch = init->depth_pitch; /* Hardware state for depth clears. Remove this if/when we no * longer clear the depth buffer with a 3D rectangle. Hard-code * all values to prevent unwanted 3D state from slipping through * and screwing with the clear operation. */ dev_priv->depth_clear.rb3d_cntl = (RADEON_PLANE_MASK_ENABLE | (dev_priv->color_fmt << 10) | (dev_priv->microcode_version == UCODE_R100 ? RADEON_ZBLOCK16 : 0)); dev_priv->depth_clear.rb3d_zstencilcntl = (dev_priv->depth_fmt | RADEON_Z_TEST_ALWAYS | RADEON_STENCIL_TEST_ALWAYS | RADEON_STENCIL_S_FAIL_REPLACE | RADEON_STENCIL_ZPASS_REPLACE | RADEON_STENCIL_ZFAIL_REPLACE | RADEON_Z_WRITE_ENABLE); dev_priv->depth_clear.se_cntl = (RADEON_FFACE_CULL_CW | RADEON_BFACE_SOLID | RADEON_FFACE_SOLID | RADEON_FLAT_SHADE_VTX_LAST | RADEON_DIFFUSE_SHADE_FLAT | RADEON_ALPHA_SHADE_FLAT | RADEON_SPECULAR_SHADE_FLAT | RADEON_FOG_SHADE_FLAT | RADEON_VTX_PIX_CENTER_OGL | RADEON_ROUND_MODE_TRUNC | RADEON_ROUND_PREC_8TH_PIX); DRM_GETSAREA(); dev_priv->ring_offset = init->ring_offset; dev_priv->ring_rptr_offset = init->ring_rptr_offset; dev_priv->buffers_offset = init->buffers_offset; dev_priv->gart_textures_offset = init->gart_textures_offset; if (!dev_priv->sarea) { DRM_ERROR("could not find sarea!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } dev_priv->cp_ring = drm_core_findmap(dev, init->ring_offset); if (!dev_priv->cp_ring) { DRM_ERROR("could not find cp ring region!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } dev_priv->ring_rptr = drm_core_findmap(dev, init->ring_rptr_offset); if (!dev_priv->ring_rptr) { DRM_ERROR("could not find ring read pointer!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } dev->agp_buffer_token = init->buffers_offset; dev->agp_buffer_map = drm_core_findmap(dev, init->buffers_offset); if (!dev->agp_buffer_map) { DRM_ERROR("could not find dma buffer region!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } if (init->gart_textures_offset) { dev_priv->gart_textures = drm_core_findmap(dev, init->gart_textures_offset); if (!dev_priv->gart_textures) { DRM_ERROR("could not find GART texture region!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } } dev_priv->sarea_priv = (drm_radeon_sarea_t *) ((u8 *) dev_priv->sarea->handle + init->sarea_priv_offset); #if __OS_HAS_AGP if (dev_priv->flags & RADEON_IS_AGP) { drm_core_ioremap(dev_priv->cp_ring, dev); drm_core_ioremap(dev_priv->ring_rptr, dev); drm_core_ioremap(dev->agp_buffer_map, dev); if (!dev_priv->cp_ring->handle || !dev_priv->ring_rptr->handle || !dev->agp_buffer_map->handle) { DRM_ERROR("could not find ioremap agp regions!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } } else #endif { dev_priv->cp_ring->handle = (void *)dev_priv->cp_ring->offset; dev_priv->ring_rptr->handle = (void *)dev_priv->ring_rptr->offset; dev->agp_buffer_map->handle = (void *)dev->agp_buffer_map->offset; DRM_DEBUG("dev_priv->cp_ring->handle %p\n", dev_priv->cp_ring->handle); DRM_DEBUG("dev_priv->ring_rptr->handle %p\n", dev_priv->ring_rptr->handle); DRM_DEBUG("dev->agp_buffer_map->handle %p\n", dev->agp_buffer_map->handle); } dev_priv->fb_location = (RADEON_READ(RADEON_MC_FB_LOCATION) & 0xffff) << 16; dev_priv->fb_size = ((RADEON_READ(RADEON_MC_FB_LOCATION) & 0xffff0000u) + 0x10000) - dev_priv->fb_location; dev_priv->front_pitch_offset = (((dev_priv->front_pitch / 64) << 22) | ((dev_priv->front_offset + dev_priv->fb_location) >> 10)); dev_priv->back_pitch_offset = (((dev_priv->back_pitch / 64) << 22) | ((dev_priv->back_offset + dev_priv->fb_location) >> 10)); dev_priv->depth_pitch_offset = (((dev_priv->depth_pitch / 64) << 22) | ((dev_priv->depth_offset + dev_priv->fb_location) >> 10)); dev_priv->gart_size = init->gart_size; /* New let's set the memory map ... */ if (dev_priv->new_memmap) { u32 base = 0; DRM_INFO("Setting GART location based on new memory map\n"); /* If using AGP, try to locate the AGP aperture at the same * location in the card and on the bus, though we have to * align it down. */ #if __OS_HAS_AGP if (dev_priv->flags & RADEON_IS_AGP) { base = dev->agp->base; /* Check if valid */ if ((base + dev_priv->gart_size - 1) >= dev_priv->fb_location && base < (dev_priv->fb_location + dev_priv->fb_size - 1)) { DRM_INFO("Can't use AGP base @0x%08lx, won't fit\n", dev->agp->base); base = 0; } } #endif /* If not or if AGP is at 0 (Macs), try to put it elsewhere */ if (base == 0) { base = dev_priv->fb_location + dev_priv->fb_size; if (base < dev_priv->fb_location || ((base + dev_priv->gart_size) & 0xfffffffful) < base) base = dev_priv->fb_location - dev_priv->gart_size; } dev_priv->gart_vm_start = base & 0xffc00000u; if (dev_priv->gart_vm_start != base) DRM_INFO("GART aligned down from 0x%08x to 0x%08x\n", base, dev_priv->gart_vm_start); } else { DRM_INFO("Setting GART location based on old memory map\n"); dev_priv->gart_vm_start = dev_priv->fb_location + RADEON_READ(RADEON_CONFIG_APER_SIZE); } #if __OS_HAS_AGP if (dev_priv->flags & RADEON_IS_AGP) dev_priv->gart_buffers_offset = (dev->agp_buffer_map->offset - dev->agp->base + dev_priv->gart_vm_start); else #endif dev_priv->gart_buffers_offset = (dev->agp_buffer_map->offset - (unsigned long)dev->sg->virtual + dev_priv->gart_vm_start); DRM_DEBUG("dev_priv->gart_size %d\n", dev_priv->gart_size); DRM_DEBUG("dev_priv->gart_vm_start 0x%x\n", dev_priv->gart_vm_start); DRM_DEBUG("dev_priv->gart_buffers_offset 0x%lx\n", dev_priv->gart_buffers_offset); dev_priv->ring.start = (u32 *) dev_priv->cp_ring->handle; dev_priv->ring.end = ((u32 *) dev_priv->cp_ring->handle + init->ring_size / sizeof(u32)); dev_priv->ring.size = init->ring_size; dev_priv->ring.size_l2qw = drm_order(init->ring_size / 8); dev_priv->ring.tail_mask = (dev_priv->ring.size / sizeof(u32)) - 1; dev_priv->ring.high_mark = RADEON_RING_HIGH_MARK; #if __OS_HAS_AGP if (dev_priv->flags & RADEON_IS_AGP) { /* Turn off PCI GART */ radeon_set_pcigart(dev_priv, 0); } else #endif { /* if we have an offset set from userspace */ if (dev_priv->pcigart_offset_set) { dev_priv->gart_info.bus_addr = dev_priv->pcigart_offset + dev_priv->fb_location; dev_priv->gart_info.mapping.offset = dev_priv->gart_info.bus_addr; dev_priv->gart_info.mapping.size = dev_priv->gart_info.table_size; drm_core_ioremap(&dev_priv->gart_info.mapping, dev); dev_priv->gart_info.addr = dev_priv->gart_info.mapping.handle; if (dev_priv->flags & RADEON_IS_PCIE) dev_priv->gart_info.gart_reg_if = DRM_ATI_GART_PCIE; else dev_priv->gart_info.gart_reg_if = DRM_ATI_GART_PCI; dev_priv->gart_info.gart_table_location = DRM_ATI_GART_FB; DRM_DEBUG("Setting phys_pci_gart to %p %08lX\n", dev_priv->gart_info.addr, dev_priv->pcigart_offset); } else { if (dev_priv->flags & RADEON_IS_IGPGART) dev_priv->gart_info.gart_reg_if = DRM_ATI_GART_IGP; else dev_priv->gart_info.gart_reg_if = DRM_ATI_GART_PCI; dev_priv->gart_info.gart_table_location = DRM_ATI_GART_MAIN; dev_priv->gart_info.addr = NULL; dev_priv->gart_info.bus_addr = 0; if (dev_priv->flags & RADEON_IS_PCIE) { DRM_ERROR ("Cannot use PCI Express without GART in FB memory\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(EINVAL); } } if (!drm_ati_pcigart_init(dev, &dev_priv->gart_info)) { DRM_ERROR("failed to init PCI GART!\n"); radeon_do_cleanup_cp(dev); return DRM_ERR(ENOMEM); } /* Turn on PCI GART */ radeon_set_pcigart(dev_priv, 1); } radeon_cp_load_microcode(dev_priv); radeon_cp_init_ring_buffer(dev, dev_priv); dev_priv->last_buf = 0; radeon_do_engine_reset(dev); radeon_test_writeback(dev_priv); return 0; } static int radeon_do_cleanup_cp(drm_device_t * dev) { drm_radeon_private_t *dev_priv = dev->dev_private; DRM_DEBUG("\n"); /* Make sure interrupts are disabled here because the uninstall ioctl * may not have been called from userspace and after dev_private * is freed, it's too late. */ if (dev->irq_enabled) drm_irq_uninstall(dev); #if __OS_HAS_AGP if (dev_priv->flags & RADEON_IS_AGP) { if (dev_priv->cp_ring != NULL) { drm_core_ioremapfree(dev_priv->cp_ring, dev); dev_priv->cp_ring = NULL; } if (dev_priv->ring_rptr != NULL) { drm_core_ioremapfree(dev_priv->ring_rptr, dev); dev_priv->ring_rptr = NULL; } if (dev->agp_buffer_map != NULL) { drm_core_ioremapfree(dev->agp_buffer_map, dev); dev->agp_buffer_map = NULL; } } else #endif { if (dev_priv->gart_info.bus_addr) { /* Turn off PCI GART */ radeon_set_pcigart(dev_priv, 0); if (!drm_ati_pcigart_cleanup(dev, &dev_priv->gart_info)) DRM_ERROR("failed to cleanup PCI GART!\n"); } if (dev_priv->gart_info.gart_table_location == DRM_ATI_GART_FB) { drm_core_ioremapfree(&dev_priv->gart_info.mapping, dev); dev_priv->gart_info.addr = 0; } } /* only clear to the start of flags */ memset(dev_priv, 0, offsetof(drm_radeon_private_t, flags)); return 0; } /* This code will reinit the Radeon CP hardware after a resume from disc. * AFAIK, it would be very difficult to pickle the state at suspend time, so * here we make sure that all Radeon hardware initialisation is re-done without * affecting running applications. * * Charl P. Botha <http://cpbotha.net> */ static int radeon_do_resume_cp(drm_device_t * dev) { drm_radeon_private_t *dev_priv = dev->dev_private; if (!dev_priv) { DRM_ERROR("Called with no initialization\n"); return DRM_ERR(EINVAL); } DRM_DEBUG("Starting radeon_do_resume_cp()\n"); #if __OS_HAS_AGP if (dev_priv->flags & RADEON_IS_AGP) { /* Turn off PCI GART */ radeon_set_pcigart(dev_priv, 0); } else #endif { /* Turn on PCI GART */ radeon_set_pcigart(dev_priv, 1); } radeon_cp_load_microcode(dev_priv); radeon_cp_init_ring_buffer(dev, dev_priv); radeon_do_engine_reset(dev); DRM_DEBUG("radeon_do_resume_cp() complete\n"); return 0; } int radeon_cp_init(DRM_IOCTL_ARGS) { DRM_DEVICE; drm_radeon_init_t init; LOCK_TEST_WITH_RETURN(dev, filp); DRM_COPY_FROM_USER_IOCTL(init, (drm_radeon_init_t __user *) data, sizeof(init)); if (init.func == RADEON_INIT_R300_CP) r300_init_reg_flags(); switch (init.func) { case RADEON_INIT_CP: case RADEON_INIT_R200_CP: case RADEON_INIT_R300_CP: return radeon_do_init_cp(dev, &init); case RADEON_CLEANUP_CP: return radeon_do_cleanup_cp(dev); } return DRM_ERR(EINVAL); } int radeon_cp_start(DRM_IOCTL_ARGS) { DRM_DEVICE; drm_radeon_private_t *dev_priv = dev->dev_private; DRM_DEBUG("\n"); LOCK_TEST_WITH_RETURN(dev, filp); if (dev_priv->cp_running) { DRM_DEBUG("%s while CP running\n", __FUNCTION__); return 0; } if (dev_priv->cp_mode == RADEON_CSQ_PRIDIS_INDDIS) { DRM_DEBUG("%s called with bogus CP mode (%d)\n", __FUNCTION__, dev_priv->cp_mode); return 0; } radeon_do_cp_start(dev_priv); return 0; } /* Stop the CP. The engine must have been idled before calling this * routine. */ int radeon_cp_stop(DRM_IOCTL_ARGS) { DRM_DEVICE; drm_radeon_private_t *dev_priv = dev->dev_private; drm_radeon_cp_stop_t stop; int ret; DRM_DEBUG("\n"); LOCK_TEST_WITH_RETURN(dev, filp); DRM_COPY_FROM_USER_IOCTL(stop, (drm_radeon_cp_stop_t __user *) data, sizeof(stop)); if (!dev_priv->cp_running) return 0; /* Flush any pending CP commands. This ensures any outstanding * commands are exectuted by the engine before we turn it off. */ if (stop.flush) { radeon_do_cp_flush(dev_priv); } /* If we fail to make the engine go idle, we return an error * code so that the DRM ioctl wrapper can try again. */ if (stop.idle) { ret = radeon_do_cp_idle(dev_priv); if (ret) return ret; } /* Finally, we can turn off the CP. If the engine isn't idle, * we will get some dropped triangles as they won't be fully * rendered before the CP is shut down. */ radeon_do_cp_stop(dev_priv); /* Reset the engine */ radeon_do_engine_reset(dev); return 0; } void radeon_do_release(drm_device_t * dev) { drm_radeon_private_t *dev_priv = dev->dev_private; int i, ret; if (dev_priv) { if (dev_priv->cp_running) { /* Stop the cp */ while ((ret = radeon_do_cp_idle(dev_priv)) != 0) { DRM_DEBUG("radeon_do_cp_idle %d\n", ret); #ifdef __linux__ schedule(); #else #if defined(__FreeBSD__) && __FreeBSD_version > 500000 msleep(&ret, &dev->dev_lock, PZERO, "rdnrel", 1); #else tsleep(&ret, PZERO, "rdnrel", 1); #endif #endif } radeon_do_cp_stop(dev_priv); radeon_do_engine_reset(dev); } /* Disable *all* interrupts */ if (dev_priv->mmio) /* remove this after permanent addmaps */ RADEON_WRITE(RADEON_GEN_INT_CNTL, 0); if (dev_priv->mmio) { /* remove all surfaces */ for (i = 0; i < RADEON_MAX_SURFACES; i++) { RADEON_WRITE(RADEON_SURFACE0_INFO + 16 * i, 0); RADEON_WRITE(RADEON_SURFACE0_LOWER_BOUND + 16 * i, 0); RADEON_WRITE(RADEON_SURFACE0_UPPER_BOUND + 16 * i, 0); } } /* Free memory heap structures */ radeon_mem_takedown(&(dev_priv->gart_heap)); radeon_mem_takedown(&(dev_priv->fb_heap)); /* deallocate kernel resources */ radeon_do_cleanup_cp(dev); } } /* Just reset the CP ring. Called as part of an X Server engine reset. */ int radeon_cp_reset(DRM_IOCTL_ARGS) { DRM_DEVICE; drm_radeon_private_t *dev_priv = dev->dev_private; DRM_DEBUG("\n"); LOCK_TEST_WITH_RETURN(dev, filp); if (!dev_priv) { DRM_DEBUG("%s called before init done\n", __FUNCTION__); return DRM_ERR(EINVAL); } radeon_do_cp_reset(dev_priv); /* The CP is no longer running after an engine reset */ dev_priv->cp_running = 0; return 0; } int radeon_cp_idle(DRM_IOCTL_ARGS) { DRM_DEVICE; drm_radeon_private_t *dev_priv = dev->dev_private; DRM_DEBUG("\n"); LOCK_TEST_WITH_RETURN(dev, filp); return radeon_do_cp_idle(dev_priv); } /* Added by Charl P. Botha to call radeon_do_resume_cp(). */ int radeon_cp_resume(DRM_IOCTL_ARGS) { DRM_DEVICE; return radeon_do_resume_cp(dev); } int radeon_engine_reset(DRM_IOCTL_ARGS) { DRM_DEVICE; DRM_DEBUG("\n"); LOCK_TEST_WITH_RETURN(dev, filp); return radeon_do_engine_reset(dev); } /* ================================================================ * Fullscreen mode */ /* KW: Deprecated to say the least: */ int radeon_fullscreen(DRM_IOCTL_ARGS) { return 0; } /* ================================================================ * Freelist management */ /* Original comment: FIXME: ROTATE_BUFS is a hack to cycle through * bufs until freelist code is used. Note this hides a problem with * the scratch register * (used to keep track of last buffer * completed) being written to before * the last buffer has actually * completed rendering. * * KW: It's also a good way to find free buffers quickly. * * KW: Ideally this loop wouldn't exist, and freelist_get wouldn't * sleep. However, bugs in older versions of radeon_accel.c mean that * we essentially have to do this, else old clients will break. * * However, it does leave open a potential deadlock where all the * buffers are held by other clients, which can't release them because * they can't get the lock. */ drm_buf_t *radeon_freelist_get(drm_device_t * dev) { drm_device_dma_t *dma = dev->dma; drm_radeon_private_t *dev_priv = dev->dev_private; drm_radeon_buf_priv_t *buf_priv; drm_buf_t *buf; int i, t; int start; if (++dev_priv->last_buf >= dma->buf_count) dev_priv->last_buf = 0; start = dev_priv->last_buf; for (t = 0; t < dev_priv->usec_timeout; t++) { u32 done_age = GET_SCRATCH(1); DRM_DEBUG("done_age = %d\n", done_age); for (i = start; i < dma->buf_count; i++) { buf = dma->buflist[i]; buf_priv = buf->dev_private; if (buf->filp == 0 || (buf->pending && buf_priv->age <= done_age)) { dev_priv->stats.requested_bufs++; buf->pending = 0; return buf; } start = 0; } if (t) { DRM_UDELAY(1); dev_priv->stats.freelist_loops++; } } DRM_DEBUG("returning NULL!\n"); return NULL; } #if 0 drm_buf_t *radeon_freelist_get(drm_device_t * dev) { drm_device_dma_t *dma = dev->dma; drm_radeon_private_t *dev_priv = dev->dev_private; drm_radeon_buf_priv_t *buf_priv; drm_buf_t *buf; int i, t; int start; u32 done_age = DRM_READ32(dev_priv->ring_rptr, RADEON_SCRATCHOFF(1)); if (++dev_priv->last_buf >= dma->buf_count) dev_priv->last_buf = 0; start = dev_priv->last_buf; dev_priv->stats.freelist_loops++; for (t = 0; t < 2; t++) { for (i = start; i < dma->buf_count; i++) { buf = dma->buflist[i]; buf_priv = buf->dev_private; if (buf->filp == 0 || (buf->pending && buf_priv->age <= done_age)) { dev_priv->stats.requested_bufs++; buf->pending = 0; return buf; } } start = 0; } return NULL; } #endif void radeon_freelist_reset(drm_device_t * dev) { drm_device_dma_t *dma = dev->dma; drm_radeon_private_t *dev_priv = dev->dev_private; int i; dev_priv->last_buf = 0; for (i = 0; i < dma->buf_count; i++) { drm_buf_t *buf = dma->buflist[i]; drm_radeon_buf_priv_t *buf_priv = buf->dev_private; buf_priv->age = 0; } } /* ================================================================ * CP command submission */ int radeon_wait_ring(drm_radeon_private_t * dev_priv, int n) { drm_radeon_ring_buffer_t *ring = &dev_priv->ring; int i; u32 last_head = GET_RING_HEAD(dev_priv); for (i = 0; i < dev_priv->usec_timeout; i++) { u32 head = GET_RING_HEAD(dev_priv); ring->space = (head - ring->tail) * sizeof(u32); if (ring->space <= 0) ring->space += ring->size; if (ring->space > n) return 0; dev_priv->stats.boxes |= RADEON_BOX_WAIT_IDLE; if (head != last_head) i = 0; last_head = head; DRM_UDELAY(1); } /* FIXME: This return value is ignored in the BEGIN_RING macro! */ #if RADEON_FIFO_DEBUG radeon_status(dev_priv); DRM_ERROR("failed!\n"); #endif return DRM_ERR(EBUSY); } static int radeon_cp_get_buffers(DRMFILE filp, drm_device_t * dev, drm_dma_t * d) { int i; drm_buf_t *buf; for (i = d->granted_count; i < d->request_count; i++) { buf = radeon_freelist_get(dev); if (!buf) return DRM_ERR(EBUSY); /* NOTE: broken client */ buf->filp = filp; if (DRM_COPY_TO_USER(&d->request_indices[i], &buf->idx, sizeof(buf->idx))) return DRM_ERR(EFAULT); if (DRM_COPY_TO_USER(&d->request_sizes[i], &buf->total, sizeof(buf->total))) return DRM_ERR(EFAULT); d->granted_count++; } return 0; } int radeon_cp_buffers(DRM_IOCTL_ARGS) { DRM_DEVICE; drm_device_dma_t *dma = dev->dma; int ret = 0; drm_dma_t __user *argp = (void __user *)data; drm_dma_t d; LOCK_TEST_WITH_RETURN(dev, filp); DRM_COPY_FROM_USER_IOCTL(d, argp, sizeof(d)); /* Please don't send us buffers. */ if (d.send_count != 0) { DRM_ERROR("Process %d trying to send %d buffers via drmDMA\n", DRM_CURRENTPID, d.send_count); return DRM_ERR(EINVAL); } /* We'll send you buffers. */ if (d.request_count < 0 || d.request_count > dma->buf_count) { DRM_ERROR("Process %d trying to get %d buffers (of %d max)\n", DRM_CURRENTPID, d.request_count, dma->buf_count); return DRM_ERR(EINVAL); } d.granted_count = 0; if (d.request_count) { ret = radeon_cp_get_buffers(filp, dev, &d); } DRM_COPY_TO_USER_IOCTL(argp, d, sizeof(d)); return ret; } int radeon_driver_load(struct drm_device *dev, unsigned long flags) { drm_radeon_private_t *dev_priv; int ret = 0; dev_priv = drm_alloc(sizeof(drm_radeon_private_t), DRM_MEM_DRIVER); if (dev_priv == NULL) return DRM_ERR(ENOMEM); memset(dev_priv, 0, sizeof(drm_radeon_private_t)); dev->dev_private = (void *)dev_priv; dev_priv->flags = flags; switch (flags & RADEON_FAMILY_MASK) { case CHIP_R100: case CHIP_RV200: case CHIP_R200: case CHIP_R300: case CHIP_R350: case CHIP_R420: case CHIP_RV410: dev_priv->flags |= RADEON_HAS_HIERZ; break; default: /* all other chips have no hierarchical z buffer */ break; } if (drm_device_is_agp(dev)) dev_priv->flags |= RADEON_IS_AGP; else if (drm_device_is_pcie(dev)) dev_priv->flags |= RADEON_IS_PCIE; else dev_priv->flags |= RADEON_IS_PCI; DRM_DEBUG("%s card detected\n", ((dev_priv->flags & RADEON_IS_AGP) ? "AGP" : (((dev_priv->flags & RADEON_IS_PCIE) ? "PCIE" : "PCI")))); return ret; } /* Create mappings for registers and framebuffer so userland doesn't necessarily * have to find them. */ int radeon_driver_firstopen(struct drm_device *dev) { int ret; drm_local_map_t *map; drm_radeon_private_t *dev_priv = dev->dev_private; dev_priv->gart_info.table_size = RADEON_PCIGART_TABLE_SIZE; ret = drm_addmap(dev, drm_get_resource_start(dev, 2), drm_get_resource_len(dev, 2), _DRM_REGISTERS, _DRM_READ_ONLY, &dev_priv->mmio); if (ret != 0) return ret; ret = drm_addmap(dev, drm_get_resource_start(dev, 0), drm_get_resource_len(dev, 0), _DRM_FRAME_BUFFER, _DRM_WRITE_COMBINING, &map); if (ret != 0) return ret; return 0; } int radeon_driver_unload(struct drm_device *dev) { drm_radeon_private_t *dev_priv = dev->dev_private; DRM_DEBUG("\n"); drm_free(dev_priv, sizeof(*dev_priv), DRM_MEM_DRIVER); dev->dev_private = NULL; return 0; }