nvd0_display.c 43.6 KB
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/*
 * Copyright 2011 Red Hat Inc.
 *
 * 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 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
 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) 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: Ben Skeggs
 */

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#include <linux/dma-mapping.h>
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#include "drmP.h"
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#include "drm_crtc_helper.h"
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#include "nouveau_drv.h"
#include "nouveau_connector.h"
#include "nouveau_encoder.h"
#include "nouveau_crtc.h"
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#include "nouveau_dma.h"
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#include "nouveau_fb.h"
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#include "nv50_display.h"
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struct nvd0_display {
	struct nouveau_gpuobj *mem;
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	struct {
		dma_addr_t handle;
		u32 *ptr;
	} evo[1];
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	struct tasklet_struct tasklet;
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	u32 modeset;
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};

static struct nvd0_display *
nvd0_display(struct drm_device *dev)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;
	return dev_priv->engine.display.priv;
}

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static inline int
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evo_icmd(struct drm_device *dev, int id, u32 mthd, u32 data)
{
	int ret = 0;
	nv_mask(dev, 0x610700 + (id * 0x10), 0x00000001, 0x00000001);
	nv_wr32(dev, 0x610704 + (id * 0x10), data);
	nv_mask(dev, 0x610704 + (id * 0x10), 0x80000ffc, 0x80000000 | mthd);
	if (!nv_wait(dev, 0x610704 + (id * 0x10), 0x80000000, 0x00000000))
		ret = -EBUSY;
	nv_mask(dev, 0x610700 + (id * 0x10), 0x00000001, 0x00000000);
	return ret;
}

static u32 *
evo_wait(struct drm_device *dev, int id, int nr)
{
	struct nvd0_display *disp = nvd0_display(dev);
	u32 put = nv_rd32(dev, 0x640000 + (id * 0x1000)) / 4;

	if (put + nr >= (PAGE_SIZE / 4)) {
		disp->evo[id].ptr[put] = 0x20000000;

		nv_wr32(dev, 0x640000 + (id * 0x1000), 0x00000000);
		if (!nv_wait(dev, 0x640004 + (id * 0x1000), ~0, 0x00000000)) {
			NV_ERROR(dev, "evo %d dma stalled\n", id);
			return NULL;
		}

		put = 0;
	}

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	if (nouveau_reg_debug & NOUVEAU_REG_DEBUG_EVO)
		NV_INFO(dev, "Evo%d: %p START\n", id, disp->evo[id].ptr + put);

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	return disp->evo[id].ptr + put;
}

static void
evo_kick(u32 *push, struct drm_device *dev, int id)
{
	struct nvd0_display *disp = nvd0_display(dev);
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	if (nouveau_reg_debug & NOUVEAU_REG_DEBUG_EVO) {
		u32 curp = nv_rd32(dev, 0x640000 + (id * 0x1000)) >> 2;
		u32 *cur = disp->evo[id].ptr + curp;

		while (cur < push)
			NV_INFO(dev, "Evo%d: 0x%08x\n", id, *cur++);
		NV_INFO(dev, "Evo%d: %p KICK!\n", id, push);
	}

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	nv_wr32(dev, 0x640000 + (id * 0x1000), (push - disp->evo[id].ptr) << 2);
}

#define evo_mthd(p,m,s) *((p)++) = (((s) << 18) | (m))
#define evo_data(p,d)   *((p)++) = (d)

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static struct drm_crtc *
nvd0_display_crtc_get(struct drm_encoder *encoder)
{
	return nouveau_encoder(encoder)->crtc;
}

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/******************************************************************************
 * CRTC
 *****************************************************************************/
static int
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nvd0_crtc_set_dither(struct nouveau_crtc *nv_crtc, bool update)
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{
	struct drm_device *dev = nv_crtc->base.dev;
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	struct nouveau_connector *nv_connector;
	struct drm_connector *connector;
	u32 *push, mode = 0x00;
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	nv_connector = nouveau_crtc_connector_get(nv_crtc);
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	connector = &nv_connector->base;
	if (nv_connector->dithering_mode == DITHERING_MODE_AUTO) {
		if (nv_crtc->base.fb->depth > connector->display_info.bpc * 3)
			mode = DITHERING_MODE_DYNAMIC2X2;
	} else {
		mode = nv_connector->dithering_mode;
	}

	if (nv_connector->dithering_depth == DITHERING_DEPTH_AUTO) {
		if (connector->display_info.bpc >= 8)
			mode |= DITHERING_DEPTH_8BPC;
	} else {
		mode |= nv_connector->dithering_depth;
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	}

	push = evo_wait(dev, 0, 4);
	if (push) {
		evo_mthd(push, 0x0490 + (nv_crtc->index * 0x300), 1);
		evo_data(push, mode);
		if (update) {
			evo_mthd(push, 0x0080, 1);
			evo_data(push, 0x00000000);
		}
		evo_kick(push, dev, 0);
	}

	return 0;
}

static int
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nvd0_crtc_set_scale(struct nouveau_crtc *nv_crtc, bool update)
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{
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	struct drm_display_mode *omode, *umode = &nv_crtc->base.mode;
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	struct drm_device *dev = nv_crtc->base.dev;
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	struct nouveau_connector *nv_connector;
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	int mode = DRM_MODE_SCALE_NONE;
	u32 oX, oY, *push;
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	/* start off at the resolution we programmed the crtc for, this
	 * effectively handles NONE/FULL scaling
	 */
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	nv_connector = nouveau_crtc_connector_get(nv_crtc);
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	if (nv_connector && nv_connector->native_mode)
		mode = nv_connector->scaling_mode;

	if (mode != DRM_MODE_SCALE_NONE)
		omode = nv_connector->native_mode;
	else
		omode = umode;

	oX = omode->hdisplay;
	oY = omode->vdisplay;
	if (omode->flags & DRM_MODE_FLAG_DBLSCAN)
		oY *= 2;

	/* add overscan compensation if necessary, will keep the aspect
	 * ratio the same as the backend mode unless overridden by the
	 * user setting both hborder and vborder properties.
	 */
	if (nv_connector && ( nv_connector->underscan == UNDERSCAN_ON ||
			     (nv_connector->underscan == UNDERSCAN_AUTO &&
			      nv_connector->edid &&
			      drm_detect_hdmi_monitor(nv_connector->edid)))) {
		u32 bX = nv_connector->underscan_hborder;
		u32 bY = nv_connector->underscan_vborder;
		u32 aspect = (oY << 19) / oX;

		if (bX) {
			oX -= (bX * 2);
			if (bY) oY -= (bY * 2);
			else    oY  = ((oX * aspect) + (aspect / 2)) >> 19;
		} else {
			oX -= (oX >> 4) + 32;
			if (bY) oY -= (bY * 2);
			else    oY  = ((oX * aspect) + (aspect / 2)) >> 19;
		}
	}

	/* handle CENTER/ASPECT scaling, taking into account the areas
	 * removed already for overscan compensation
	 */
	switch (mode) {
	case DRM_MODE_SCALE_CENTER:
		oX = min((u32)umode->hdisplay, oX);
		oY = min((u32)umode->vdisplay, oY);
		/* fall-through */
	case DRM_MODE_SCALE_ASPECT:
		if (oY < oX) {
			u32 aspect = (umode->hdisplay << 19) / umode->vdisplay;
			oX = ((oY * aspect) + (aspect / 2)) >> 19;
		} else {
			u32 aspect = (umode->vdisplay << 19) / umode->hdisplay;
			oY = ((oX * aspect) + (aspect / 2)) >> 19;
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		}
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		break;
	default:
		break;
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	}
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	push = evo_wait(dev, 0, 16);
	if (push) {
		evo_mthd(push, 0x04c0 + (nv_crtc->index * 0x300), 3);
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		evo_data(push, (oY << 16) | oX);
		evo_data(push, (oY << 16) | oX);
		evo_data(push, (oY << 16) | oX);
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		evo_mthd(push, 0x0494 + (nv_crtc->index * 0x300), 1);
		evo_data(push, 0x00000000);
		evo_mthd(push, 0x04b8 + (nv_crtc->index * 0x300), 1);
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		evo_data(push, (umode->vdisplay << 16) | umode->hdisplay);
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		if (update) {
			evo_mthd(push, 0x0080, 1);
			evo_data(push, 0x00000000);
		}
		evo_kick(push, dev, 0);
	}

	return 0;
}

static int
nvd0_crtc_set_image(struct nouveau_crtc *nv_crtc, struct drm_framebuffer *fb,
		    int x, int y, bool update)
{
	struct nouveau_framebuffer *nvfb = nouveau_framebuffer(fb);
	u32 *push;

	push = evo_wait(fb->dev, 0, 16);
	if (push) {
		evo_mthd(push, 0x0460 + (nv_crtc->index * 0x300), 1);
		evo_data(push, nvfb->nvbo->bo.offset >> 8);
		evo_mthd(push, 0x0468 + (nv_crtc->index * 0x300), 4);
		evo_data(push, (fb->height << 16) | fb->width);
		evo_data(push, nvfb->r_pitch);
		evo_data(push, nvfb->r_format);
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		evo_data(push, nvfb->r_dma);
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		evo_mthd(push, 0x04b0 + (nv_crtc->index * 0x300), 1);
		evo_data(push, (y << 16) | x);
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		if (update) {
			evo_mthd(push, 0x0080, 1);
			evo_data(push, 0x00000000);
		}
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		evo_kick(push, fb->dev, 0);
	}

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	nv_crtc->fb.tile_flags = nvfb->r_dma;
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	return 0;
}

static void
nvd0_crtc_cursor_show(struct nouveau_crtc *nv_crtc, bool show, bool update)
{
	struct drm_device *dev = nv_crtc->base.dev;
	u32 *push = evo_wait(dev, 0, 16);
	if (push) {
		if (show) {
			evo_mthd(push, 0x0480 + (nv_crtc->index * 0x300), 2);
			evo_data(push, 0x85000000);
			evo_data(push, nv_crtc->cursor.nvbo->bo.offset >> 8);
			evo_mthd(push, 0x048c + (nv_crtc->index * 0x300), 1);
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			evo_data(push, NvEvoVRAM);
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		} else {
			evo_mthd(push, 0x0480 + (nv_crtc->index * 0x300), 1);
			evo_data(push, 0x05000000);
			evo_mthd(push, 0x048c + (nv_crtc->index * 0x300), 1);
			evo_data(push, 0x00000000);
		}

		if (update) {
			evo_mthd(push, 0x0080, 1);
			evo_data(push, 0x00000000);
		}

		evo_kick(push, dev, 0);
	}
}

static void
nvd0_crtc_dpms(struct drm_crtc *crtc, int mode)
{
}

static void
nvd0_crtc_prepare(struct drm_crtc *crtc)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	u32 *push;

	push = evo_wait(crtc->dev, 0, 2);
	if (push) {
		evo_mthd(push, 0x0474 + (nv_crtc->index * 0x300), 1);
		evo_data(push, 0x00000000);
		evo_mthd(push, 0x0440 + (nv_crtc->index * 0x300), 1);
		evo_data(push, 0x03000000);
		evo_mthd(push, 0x045c + (nv_crtc->index * 0x300), 1);
		evo_data(push, 0x00000000);
		evo_kick(push, crtc->dev, 0);
	}

	nvd0_crtc_cursor_show(nv_crtc, false, false);
}

static void
nvd0_crtc_commit(struct drm_crtc *crtc)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	u32 *push;

	push = evo_wait(crtc->dev, 0, 32);
	if (push) {
		evo_mthd(push, 0x0474 + (nv_crtc->index * 0x300), 1);
		evo_data(push, nv_crtc->fb.tile_flags);
		evo_mthd(push, 0x0440 + (nv_crtc->index * 0x300), 4);
		evo_data(push, 0x83000000);
		evo_data(push, nv_crtc->lut.nvbo->bo.offset >> 8);
		evo_data(push, 0x00000000);
		evo_data(push, 0x00000000);
		evo_mthd(push, 0x045c + (nv_crtc->index * 0x300), 1);
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		evo_data(push, NvEvoVRAM);
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		evo_mthd(push, 0x0430 + (nv_crtc->index * 0x300), 1);
		evo_data(push, 0xffffff00);
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		evo_kick(push, crtc->dev, 0);
	}

	nvd0_crtc_cursor_show(nv_crtc, nv_crtc->cursor.visible, true);
}

static bool
nvd0_crtc_mode_fixup(struct drm_crtc *crtc, struct drm_display_mode *mode,
		     struct drm_display_mode *adjusted_mode)
{
	return true;
}

static int
nvd0_crtc_swap_fbs(struct drm_crtc *crtc, struct drm_framebuffer *old_fb)
{
	struct nouveau_framebuffer *nvfb = nouveau_framebuffer(crtc->fb);
	int ret;

	ret = nouveau_bo_pin(nvfb->nvbo, TTM_PL_FLAG_VRAM);
	if (ret)
		return ret;

	if (old_fb) {
		nvfb = nouveau_framebuffer(old_fb);
		nouveau_bo_unpin(nvfb->nvbo);
	}

	return 0;
}

static int
nvd0_crtc_mode_set(struct drm_crtc *crtc, struct drm_display_mode *umode,
		   struct drm_display_mode *mode, int x, int y,
		   struct drm_framebuffer *old_fb)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	struct nouveau_connector *nv_connector;
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	u32 ilace = (mode->flags & DRM_MODE_FLAG_INTERLACE) ? 2 : 1;
	u32 vscan = (mode->flags & DRM_MODE_FLAG_DBLSCAN) ? 2 : 1;
	u32 hactive, hsynce, hbackp, hfrontp, hblanke, hblanks;
	u32 vactive, vsynce, vbackp, vfrontp, vblanke, vblanks;
	u32 vblan2e = 0, vblan2s = 1;
	u32 magic = 0x31ec6000;
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	u32 syncs, *push;
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	int ret;

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	hactive = mode->htotal;
	hsynce  = mode->hsync_end - mode->hsync_start - 1;
	hbackp  = mode->htotal - mode->hsync_end;
	hblanke = hsynce + hbackp;
	hfrontp = mode->hsync_start - mode->hdisplay;
	hblanks = mode->htotal - hfrontp - 1;

	vactive = mode->vtotal * vscan / ilace;
	vsynce  = ((mode->vsync_end - mode->vsync_start) * vscan / ilace) - 1;
	vbackp  = (mode->vtotal - mode->vsync_end) * vscan / ilace;
	vblanke = vsynce + vbackp;
	vfrontp = (mode->vsync_start - mode->vdisplay) * vscan / ilace;
	vblanks = vactive - vfrontp - 1;
	if (mode->flags & DRM_MODE_FLAG_INTERLACE) {
		vblan2e = vactive + vsynce + vbackp;
		vblan2s = vblan2e + (mode->vdisplay * vscan / ilace);
		vactive = (vactive * 2) + 1;
		magic  |= 0x00000001;
	}

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	syncs = 0x00000001;
	if (mode->flags & DRM_MODE_FLAG_NHSYNC)
		syncs |= 0x00000008;
	if (mode->flags & DRM_MODE_FLAG_NVSYNC)
		syncs |= 0x00000010;

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	ret = nvd0_crtc_swap_fbs(crtc, old_fb);
	if (ret)
		return ret;

	push = evo_wait(crtc->dev, 0, 64);
	if (push) {
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		evo_mthd(push, 0x0410 + (nv_crtc->index * 0x300), 6);
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		evo_data(push, 0x00000000);
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		evo_data(push, (vactive << 16) | hactive);
		evo_data(push, ( vsynce << 16) | hsynce);
		evo_data(push, (vblanke << 16) | hblanke);
		evo_data(push, (vblanks << 16) | hblanks);
		evo_data(push, (vblan2e << 16) | vblan2s);
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		evo_mthd(push, 0x042c + (nv_crtc->index * 0x300), 1);
		evo_data(push, 0x00000000); /* ??? */
		evo_mthd(push, 0x0450 + (nv_crtc->index * 0x300), 3);
		evo_data(push, mode->clock * 1000);
		evo_data(push, 0x00200000); /* ??? */
		evo_data(push, mode->clock * 1000);
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		evo_mthd(push, 0x0404 + (nv_crtc->index * 0x300), 2);
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		evo_data(push, syncs);
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		evo_data(push, magic);
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		evo_kick(push, crtc->dev, 0);
	}

	nv_connector = nouveau_crtc_connector_get(nv_crtc);
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	nvd0_crtc_set_dither(nv_crtc, false);
	nvd0_crtc_set_scale(nv_crtc, false);
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	nvd0_crtc_set_image(nv_crtc, crtc->fb, x, y, false);
	return 0;
}

static int
nvd0_crtc_mode_set_base(struct drm_crtc *crtc, int x, int y,
			struct drm_framebuffer *old_fb)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	int ret;

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	if (!crtc->fb) {
		NV_DEBUG_KMS(crtc->dev, "No FB bound\n");
		return 0;
	}

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	ret = nvd0_crtc_swap_fbs(crtc, old_fb);
	if (ret)
		return ret;

	nvd0_crtc_set_image(nv_crtc, crtc->fb, x, y, true);
	return 0;
}

static int
nvd0_crtc_mode_set_base_atomic(struct drm_crtc *crtc,
			       struct drm_framebuffer *fb, int x, int y,
			       enum mode_set_atomic state)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	nvd0_crtc_set_image(nv_crtc, fb, x, y, true);
	return 0;
}

static void
nvd0_crtc_lut_load(struct drm_crtc *crtc)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	void __iomem *lut = nvbo_kmap_obj_iovirtual(nv_crtc->lut.nvbo);
	int i;

	for (i = 0; i < 256; i++) {
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		writew(0x6000 + (nv_crtc->lut.r[i] >> 2), lut + (i * 0x20) + 0);
		writew(0x6000 + (nv_crtc->lut.g[i] >> 2), lut + (i * 0x20) + 2);
		writew(0x6000 + (nv_crtc->lut.b[i] >> 2), lut + (i * 0x20) + 4);
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	}
}

static int
nvd0_crtc_cursor_set(struct drm_crtc *crtc, struct drm_file *file_priv,
		     uint32_t handle, uint32_t width, uint32_t height)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	struct drm_device *dev = crtc->dev;
	struct drm_gem_object *gem;
	struct nouveau_bo *nvbo;
	bool visible = (handle != 0);
	int i, ret = 0;

	if (visible) {
		if (width != 64 || height != 64)
			return -EINVAL;

		gem = drm_gem_object_lookup(dev, file_priv, handle);
		if (unlikely(!gem))
			return -ENOENT;
		nvbo = nouveau_gem_object(gem);

		ret = nouveau_bo_map(nvbo);
		if (ret == 0) {
			for (i = 0; i < 64 * 64; i++) {
				u32 v = nouveau_bo_rd32(nvbo, i);
				nouveau_bo_wr32(nv_crtc->cursor.nvbo, i, v);
			}
			nouveau_bo_unmap(nvbo);
		}

		drm_gem_object_unreference_unlocked(gem);
	}

	if (visible != nv_crtc->cursor.visible) {
		nvd0_crtc_cursor_show(nv_crtc, visible, true);
		nv_crtc->cursor.visible = visible;
	}

	return ret;
}

static int
nvd0_crtc_cursor_move(struct drm_crtc *crtc, int x, int y)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	const u32 data = (y << 16) | x;

	nv_wr32(crtc->dev, 0x64d084 + (nv_crtc->index * 0x1000), data);
	nv_wr32(crtc->dev, 0x64d080 + (nv_crtc->index * 0x1000), 0x00000000);
	return 0;
}

static void
nvd0_crtc_gamma_set(struct drm_crtc *crtc, u16 *r, u16 *g, u16 *b,
		    uint32_t start, uint32_t size)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	u32 end = max(start + size, (u32)256);
	u32 i;

	for (i = start; i < end; i++) {
		nv_crtc->lut.r[i] = r[i];
		nv_crtc->lut.g[i] = g[i];
		nv_crtc->lut.b[i] = b[i];
	}

	nvd0_crtc_lut_load(crtc);
}

static void
nvd0_crtc_destroy(struct drm_crtc *crtc)
{
	struct nouveau_crtc *nv_crtc = nouveau_crtc(crtc);
	nouveau_bo_unmap(nv_crtc->cursor.nvbo);
	nouveau_bo_ref(NULL, &nv_crtc->cursor.nvbo);
	nouveau_bo_unmap(nv_crtc->lut.nvbo);
	nouveau_bo_ref(NULL, &nv_crtc->lut.nvbo);
	drm_crtc_cleanup(crtc);
	kfree(crtc);
}

static const struct drm_crtc_helper_funcs nvd0_crtc_hfunc = {
	.dpms = nvd0_crtc_dpms,
	.prepare = nvd0_crtc_prepare,
	.commit = nvd0_crtc_commit,
	.mode_fixup = nvd0_crtc_mode_fixup,
	.mode_set = nvd0_crtc_mode_set,
	.mode_set_base = nvd0_crtc_mode_set_base,
	.mode_set_base_atomic = nvd0_crtc_mode_set_base_atomic,
	.load_lut = nvd0_crtc_lut_load,
};

static const struct drm_crtc_funcs nvd0_crtc_func = {
	.cursor_set = nvd0_crtc_cursor_set,
	.cursor_move = nvd0_crtc_cursor_move,
	.gamma_set = nvd0_crtc_gamma_set,
	.set_config = drm_crtc_helper_set_config,
	.destroy = nvd0_crtc_destroy,
};

599 600 601 602 603 604 605 606 607 608
static void
nvd0_cursor_set_pos(struct nouveau_crtc *nv_crtc, int x, int y)
{
}

static void
nvd0_cursor_set_offset(struct nouveau_crtc *nv_crtc, uint32_t offset)
{
}

609 610 611 612 613 614 615 616 617 618 619 620 621 622
static int
nvd0_crtc_create(struct drm_device *dev, int index)
{
	struct nouveau_crtc *nv_crtc;
	struct drm_crtc *crtc;
	int ret, i;

	nv_crtc = kzalloc(sizeof(*nv_crtc), GFP_KERNEL);
	if (!nv_crtc)
		return -ENOMEM;

	nv_crtc->index = index;
	nv_crtc->set_dither = nvd0_crtc_set_dither;
	nv_crtc->set_scale = nvd0_crtc_set_scale;
623 624
	nv_crtc->cursor.set_offset = nvd0_cursor_set_offset;
	nv_crtc->cursor.set_pos = nvd0_cursor_set_pos;
625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648
	for (i = 0; i < 256; i++) {
		nv_crtc->lut.r[i] = i << 8;
		nv_crtc->lut.g[i] = i << 8;
		nv_crtc->lut.b[i] = i << 8;
	}

	crtc = &nv_crtc->base;
	drm_crtc_init(dev, crtc, &nvd0_crtc_func);
	drm_crtc_helper_add(crtc, &nvd0_crtc_hfunc);
	drm_mode_crtc_set_gamma_size(crtc, 256);

	ret = nouveau_bo_new(dev, 64 * 64 * 4, 0x100, TTM_PL_FLAG_VRAM,
			     0, 0x0000, &nv_crtc->cursor.nvbo);
	if (!ret) {
		ret = nouveau_bo_pin(nv_crtc->cursor.nvbo, TTM_PL_FLAG_VRAM);
		if (!ret)
			ret = nouveau_bo_map(nv_crtc->cursor.nvbo);
		if (ret)
			nouveau_bo_ref(NULL, &nv_crtc->cursor.nvbo);
	}

	if (ret)
		goto out;

649
	ret = nouveau_bo_new(dev, 8192, 0x100, TTM_PL_FLAG_VRAM,
650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669
			     0, 0x0000, &nv_crtc->lut.nvbo);
	if (!ret) {
		ret = nouveau_bo_pin(nv_crtc->lut.nvbo, TTM_PL_FLAG_VRAM);
		if (!ret)
			ret = nouveau_bo_map(nv_crtc->lut.nvbo);
		if (ret)
			nouveau_bo_ref(NULL, &nv_crtc->lut.nvbo);
	}

	if (ret)
		goto out;

	nvd0_crtc_lut_load(crtc);

out:
	if (ret)
		nvd0_crtc_destroy(crtc);
	return ret;
}

670 671 672
/******************************************************************************
 * DAC
 *****************************************************************************/
B
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static void
nvd0_dac_dpms(struct drm_encoder *encoder, int mode)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct drm_device *dev = encoder->dev;
	int or = nv_encoder->or;
	u32 dpms_ctrl;

	dpms_ctrl = 0x80000000;
	if (mode == DRM_MODE_DPMS_STANDBY || mode == DRM_MODE_DPMS_OFF)
		dpms_ctrl |= 0x00000001;
	if (mode == DRM_MODE_DPMS_SUSPEND || mode == DRM_MODE_DPMS_OFF)
		dpms_ctrl |= 0x00000004;

	nv_wait(dev, 0x61a004 + (or * 0x0800), 0x80000000, 0x00000000);
	nv_mask(dev, 0x61a004 + (or * 0x0800), 0xc000007f, dpms_ctrl);
	nv_wait(dev, 0x61a004 + (or * 0x0800), 0x80000000, 0x00000000);
}

static bool
nvd0_dac_mode_fixup(struct drm_encoder *encoder, struct drm_display_mode *mode,
		    struct drm_display_mode *adjusted_mode)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct nouveau_connector *nv_connector;

	nv_connector = nouveau_encoder_connector_get(nv_encoder);
	if (nv_connector && nv_connector->native_mode) {
		if (nv_connector->scaling_mode != DRM_MODE_SCALE_NONE) {
			int id = adjusted_mode->base.id;
			*adjusted_mode = *nv_connector->native_mode;
			adjusted_mode->base.id = id;
		}
	}

	return true;
}

static void
nvd0_dac_prepare(struct drm_encoder *encoder)
{
}

static void
nvd0_dac_commit(struct drm_encoder *encoder)
{
}

static void
nvd0_dac_mode_set(struct drm_encoder *encoder, struct drm_display_mode *mode,
		  struct drm_display_mode *adjusted_mode)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct nouveau_crtc *nv_crtc = nouveau_crtc(encoder->crtc);
	u32 *push;

	nvd0_dac_dpms(encoder, DRM_MODE_DPMS_ON);

731
	push = evo_wait(encoder->dev, 0, 4);
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	if (push) {
733
		evo_mthd(push, 0x0180 + (nv_encoder->or * 0x20), 2);
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		evo_data(push, 1 << nv_crtc->index);
735
		evo_data(push, 0x00ff);
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		evo_kick(push, encoder->dev, 0);
	}

	nv_encoder->crtc = encoder->crtc;
}

static void
nvd0_dac_disconnect(struct drm_encoder *encoder)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct drm_device *dev = encoder->dev;
	u32 *push;

	if (nv_encoder->crtc) {
		nvd0_crtc_prepare(nv_encoder->crtc);

		push = evo_wait(dev, 0, 4);
		if (push) {
			evo_mthd(push, 0x0180 + (nv_encoder->or * 0x20), 1);
			evo_data(push, 0x00000000);
			evo_mthd(push, 0x0080, 1);
			evo_data(push, 0x00000000);
			evo_kick(push, dev, 0);
		}

		nv_encoder->crtc = NULL;
	}
}

765 766 767
static enum drm_connector_status
nvd0_dac_detect(struct drm_encoder *encoder, struct drm_connector *connector)
{
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	enum drm_connector_status status = connector_status_disconnected;
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct drm_device *dev = encoder->dev;
	int or = nv_encoder->or;
	u32 load;

	nv_wr32(dev, 0x61a00c + (or * 0x800), 0x00100000);
	udelay(9500);
	nv_wr32(dev, 0x61a00c + (or * 0x800), 0x80000000);

	load = nv_rd32(dev, 0x61a00c + (or * 0x800));
	if ((load & 0x38000000) == 0x38000000)
		status = connector_status_connected;

	nv_wr32(dev, 0x61a00c + (or * 0x800), 0x00000000);
	return status;
784 785
}

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static void
nvd0_dac_destroy(struct drm_encoder *encoder)
{
	drm_encoder_cleanup(encoder);
	kfree(encoder);
}

static const struct drm_encoder_helper_funcs nvd0_dac_hfunc = {
	.dpms = nvd0_dac_dpms,
	.mode_fixup = nvd0_dac_mode_fixup,
	.prepare = nvd0_dac_prepare,
	.commit = nvd0_dac_commit,
	.mode_set = nvd0_dac_mode_set,
	.disable = nvd0_dac_disconnect,
	.get_crtc = nvd0_display_crtc_get,
801
	.detect = nvd0_dac_detect
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};

static const struct drm_encoder_funcs nvd0_dac_func = {
	.destroy = nvd0_dac_destroy,
};

static int
nvd0_dac_create(struct drm_connector *connector, struct dcb_entry *dcbe)
{
	struct drm_device *dev = connector->dev;
	struct nouveau_encoder *nv_encoder;
	struct drm_encoder *encoder;

	nv_encoder = kzalloc(sizeof(*nv_encoder), GFP_KERNEL);
	if (!nv_encoder)
		return -ENOMEM;
	nv_encoder->dcb = dcbe;
	nv_encoder->or = ffs(dcbe->or) - 1;

	encoder = to_drm_encoder(nv_encoder);
	encoder->possible_crtcs = dcbe->heads;
	encoder->possible_clones = 0;
	drm_encoder_init(dev, encoder, &nvd0_dac_func, DRM_MODE_ENCODER_DAC);
	drm_encoder_helper_add(encoder, &nvd0_dac_hfunc);

	drm_mode_connector_attach_encoder(connector, encoder);
	return 0;
}
830

831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876
/******************************************************************************
 * Audio
 *****************************************************************************/
static void
nvd0_audio_mode_set(struct drm_encoder *encoder, struct drm_display_mode *mode)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct nouveau_connector *nv_connector;
	struct drm_device *dev = encoder->dev;
	int i, or = nv_encoder->or * 0x30;

	nv_connector = nouveau_encoder_connector_get(nv_encoder);
	if (!drm_detect_monitor_audio(nv_connector->edid))
		return;

	nv_mask(dev, 0x10ec10 + or, 0x80000003, 0x80000001);

	drm_edid_to_eld(&nv_connector->base, nv_connector->edid);
	if (nv_connector->base.eld[0]) {
		u8 *eld = nv_connector->base.eld;

		for (i = 0; i < eld[2] * 4; i++)
			nv_wr32(dev, 0x10ec00 + or, (i << 8) | eld[i]);
		for (i = eld[2] * 4; i < 0x60; i++)
			nv_wr32(dev, 0x10ec00 + or, (i << 8) | 0x00);

		nv_mask(dev, 0x10ec10 + or, 0x80000002, 0x80000002);
	}
}

static void
nvd0_audio_disconnect(struct drm_encoder *encoder)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct drm_device *dev = encoder->dev;
	int or = nv_encoder->or * 0x30;

	nv_mask(dev, 0x10ec10 + or, 0x80000003, 0x80000000);
}

/******************************************************************************
 * HDMI
 *****************************************************************************/
static void
nvd0_hdmi_mode_set(struct drm_encoder *encoder, struct drm_display_mode *mode)
{
877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct nouveau_crtc *nv_crtc = nouveau_crtc(encoder->crtc);
	struct nouveau_connector *nv_connector;
	struct drm_device *dev = encoder->dev;
	int head = nv_crtc->index * 0x800;
	u32 rekey = 56; /* binary driver, and tegra constant */
	u32 max_ac_packet;

	nv_connector = nouveau_encoder_connector_get(nv_encoder);
	if (!drm_detect_hdmi_monitor(nv_connector->edid))
		return;

	max_ac_packet  = mode->htotal - mode->hdisplay;
	max_ac_packet -= rekey;
	max_ac_packet -= 18; /* constant from tegra */
	max_ac_packet /= 32;

	/* AVI InfoFrame */
	nv_mask(dev, 0x616714 + head, 0x00000001, 0x00000000);
	nv_wr32(dev, 0x61671c + head, 0x000d0282);
	nv_wr32(dev, 0x616720 + head, 0x0000006f);
	nv_wr32(dev, 0x616724 + head, 0x00000000);
	nv_wr32(dev, 0x616728 + head, 0x00000000);
	nv_wr32(dev, 0x61672c + head, 0x00000000);
	nv_mask(dev, 0x616714 + head, 0x00000001, 0x00000001);

	/* ??? InfoFrame? */
	nv_mask(dev, 0x6167a4 + head, 0x00000001, 0x00000000);
	nv_wr32(dev, 0x6167ac + head, 0x00000010);
	nv_mask(dev, 0x6167a4 + head, 0x00000001, 0x00000001);

	/* HDMI_CTRL */
	nv_mask(dev, 0x616798 + head, 0x401f007f, 0x40000000 | rekey |
						  max_ac_packet << 16);

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Ben Skeggs 已提交
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	/* NFI, audio doesn't work without it though.. */
	nv_mask(dev, 0x616548 + head, 0x00000070, 0x00000000);

915 916 917 918 919 920
	nvd0_audio_mode_set(encoder, mode);
}

static void
nvd0_hdmi_disconnect(struct drm_encoder *encoder)
{
921 922 923 924 925
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct nouveau_crtc *nv_crtc = nouveau_crtc(nv_encoder->crtc);
	struct drm_device *dev = encoder->dev;
	int head = nv_crtc->index * 0x800;

926
	nvd0_audio_disconnect(encoder);
927 928 929 930

	nv_mask(dev, 0x616798 + head, 0x40000000, 0x00000000);
	nv_mask(dev, 0x6167a4 + head, 0x00000001, 0x00000000);
	nv_mask(dev, 0x616714 + head, 0x00000001, 0x00000000);
931 932
}

933 934 935
/******************************************************************************
 * SOR
 *****************************************************************************/
936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953
static void
nvd0_sor_dpms(struct drm_encoder *encoder, int mode)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct drm_device *dev = encoder->dev;
	struct drm_encoder *partner;
	int or = nv_encoder->or;
	u32 dpms_ctrl;

	nv_encoder->last_dpms = mode;

	list_for_each_entry(partner, &dev->mode_config.encoder_list, head) {
		struct nouveau_encoder *nv_partner = nouveau_encoder(partner);

		if (partner->encoder_type != DRM_MODE_ENCODER_TMDS)
			continue;

		if (nv_partner != nv_encoder &&
954
		    nv_partner->dcb->or == nv_encoder->dcb->or) {
955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999
			if (nv_partner->last_dpms == DRM_MODE_DPMS_ON)
				return;
			break;
		}
	}

	dpms_ctrl  = (mode == DRM_MODE_DPMS_ON);
	dpms_ctrl |= 0x80000000;

	nv_wait(dev, 0x61c004 + (or * 0x0800), 0x80000000, 0x00000000);
	nv_mask(dev, 0x61c004 + (or * 0x0800), 0x80000001, dpms_ctrl);
	nv_wait(dev, 0x61c004 + (or * 0x0800), 0x80000000, 0x00000000);
	nv_wait(dev, 0x61c030 + (or * 0x0800), 0x10000000, 0x00000000);
}

static bool
nvd0_sor_mode_fixup(struct drm_encoder *encoder, struct drm_display_mode *mode,
		    struct drm_display_mode *adjusted_mode)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct nouveau_connector *nv_connector;

	nv_connector = nouveau_encoder_connector_get(nv_encoder);
	if (nv_connector && nv_connector->native_mode) {
		if (nv_connector->scaling_mode != DRM_MODE_SCALE_NONE) {
			int id = adjusted_mode->base.id;
			*adjusted_mode = *nv_connector->native_mode;
			adjusted_mode->base.id = id;
		}
	}

	return true;
}

static void
nvd0_sor_prepare(struct drm_encoder *encoder)
{
}

static void
nvd0_sor_commit(struct drm_encoder *encoder)
{
}

static void
1000 1001
nvd0_sor_mode_set(struct drm_encoder *encoder, struct drm_display_mode *umode,
		  struct drm_display_mode *mode)
1002
{
1003 1004
	struct drm_device *dev = encoder->dev;
	struct drm_nouveau_private *dev_priv = dev->dev_private;
1005 1006
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct nouveau_crtc *nv_crtc = nouveau_crtc(encoder->crtc);
1007 1008
	struct nouveau_connector *nv_connector;
	struct nvbios *bios = &dev_priv->vbios;
1009
	u32 mode_ctrl = (1 << nv_crtc->index);
1010
	u32 *push, or_config;
1011

1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026
	nv_connector = nouveau_encoder_connector_get(nv_encoder);
	switch (nv_encoder->dcb->type) {
	case OUTPUT_TMDS:
		if (nv_encoder->dcb->sorconf.link & 1) {
			if (mode->clock < 165000)
				mode_ctrl |= 0x00000100;
			else
				mode_ctrl |= 0x00000500;
		} else {
			mode_ctrl |= 0x00000200;
		}

		or_config = (mode_ctrl & 0x00000f00) >> 8;
		if (mode->clock >= 165000)
			or_config |= 0x0100;
1027 1028

		nvd0_hdmi_mode_set(encoder, mode);
1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044
		break;
	case OUTPUT_LVDS:
		or_config = (mode_ctrl & 0x00000f00) >> 8;
		if (bios->fp_no_ddc) {
			if (bios->fp.dual_link)
				or_config |= 0x0100;
			if (bios->fp.if_is_24bit)
				or_config |= 0x0200;
		} else {
			if (nv_connector->dcb->type == DCB_CONNECTOR_LVDS_SPWG) {
				if (((u8 *)nv_connector->edid)[121] == 2)
					or_config |= 0x0100;
			} else
			if (mode->clock >= bios->fp.duallink_transition_clk) {
				or_config |= 0x0100;
			}
1045

1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062
			if (or_config & 0x0100) {
				if (bios->fp.strapless_is_24bit & 2)
					or_config |= 0x0200;
			} else {
				if (bios->fp.strapless_is_24bit & 1)
					or_config |= 0x0200;
			}

			if (nv_connector->base.display_info.bpc == 8)
				or_config |= 0x0200;

		}
		break;
	default:
		BUG_ON(1);
		break;
	}
1063

1064 1065
	nvd0_sor_dpms(encoder, DRM_MODE_DPMS_ON);

1066
	push = evo_wait(dev, 0, 4);
1067
	if (push) {
1068
		evo_mthd(push, 0x0200 + (nv_encoder->or * 0x20), 2);
1069
		evo_data(push, mode_ctrl);
1070
		evo_data(push, or_config);
1071
		evo_kick(push, dev, 0);
1072 1073 1074 1075 1076 1077 1078 1079 1080 1081
	}

	nv_encoder->crtc = encoder->crtc;
}

static void
nvd0_sor_disconnect(struct drm_encoder *encoder)
{
	struct nouveau_encoder *nv_encoder = nouveau_encoder(encoder);
	struct drm_device *dev = encoder->dev;
1082
	u32 *push;
1083 1084

	if (nv_encoder->crtc) {
1085 1086 1087
		nvd0_crtc_prepare(nv_encoder->crtc);

		push = evo_wait(dev, 0, 4);
1088 1089 1090 1091 1092 1093 1094 1095
		if (push) {
			evo_mthd(push, 0x0200 + (nv_encoder->or * 0x20), 1);
			evo_data(push, 0x00000000);
			evo_mthd(push, 0x0080, 1);
			evo_data(push, 0x00000000);
			evo_kick(push, dev, 0);
		}

1096 1097
		nvd0_hdmi_disconnect(encoder);

1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142 1143 1144 1145 1146
		nv_encoder->crtc = NULL;
		nv_encoder->last_dpms = DRM_MODE_DPMS_OFF;
	}
}

static void
nvd0_sor_destroy(struct drm_encoder *encoder)
{
	drm_encoder_cleanup(encoder);
	kfree(encoder);
}

static const struct drm_encoder_helper_funcs nvd0_sor_hfunc = {
	.dpms = nvd0_sor_dpms,
	.mode_fixup = nvd0_sor_mode_fixup,
	.prepare = nvd0_sor_prepare,
	.commit = nvd0_sor_commit,
	.mode_set = nvd0_sor_mode_set,
	.disable = nvd0_sor_disconnect,
	.get_crtc = nvd0_display_crtc_get,
};

static const struct drm_encoder_funcs nvd0_sor_func = {
	.destroy = nvd0_sor_destroy,
};

static int
nvd0_sor_create(struct drm_connector *connector, struct dcb_entry *dcbe)
{
	struct drm_device *dev = connector->dev;
	struct nouveau_encoder *nv_encoder;
	struct drm_encoder *encoder;

	nv_encoder = kzalloc(sizeof(*nv_encoder), GFP_KERNEL);
	if (!nv_encoder)
		return -ENOMEM;
	nv_encoder->dcb = dcbe;
	nv_encoder->or = ffs(dcbe->or) - 1;
	nv_encoder->last_dpms = DRM_MODE_DPMS_OFF;

	encoder = to_drm_encoder(nv_encoder);
	encoder->possible_crtcs = dcbe->heads;
	encoder->possible_clones = 0;
	drm_encoder_init(dev, encoder, &nvd0_sor_func, DRM_MODE_ENCODER_TMDS);
	drm_encoder_helper_add(encoder, &nvd0_sor_hfunc);

	drm_mode_connector_attach_encoder(connector, encoder);
	return 0;
}
1147 1148 1149 1150

/******************************************************************************
 * IRQ
 *****************************************************************************/
1151 1152 1153 1154 1155 1156 1157 1158 1159 1160
static struct dcb_entry *
lookup_dcb(struct drm_device *dev, int id, u32 mc)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;
	int type, or, i;

	if (id < 4) {
		type = OUTPUT_ANALOG;
		or   = id;
	} else {
1161 1162 1163 1164 1165 1166
		switch (mc & 0x00000f00) {
		case 0x00000000: type = OUTPUT_LVDS; break;
		case 0x00000100: type = OUTPUT_TMDS; break;
		case 0x00000200: type = OUTPUT_TMDS; break;
		case 0x00000500: type = OUTPUT_TMDS; break;
		default:
1167
			NV_ERROR(dev, "PDISP: unknown SOR mc 0x%08x\n", mc);
1168 1169 1170 1171
			return NULL;
		}

		or = id - 4;
1172 1173 1174 1175 1176 1177 1178 1179
	}

	for (i = 0; i < dev_priv->vbios.dcb.entries; i++) {
		struct dcb_entry *dcb = &dev_priv->vbios.dcb.entry[i];
		if (dcb->type == type && (dcb->or & (1 << or)))
			return dcb;
	}

1180
	NV_ERROR(dev, "PDISP: DCB for %d/0x%08x not found\n", id, mc);
1181 1182 1183
	return NULL;
}

1184
static void
1185
nvd0_display_unk1_handler(struct drm_device *dev, u32 crtc, u32 mask)
1186
{
1187 1188 1189
	struct dcb_entry *dcb;
	int i;

1190
	for (i = 0; mask && i < 8; i++) {
1191
		u32 mcc = nv_rd32(dev, 0x640180 + (i * 0x20));
1192 1193
		if (!(mcc & (1 << crtc)))
			continue;
1194

1195 1196 1197
		dcb = lookup_dcb(dev, i, mcc);
		if (!dcb)
			continue;
1198 1199

		nouveau_bios_run_display_table(dev, 0x0000, -1, dcb, crtc);
1200
	}
1201

1202 1203 1204 1205 1206 1207
	nv_wr32(dev, 0x6101d4, 0x00000000);
	nv_wr32(dev, 0x6109d4, 0x00000000);
	nv_wr32(dev, 0x6101d0, 0x80000000);
}

static void
1208
nvd0_display_unk2_handler(struct drm_device *dev, u32 crtc, u32 mask)
1209
{
1210
	struct dcb_entry *dcb;
1211
	u32 or, tmp, pclk;
1212
	int i;
1213

1214 1215 1216 1217 1218 1219 1220 1221
	for (i = 0; mask && i < 8; i++) {
		u32 mcc = nv_rd32(dev, 0x640180 + (i * 0x20));
		if (!(mcc & (1 << crtc)))
			continue;

		dcb = lookup_dcb(dev, i, mcc);
		if (!dcb)
			continue;
1222

1223
		nouveau_bios_run_display_table(dev, 0x0000, -2, dcb, crtc);
1224
	}
1225

1226 1227 1228 1229
	pclk = nv_rd32(dev, 0x660450 + (crtc * 0x300)) / 1000;
	if (mask & 0x00010000) {
		nv50_crtc_set_clock(dev, crtc, pclk);
	}
1230

1231 1232 1233 1234 1235
	for (i = 0; mask && i < 8; i++) {
		u32 mcp = nv_rd32(dev, 0x660180 + (i * 0x20));
		u32 cfg = nv_rd32(dev, 0x660184 + (i * 0x20));
		if (!(mcp & (1 << crtc)))
			continue;
1236

1237 1238 1239 1240
		dcb = lookup_dcb(dev, i, mcp);
		if (!dcb)
			continue;
		or = ffs(dcb->or) - 1;
1241

1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260
		nouveau_bios_run_display_table(dev, cfg, pclk, dcb, crtc);

		nv_wr32(dev, 0x612200 + (crtc * 0x800), 0x00000000);
		switch (dcb->type) {
		case OUTPUT_ANALOG:
			nv_wr32(dev, 0x612280 + (or * 0x800), 0x00000000);
			break;
		case OUTPUT_TMDS:
		case OUTPUT_LVDS:
			if (cfg & 0x00000100)
				tmp = 0x00000101;
			else
				tmp = 0x00000000;

			nv_mask(dev, 0x612300 + (or * 0x800), 0x00000707, tmp);
			break;
		default:
			break;
		}
1261 1262 1263 1264

		break;
	}

1265 1266 1267 1268 1269 1270
	nv_wr32(dev, 0x6101d4, 0x00000000);
	nv_wr32(dev, 0x6109d4, 0x00000000);
	nv_wr32(dev, 0x6101d0, 0x80000000);
}

static void
1271
nvd0_display_unk4_handler(struct drm_device *dev, u32 crtc, u32 mask)
1272
{
1273
	struct dcb_entry *dcb;
1274
	int pclk, i;
1275

1276
	pclk = nv_rd32(dev, 0x660450 + (crtc * 0x300)) / 1000;
1277

1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289
	for (i = 0; mask && i < 8; i++) {
		u32 mcp = nv_rd32(dev, 0x660180 + (i * 0x20));
		u32 cfg = nv_rd32(dev, 0x660184 + (i * 0x20));
		if (!(mcp & (1 << crtc)))
			continue;

		dcb = lookup_dcb(dev, i, mcp);
		if (!dcb)
			continue;

		nouveau_bios_run_display_table(dev, cfg, -pclk, dcb, crtc);
	}
1290

1291 1292 1293 1294 1295
	nv_wr32(dev, 0x6101d4, 0x00000000);
	nv_wr32(dev, 0x6109d4, 0x00000000);
	nv_wr32(dev, 0x6101d0, 0x80000000);
}

1296 1297 1298 1299 1300
static void
nvd0_display_bh(unsigned long data)
{
	struct drm_device *dev = (struct drm_device *)data;
	struct nvd0_display *disp = nvd0_display(dev);
1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322
	u32 mask, crtc;
	int i;

	if (drm_debug & (DRM_UT_DRIVER | DRM_UT_KMS)) {
		NV_INFO(dev, "PDISP: modeset req %d\n", disp->modeset);
		NV_INFO(dev, " STAT: 0x%08x 0x%08x 0x%08x\n",
			 nv_rd32(dev, 0x6101d0),
			 nv_rd32(dev, 0x6101d4), nv_rd32(dev, 0x6109d4));
		for (i = 0; i < 8; i++) {
			NV_INFO(dev, " %s%d: 0x%08x 0x%08x\n",
				i < 4 ? "DAC" : "SOR", i,
				nv_rd32(dev, 0x640180 + (i * 0x20)),
				nv_rd32(dev, 0x660180 + (i * 0x20)));
		}
	}

	mask = nv_rd32(dev, 0x6101d4);
	crtc = 0;
	if (!mask) {
		mask = nv_rd32(dev, 0x6109d4);
		crtc = 1;
	}
1323

1324
	if (disp->modeset & 0x00000001)
1325
		nvd0_display_unk1_handler(dev, crtc, mask);
1326
	if (disp->modeset & 0x00000002)
1327
		nvd0_display_unk2_handler(dev, crtc, mask);
1328
	if (disp->modeset & 0x00000004)
1329
		nvd0_display_unk4_handler(dev, crtc, mask);
1330 1331
}

1332 1333 1334
static void
nvd0_display_intr(struct drm_device *dev)
{
1335
	struct nvd0_display *disp = nvd0_display(dev);
1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355
	u32 intr = nv_rd32(dev, 0x610088);

	if (intr & 0x00000002) {
		u32 stat = nv_rd32(dev, 0x61009c);
		int chid = ffs(stat) - 1;
		if (chid >= 0) {
			u32 mthd = nv_rd32(dev, 0x6101f0 + (chid * 12));
			u32 data = nv_rd32(dev, 0x6101f4 + (chid * 12));
			u32 unkn = nv_rd32(dev, 0x6101f8 + (chid * 12));

			NV_INFO(dev, "EvoCh: chid %d mthd 0x%04x data 0x%08x "
				     "0x%08x 0x%08x\n",
				chid, (mthd & 0x0000ffc), data, mthd, unkn);
			nv_wr32(dev, 0x61009c, (1 << chid));
			nv_wr32(dev, 0x6101f0 + (chid * 12), 0x90000000);
		}

		intr &= ~0x00000002;
	}

1356 1357 1358 1359
	if (intr & 0x00100000) {
		u32 stat = nv_rd32(dev, 0x6100ac);

		if (stat & 0x00000007) {
1360
			disp->modeset = stat;
1361
			tasklet_schedule(&disp->tasklet);
1362

1363
			nv_wr32(dev, 0x6100ac, (stat & 0x00000007));
1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374
			stat &= ~0x00000007;
		}

		if (stat) {
			NV_INFO(dev, "PDISP: unknown intr24 0x%08x\n", stat);
			nv_wr32(dev, 0x6100ac, stat);
		}

		intr &= ~0x00100000;
	}

1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389
	if (intr & 0x01000000) {
		u32 stat = nv_rd32(dev, 0x6100bc);
		nv_wr32(dev, 0x6100bc, stat);
		intr &= ~0x01000000;
	}

	if (intr & 0x02000000) {
		u32 stat = nv_rd32(dev, 0x6108bc);
		nv_wr32(dev, 0x6108bc, stat);
		intr &= ~0x02000000;
	}

	if (intr)
		NV_INFO(dev, "PDISP: unknown intr 0x%08x\n", intr);
}
1390 1391 1392 1393

/******************************************************************************
 * Init
 *****************************************************************************/
1394
void
1395 1396 1397 1398 1399 1400 1401 1402 1403 1404 1405 1406 1407 1408 1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423
nvd0_display_fini(struct drm_device *dev)
{
	int i;

	/* fini cursors */
	for (i = 14; i >= 13; i--) {
		if (!(nv_rd32(dev, 0x610490 + (i * 0x10)) & 0x00000001))
			continue;

		nv_mask(dev, 0x610490 + (i * 0x10), 0x00000001, 0x00000000);
		nv_wait(dev, 0x610490 + (i * 0x10), 0x00010000, 0x00000000);
		nv_mask(dev, 0x610090, 1 << i, 0x00000000);
		nv_mask(dev, 0x6100a0, 1 << i, 0x00000000);
	}

	/* fini master */
	if (nv_rd32(dev, 0x610490) & 0x00000010) {
		nv_mask(dev, 0x610490, 0x00000010, 0x00000000);
		nv_mask(dev, 0x610490, 0x00000003, 0x00000000);
		nv_wait(dev, 0x610490, 0x80000000, 0x00000000);
		nv_mask(dev, 0x610090, 0x00000001, 0x00000000);
		nv_mask(dev, 0x6100a0, 0x00000001, 0x00000000);
	}
}

int
nvd0_display_init(struct drm_device *dev)
{
	struct nvd0_display *disp = nvd0_display(dev);
1424
	u32 *push;
1425 1426
	int i;

1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439
	if (nv_rd32(dev, 0x6100ac) & 0x00000100) {
		nv_wr32(dev, 0x6100ac, 0x00000100);
		nv_mask(dev, 0x6194e8, 0x00000001, 0x00000000);
		if (!nv_wait(dev, 0x6194e8, 0x00000002, 0x00000000)) {
			NV_ERROR(dev, "PDISP: 0x6194e8 0x%08x\n",
				 nv_rd32(dev, 0x6194e8));
			return -EBUSY;
		}
	}

	/* nfi what these are exactly, i do know that SOR_MODE_CTRL won't
	 * work at all unless you do the SOR part below.
	 */
1440 1441 1442 1443 1444 1445 1446 1447 1448 1449
	for (i = 0; i < 3; i++) {
		u32 dac = nv_rd32(dev, 0x61a000 + (i * 0x800));
		nv_wr32(dev, 0x6101c0 + (i * 0x800), dac);
	}

	for (i = 0; i < 4; i++) {
		u32 sor = nv_rd32(dev, 0x61c000 + (i * 0x800));
		nv_wr32(dev, 0x6301c4 + (i * 0x800), sor);
	}

1450 1451 1452 1453 1454 1455 1456
	for (i = 0; i < 2; i++) {
		u32 crtc0 = nv_rd32(dev, 0x616104 + (i * 0x800));
		u32 crtc1 = nv_rd32(dev, 0x616108 + (i * 0x800));
		u32 crtc2 = nv_rd32(dev, 0x61610c + (i * 0x800));
		nv_wr32(dev, 0x6101b4 + (i * 0x800), crtc0);
		nv_wr32(dev, 0x6101b8 + (i * 0x800), crtc1);
		nv_wr32(dev, 0x6101bc + (i * 0x800), crtc2);
1457 1458
	}

1459
	/* point at our hash table / objects, enable interrupts */
1460
	nv_wr32(dev, 0x610010, (disp->mem->vinst >> 8) | 9);
1461
	nv_mask(dev, 0x6100b0, 0x00000307, 0x00000307);
1462 1463

	/* init master */
1464
	nv_wr32(dev, 0x610494, (disp->evo[0].handle >> 8) | 3);
1465
	nv_wr32(dev, 0x610498, 0x00010000);
1466
	nv_wr32(dev, 0x61049c, 0x00000001);
1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490
	nv_mask(dev, 0x610490, 0x00000010, 0x00000010);
	nv_wr32(dev, 0x640000, 0x00000000);
	nv_wr32(dev, 0x610490, 0x01000013);
	if (!nv_wait(dev, 0x610490, 0x80000000, 0x00000000)) {
		NV_ERROR(dev, "PDISP: master 0x%08x\n",
			 nv_rd32(dev, 0x610490));
		return -EBUSY;
	}
	nv_mask(dev, 0x610090, 0x00000001, 0x00000001);
	nv_mask(dev, 0x6100a0, 0x00000001, 0x00000001);

	/* init cursors */
	for (i = 13; i <= 14; i++) {
		nv_wr32(dev, 0x610490 + (i * 0x10), 0x00000001);
		if (!nv_wait(dev, 0x610490 + (i * 0x10), 0x00010000, 0x00010000)) {
			NV_ERROR(dev, "PDISP: curs%d 0x%08x\n", i,
				 nv_rd32(dev, 0x610490 + (i * 0x10)));
			return -EBUSY;
		}

		nv_mask(dev, 0x610090, 1 << i, 1 << i);
		nv_mask(dev, 0x6100a0, 1 << i, 1 << i);
	}

1491 1492 1493 1494
	push = evo_wait(dev, 0, 32);
	if (!push)
		return -EBUSY;
	evo_mthd(push, 0x0088, 1);
1495
	evo_data(push, NvEvoSync);
1496 1497 1498 1499 1500 1501 1502 1503
	evo_mthd(push, 0x0084, 1);
	evo_data(push, 0x00000000);
	evo_mthd(push, 0x0084, 1);
	evo_data(push, 0x80000000);
	evo_mthd(push, 0x008c, 1);
	evo_data(push, 0x00000000);
	evo_kick(push, dev, 0);

1504 1505 1506 1507 1508 1509 1510 1511
	return 0;
}

void
nvd0_display_destroy(struct drm_device *dev)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;
	struct nvd0_display *disp = nvd0_display(dev);
1512
	struct pci_dev *pdev = dev->pdev;
1513

1514
	pci_free_consistent(pdev, PAGE_SIZE, disp->evo[0].ptr, disp->evo[0].handle);
1515
	nouveau_gpuobj_ref(NULL, &disp->mem);
1516
	nouveau_irq_unregister(dev, 26);
1517 1518

	dev_priv->engine.display.priv = NULL;
1519 1520 1521 1522 1523 1524 1525
	kfree(disp);
}

int
nvd0_display_create(struct drm_device *dev)
{
	struct drm_nouveau_private *dev_priv = dev->dev_private;
1526
	struct nouveau_instmem_engine *pinstmem = &dev_priv->engine.instmem;
1527 1528
	struct dcb_table *dcb = &dev_priv->vbios.dcb;
	struct drm_connector *connector, *tmp;
1529
	struct pci_dev *pdev = dev->pdev;
1530
	struct nvd0_display *disp;
1531 1532
	struct dcb_entry *dcbe;
	int ret, i;
1533 1534 1535 1536 1537 1538

	disp = kzalloc(sizeof(*disp), GFP_KERNEL);
	if (!disp)
		return -ENOMEM;
	dev_priv->engine.display.priv = disp;

1539 1540 1541 1542 1543 1544 1545
	/* create crtc objects to represent the hw heads */
	for (i = 0; i < 2; i++) {
		ret = nvd0_crtc_create(dev, i);
		if (ret)
			goto out;
	}

1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559
	/* create encoder/connector objects based on VBIOS DCB table */
	for (i = 0, dcbe = &dcb->entry[0]; i < dcb->entries; i++, dcbe++) {
		connector = nouveau_connector_create(dev, dcbe->connector);
		if (IS_ERR(connector))
			continue;

		if (dcbe->location != DCB_LOC_ON_CHIP) {
			NV_WARN(dev, "skipping off-chip encoder %d/%d\n",
				dcbe->type, ffs(dcbe->or) - 1);
			continue;
		}

		switch (dcbe->type) {
		case OUTPUT_TMDS:
1560
		case OUTPUT_LVDS:
1561 1562
			nvd0_sor_create(connector, dcbe);
			break;
B
Ben Skeggs 已提交
1563 1564 1565
		case OUTPUT_ANALOG:
			nvd0_dac_create(connector, dcbe);
			break;
1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582
		default:
			NV_WARN(dev, "skipping unsupported encoder %d/%d\n",
				dcbe->type, ffs(dcbe->or) - 1);
			continue;
		}
	}

	/* cull any connectors we created that don't have an encoder */
	list_for_each_entry_safe(connector, tmp, &dev->mode_config.connector_list, head) {
		if (connector->encoder_ids[0])
			continue;

		NV_WARN(dev, "%s has no encoders, removing\n",
			drm_get_connector_name(connector));
		connector->funcs->destroy(connector);
	}

1583
	/* setup interrupt handling */
1584
	tasklet_init(&disp->tasklet, nvd0_display_bh, (unsigned long)dev);
1585 1586
	nouveau_irq_register(dev, 26, nvd0_display_intr);

1587
	/* hash table and dma objects for the memory areas we care about */
1588 1589
	ret = nouveau_gpuobj_new(dev, NULL, 0x4000, 0x10000,
				 NVOBJ_FLAG_ZERO_ALLOC, &disp->mem);
1590 1591 1592
	if (ret)
		goto out;

1593 1594 1595 1596 1597 1598
	nv_wo32(disp->mem, 0x1000, 0x00000049);
	nv_wo32(disp->mem, 0x1004, (disp->mem->vinst + 0x2000) >> 8);
	nv_wo32(disp->mem, 0x1008, (disp->mem->vinst + 0x2fff) >> 8);
	nv_wo32(disp->mem, 0x100c, 0x00000000);
	nv_wo32(disp->mem, 0x1010, 0x00000000);
	nv_wo32(disp->mem, 0x1014, 0x00000000);
1599
	nv_wo32(disp->mem, 0x0000, NvEvoSync);
1600 1601
	nv_wo32(disp->mem, 0x0004, (0x1000 << 9) | 0x00000001);

1602
	nv_wo32(disp->mem, 0x1020, 0x00000049);
1603 1604 1605 1606 1607
	nv_wo32(disp->mem, 0x1024, 0x00000000);
	nv_wo32(disp->mem, 0x1028, (dev_priv->vram_size - 1) >> 8);
	nv_wo32(disp->mem, 0x102c, 0x00000000);
	nv_wo32(disp->mem, 0x1030, 0x00000000);
	nv_wo32(disp->mem, 0x1034, 0x00000000);
1608
	nv_wo32(disp->mem, 0x0008, NvEvoVRAM);
1609 1610
	nv_wo32(disp->mem, 0x000c, (0x1020 << 9) | 0x00000001);

1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628
	nv_wo32(disp->mem, 0x1040, 0x00000009);
	nv_wo32(disp->mem, 0x1044, 0x00000000);
	nv_wo32(disp->mem, 0x1048, (dev_priv->vram_size - 1) >> 8);
	nv_wo32(disp->mem, 0x104c, 0x00000000);
	nv_wo32(disp->mem, 0x1050, 0x00000000);
	nv_wo32(disp->mem, 0x1054, 0x00000000);
	nv_wo32(disp->mem, 0x0010, NvEvoVRAM_LP);
	nv_wo32(disp->mem, 0x0014, (0x1040 << 9) | 0x00000001);

	nv_wo32(disp->mem, 0x1060, 0x0fe00009);
	nv_wo32(disp->mem, 0x1064, 0x00000000);
	nv_wo32(disp->mem, 0x1068, (dev_priv->vram_size - 1) >> 8);
	nv_wo32(disp->mem, 0x106c, 0x00000000);
	nv_wo32(disp->mem, 0x1070, 0x00000000);
	nv_wo32(disp->mem, 0x1074, 0x00000000);
	nv_wo32(disp->mem, 0x0018, NvEvoFB32);
	nv_wo32(disp->mem, 0x001c, (0x1060 << 9) | 0x00000001);

1629 1630
	pinstmem->flush(dev);

1631 1632 1633 1634 1635 1636 1637 1638
	/* push buffers for evo channels */
	disp->evo[0].ptr =
		pci_alloc_consistent(pdev, PAGE_SIZE, &disp->evo[0].handle);
	if (!disp->evo[0].ptr) {
		ret = -ENOMEM;
		goto out;
	}

1639 1640 1641 1642 1643
out:
	if (ret)
		nvd0_display_destroy(dev);
	return ret;
}