intel_pm.c 261.4 KB
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/*
 * Copyright © 2012 Intel Corporation
 *
 * 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
 * THE AUTHORS OR COPYRIGHT HOLDERS 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:
 *    Eugeni Dodonov <eugeni.dodonov@intel.com>
 *
 */

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#include <linux/cpufreq.h>
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#include <drm/drm_plane_helper.h>
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#include "i915_drv.h"
#include "intel_drv.h"
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#include "../../../platform/x86/intel_ips.h"
#include <linux/module.h>
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#include <drm/drm_atomic_helper.h>
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/**
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 * DOC: RC6
 *
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 * RC6 is a special power stage which allows the GPU to enter an very
 * low-voltage mode when idle, using down to 0V while at this stage.  This
 * stage is entered automatically when the GPU is idle when RC6 support is
 * enabled, and as soon as new workload arises GPU wakes up automatically as well.
 *
 * There are different RC6 modes available in Intel GPU, which differentiate
 * among each other with the latency required to enter and leave RC6 and
 * voltage consumed by the GPU in different states.
 *
 * The combination of the following flags define which states GPU is allowed
 * to enter, while RC6 is the normal RC6 state, RC6p is the deep RC6, and
 * RC6pp is deepest RC6. Their support by hardware varies according to the
 * GPU, BIOS, chipset and platform. RC6 is usually the safest one and the one
 * which brings the most power savings; deeper states save more power, but
 * require higher latency to switch to and wake up.
 */
#define INTEL_RC6_ENABLE			(1<<0)
#define INTEL_RC6p_ENABLE			(1<<1)
#define INTEL_RC6pp_ENABLE			(1<<2)

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static void gen9_init_clock_gating(struct drm_i915_private *dev_priv)
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{
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	/* See Bspec note for PSR2_CTL bit 31, Wa#828:skl,bxt,kbl,cfl */
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	I915_WRITE(CHICKEN_PAR1_1,
		   I915_READ(CHICKEN_PAR1_1) | SKL_EDP_PSR_FIX_RDWRAP);

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	I915_WRITE(GEN8_CONFIG0,
		   I915_READ(GEN8_CONFIG0) | GEN9_DEFAULT_FIXES);
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	/* WaEnableChickenDCPR:skl,bxt,kbl,glk,cfl */
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	I915_WRITE(GEN8_CHICKEN_DCPR_1,
		   I915_READ(GEN8_CHICKEN_DCPR_1) | MASK_WAKEMEM);
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	/* WaFbcTurnOffFbcWatermark:skl,bxt,kbl,cfl */
	/* WaFbcWakeMemOn:skl,bxt,kbl,glk,cfl */
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	I915_WRITE(DISP_ARB_CTL, I915_READ(DISP_ARB_CTL) |
		   DISP_FBC_WM_DIS |
		   DISP_FBC_MEMORY_WAKE);
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	/* WaFbcHighMemBwCorruptionAvoidance:skl,bxt,kbl,cfl */
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	I915_WRITE(ILK_DPFC_CHICKEN, I915_READ(ILK_DPFC_CHICKEN) |
		   ILK_DPFC_DISABLE_DUMMY0);
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}

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static void bxt_init_clock_gating(struct drm_i915_private *dev_priv)
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{
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	gen9_init_clock_gating(dev_priv);
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	/* WaDisableSDEUnitClockGating:bxt */
	I915_WRITE(GEN8_UCGCTL6, I915_READ(GEN8_UCGCTL6) |
		   GEN8_SDEUNIT_CLOCK_GATE_DISABLE);

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	/*
	 * FIXME:
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	 * GEN8_HDCUNIT_CLOCK_GATE_DISABLE_HDCREQ applies on 3x6 GT SKUs only.
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	 */
	I915_WRITE(GEN8_UCGCTL6, I915_READ(GEN8_UCGCTL6) |
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		   GEN8_HDCUNIT_CLOCK_GATE_DISABLE_HDCREQ);
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	/*
	 * Wa: Backlight PWM may stop in the asserted state, causing backlight
	 * to stay fully on.
	 */
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	I915_WRITE(GEN9_CLKGATE_DIS_0, I915_READ(GEN9_CLKGATE_DIS_0) |
		   PWM1_GATING_DIS | PWM2_GATING_DIS);
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}

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static void glk_init_clock_gating(struct drm_i915_private *dev_priv)
{
	gen9_init_clock_gating(dev_priv);

	/*
	 * WaDisablePWMClockGating:glk
	 * Backlight PWM may stop in the asserted state, causing backlight
	 * to stay fully on.
	 */
	I915_WRITE(GEN9_CLKGATE_DIS_0, I915_READ(GEN9_CLKGATE_DIS_0) |
		   PWM1_GATING_DIS | PWM2_GATING_DIS);
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	/* WaDDIIOTimeout:glk */
	if (IS_GLK_REVID(dev_priv, 0, GLK_REVID_A1)) {
		u32 val = I915_READ(CHICKEN_MISC_2);
		val &= ~(GLK_CL0_PWR_DOWN |
			 GLK_CL1_PWR_DOWN |
			 GLK_CL2_PWR_DOWN);
		I915_WRITE(CHICKEN_MISC_2, val);
	}

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}

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static void i915_pineview_get_mem_freq(struct drm_i915_private *dev_priv)
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{
	u32 tmp;

	tmp = I915_READ(CLKCFG);

	switch (tmp & CLKCFG_FSB_MASK) {
	case CLKCFG_FSB_533:
		dev_priv->fsb_freq = 533; /* 133*4 */
		break;
	case CLKCFG_FSB_800:
		dev_priv->fsb_freq = 800; /* 200*4 */
		break;
	case CLKCFG_FSB_667:
		dev_priv->fsb_freq =  667; /* 167*4 */
		break;
	case CLKCFG_FSB_400:
		dev_priv->fsb_freq = 400; /* 100*4 */
		break;
	}

	switch (tmp & CLKCFG_MEM_MASK) {
	case CLKCFG_MEM_533:
		dev_priv->mem_freq = 533;
		break;
	case CLKCFG_MEM_667:
		dev_priv->mem_freq = 667;
		break;
	case CLKCFG_MEM_800:
		dev_priv->mem_freq = 800;
		break;
	}

	/* detect pineview DDR3 setting */
	tmp = I915_READ(CSHRDDR3CTL);
	dev_priv->is_ddr3 = (tmp & CSHRDDR3CTL_DDR3) ? 1 : 0;
}

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static void i915_ironlake_get_mem_freq(struct drm_i915_private *dev_priv)
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{
	u16 ddrpll, csipll;

	ddrpll = I915_READ16(DDRMPLL1);
	csipll = I915_READ16(CSIPLL0);

	switch (ddrpll & 0xff) {
	case 0xc:
		dev_priv->mem_freq = 800;
		break;
	case 0x10:
		dev_priv->mem_freq = 1066;
		break;
	case 0x14:
		dev_priv->mem_freq = 1333;
		break;
	case 0x18:
		dev_priv->mem_freq = 1600;
		break;
	default:
		DRM_DEBUG_DRIVER("unknown memory frequency 0x%02x\n",
				 ddrpll & 0xff);
		dev_priv->mem_freq = 0;
		break;
	}

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	dev_priv->ips.r_t = dev_priv->mem_freq;
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	switch (csipll & 0x3ff) {
	case 0x00c:
		dev_priv->fsb_freq = 3200;
		break;
	case 0x00e:
		dev_priv->fsb_freq = 3733;
		break;
	case 0x010:
		dev_priv->fsb_freq = 4266;
		break;
	case 0x012:
		dev_priv->fsb_freq = 4800;
		break;
	case 0x014:
		dev_priv->fsb_freq = 5333;
		break;
	case 0x016:
		dev_priv->fsb_freq = 5866;
		break;
	case 0x018:
		dev_priv->fsb_freq = 6400;
		break;
	default:
		DRM_DEBUG_DRIVER("unknown fsb frequency 0x%04x\n",
				 csipll & 0x3ff);
		dev_priv->fsb_freq = 0;
		break;
	}

	if (dev_priv->fsb_freq == 3200) {
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		dev_priv->ips.c_m = 0;
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	} else if (dev_priv->fsb_freq > 3200 && dev_priv->fsb_freq <= 4800) {
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		dev_priv->ips.c_m = 1;
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	} else {
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		dev_priv->ips.c_m = 2;
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	}
}

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static const struct cxsr_latency cxsr_latency_table[] = {
	{1, 0, 800, 400, 3382, 33382, 3983, 33983},    /* DDR2-400 SC */
	{1, 0, 800, 667, 3354, 33354, 3807, 33807},    /* DDR2-667 SC */
	{1, 0, 800, 800, 3347, 33347, 3763, 33763},    /* DDR2-800 SC */
	{1, 1, 800, 667, 6420, 36420, 6873, 36873},    /* DDR3-667 SC */
	{1, 1, 800, 800, 5902, 35902, 6318, 36318},    /* DDR3-800 SC */

	{1, 0, 667, 400, 3400, 33400, 4021, 34021},    /* DDR2-400 SC */
	{1, 0, 667, 667, 3372, 33372, 3845, 33845},    /* DDR2-667 SC */
	{1, 0, 667, 800, 3386, 33386, 3822, 33822},    /* DDR2-800 SC */
	{1, 1, 667, 667, 6438, 36438, 6911, 36911},    /* DDR3-667 SC */
	{1, 1, 667, 800, 5941, 35941, 6377, 36377},    /* DDR3-800 SC */

	{1, 0, 400, 400, 3472, 33472, 4173, 34173},    /* DDR2-400 SC */
	{1, 0, 400, 667, 3443, 33443, 3996, 33996},    /* DDR2-667 SC */
	{1, 0, 400, 800, 3430, 33430, 3946, 33946},    /* DDR2-800 SC */
	{1, 1, 400, 667, 6509, 36509, 7062, 37062},    /* DDR3-667 SC */
	{1, 1, 400, 800, 5985, 35985, 6501, 36501},    /* DDR3-800 SC */

	{0, 0, 800, 400, 3438, 33438, 4065, 34065},    /* DDR2-400 SC */
	{0, 0, 800, 667, 3410, 33410, 3889, 33889},    /* DDR2-667 SC */
	{0, 0, 800, 800, 3403, 33403, 3845, 33845},    /* DDR2-800 SC */
	{0, 1, 800, 667, 6476, 36476, 6955, 36955},    /* DDR3-667 SC */
	{0, 1, 800, 800, 5958, 35958, 6400, 36400},    /* DDR3-800 SC */

	{0, 0, 667, 400, 3456, 33456, 4103, 34106},    /* DDR2-400 SC */
	{0, 0, 667, 667, 3428, 33428, 3927, 33927},    /* DDR2-667 SC */
	{0, 0, 667, 800, 3443, 33443, 3905, 33905},    /* DDR2-800 SC */
	{0, 1, 667, 667, 6494, 36494, 6993, 36993},    /* DDR3-667 SC */
	{0, 1, 667, 800, 5998, 35998, 6460, 36460},    /* DDR3-800 SC */

	{0, 0, 400, 400, 3528, 33528, 4255, 34255},    /* DDR2-400 SC */
	{0, 0, 400, 667, 3500, 33500, 4079, 34079},    /* DDR2-667 SC */
	{0, 0, 400, 800, 3487, 33487, 4029, 34029},    /* DDR2-800 SC */
	{0, 1, 400, 667, 6566, 36566, 7145, 37145},    /* DDR3-667 SC */
	{0, 1, 400, 800, 6042, 36042, 6584, 36584},    /* DDR3-800 SC */
};

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static const struct cxsr_latency *intel_get_cxsr_latency(bool is_desktop,
							 bool is_ddr3,
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							 int fsb,
							 int mem)
{
	const struct cxsr_latency *latency;
	int i;

	if (fsb == 0 || mem == 0)
		return NULL;

	for (i = 0; i < ARRAY_SIZE(cxsr_latency_table); i++) {
		latency = &cxsr_latency_table[i];
		if (is_desktop == latency->is_desktop &&
		    is_ddr3 == latency->is_ddr3 &&
		    fsb == latency->fsb_freq && mem == latency->mem_freq)
			return latency;
	}

	DRM_DEBUG_KMS("Unknown FSB/MEM found, disable CxSR\n");

	return NULL;
}

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static void chv_set_memory_dvfs(struct drm_i915_private *dev_priv, bool enable)
{
	u32 val;

	mutex_lock(&dev_priv->rps.hw_lock);

	val = vlv_punit_read(dev_priv, PUNIT_REG_DDR_SETUP2);
	if (enable)
		val &= ~FORCE_DDR_HIGH_FREQ;
	else
		val |= FORCE_DDR_HIGH_FREQ;
	val &= ~FORCE_DDR_LOW_FREQ;
	val |= FORCE_DDR_FREQ_REQ_ACK;
	vlv_punit_write(dev_priv, PUNIT_REG_DDR_SETUP2, val);

	if (wait_for((vlv_punit_read(dev_priv, PUNIT_REG_DDR_SETUP2) &
		      FORCE_DDR_FREQ_REQ_ACK) == 0, 3))
		DRM_ERROR("timed out waiting for Punit DDR DVFS request\n");

	mutex_unlock(&dev_priv->rps.hw_lock);
}

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static void chv_set_memory_pm5(struct drm_i915_private *dev_priv, bool enable)
{
	u32 val;

	mutex_lock(&dev_priv->rps.hw_lock);

	val = vlv_punit_read(dev_priv, PUNIT_REG_DSPFREQ);
	if (enable)
		val |= DSP_MAXFIFO_PM5_ENABLE;
	else
		val &= ~DSP_MAXFIFO_PM5_ENABLE;
	vlv_punit_write(dev_priv, PUNIT_REG_DSPFREQ, val);

	mutex_unlock(&dev_priv->rps.hw_lock);
}

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#define FW_WM(value, plane) \
	(((value) << DSPFW_ ## plane ## _SHIFT) & DSPFW_ ## plane ## _MASK)

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static bool _intel_set_memory_cxsr(struct drm_i915_private *dev_priv, bool enable)
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{
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	bool was_enabled;
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	u32 val;
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	if (IS_VALLEYVIEW(dev_priv) || IS_CHERRYVIEW(dev_priv)) {
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		was_enabled = I915_READ(FW_BLC_SELF_VLV) & FW_CSPWRDWNEN;
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		I915_WRITE(FW_BLC_SELF_VLV, enable ? FW_CSPWRDWNEN : 0);
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		POSTING_READ(FW_BLC_SELF_VLV);
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	} else if (IS_G4X(dev_priv) || IS_I965GM(dev_priv)) {
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		was_enabled = I915_READ(FW_BLC_SELF) & FW_BLC_SELF_EN;
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		I915_WRITE(FW_BLC_SELF, enable ? FW_BLC_SELF_EN : 0);
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		POSTING_READ(FW_BLC_SELF);
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	} else if (IS_PINEVIEW(dev_priv)) {
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		val = I915_READ(DSPFW3);
		was_enabled = val & PINEVIEW_SELF_REFRESH_EN;
		if (enable)
			val |= PINEVIEW_SELF_REFRESH_EN;
		else
			val &= ~PINEVIEW_SELF_REFRESH_EN;
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		I915_WRITE(DSPFW3, val);
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		POSTING_READ(DSPFW3);
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	} else if (IS_I945G(dev_priv) || IS_I945GM(dev_priv)) {
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		was_enabled = I915_READ(FW_BLC_SELF) & FW_BLC_SELF_EN;
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		val = enable ? _MASKED_BIT_ENABLE(FW_BLC_SELF_EN) :
			       _MASKED_BIT_DISABLE(FW_BLC_SELF_EN);
		I915_WRITE(FW_BLC_SELF, val);
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		POSTING_READ(FW_BLC_SELF);
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	} else if (IS_I915GM(dev_priv)) {
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		/*
		 * FIXME can't find a bit like this for 915G, and
		 * and yet it does have the related watermark in
		 * FW_BLC_SELF. What's going on?
		 */
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		was_enabled = I915_READ(INSTPM) & INSTPM_SELF_EN;
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		val = enable ? _MASKED_BIT_ENABLE(INSTPM_SELF_EN) :
			       _MASKED_BIT_DISABLE(INSTPM_SELF_EN);
		I915_WRITE(INSTPM, val);
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		POSTING_READ(INSTPM);
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	} else {
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		return false;
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	}
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	trace_intel_memory_cxsr(dev_priv, was_enabled, enable);

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	DRM_DEBUG_KMS("memory self-refresh is %s (was %s)\n",
		      enableddisabled(enable),
		      enableddisabled(was_enabled));

	return was_enabled;
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}

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Ville Syrjälä 已提交
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/**
 * intel_set_memory_cxsr - Configure CxSR state
 * @dev_priv: i915 device
 * @enable: Allow vs. disallow CxSR
 *
 * Allow or disallow the system to enter a special CxSR
 * (C-state self refresh) state. What typically happens in CxSR mode
 * is that several display FIFOs may get combined into a single larger
 * FIFO for a particular plane (so called max FIFO mode) to allow the
 * system to defer memory fetches longer, and the memory will enter
 * self refresh.
 *
 * Note that enabling CxSR does not guarantee that the system enter
 * this special mode, nor does it guarantee that the system stays
 * in that mode once entered. So this just allows/disallows the system
 * to autonomously utilize the CxSR mode. Other factors such as core
 * C-states will affect when/if the system actually enters/exits the
 * CxSR mode.
 *
 * Note that on VLV/CHV this actually only controls the max FIFO mode,
 * and the system is free to enter/exit memory self refresh at any time
 * even when the use of CxSR has been disallowed.
 *
 * While the system is actually in the CxSR/max FIFO mode, some plane
 * control registers will not get latched on vblank. Thus in order to
 * guarantee the system will respond to changes in the plane registers
 * we must always disallow CxSR prior to making changes to those registers.
 * Unfortunately the system will re-evaluate the CxSR conditions at
 * frame start which happens after vblank start (which is when the plane
 * registers would get latched), so we can't proceed with the plane update
 * during the same frame where we disallowed CxSR.
 *
 * Certain platforms also have a deeper HPLL SR mode. Fortunately the
 * HPLL SR mode depends on CxSR itself, so we don't have to hand hold
 * the hardware w.r.t. HPLL SR when writing to plane registers.
 * Disallowing just CxSR is sufficient.
 */
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bool intel_set_memory_cxsr(struct drm_i915_private *dev_priv, bool enable)
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{
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	bool ret;

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	mutex_lock(&dev_priv->wm.wm_mutex);
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	ret = _intel_set_memory_cxsr(dev_priv, enable);
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	if (IS_VALLEYVIEW(dev_priv) || IS_CHERRYVIEW(dev_priv))
		dev_priv->wm.vlv.cxsr = enable;
	else if (IS_G4X(dev_priv))
		dev_priv->wm.g4x.cxsr = enable;
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	mutex_unlock(&dev_priv->wm.wm_mutex);
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	return ret;
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}
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/*
 * Latency for FIFO fetches is dependent on several factors:
 *   - memory configuration (speed, channels)
 *   - chipset
 *   - current MCH state
 * It can be fairly high in some situations, so here we assume a fairly
 * pessimal value.  It's a tradeoff between extra memory fetches (if we
 * set this value too high, the FIFO will fetch frequently to stay full)
 * and power consumption (set it too low to save power and we might see
 * FIFO underruns and display "flicker").
 *
 * A value of 5us seems to be a good balance; safe for very low end
 * platforms but not overly aggressive on lower latency configs.
 */
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static const int pessimal_latency_ns = 5000;
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#define VLV_FIFO_START(dsparb, dsparb2, lo_shift, hi_shift) \
	((((dsparb) >> (lo_shift)) & 0xff) | ((((dsparb2) >> (hi_shift)) & 0x1) << 8))

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static void vlv_get_fifo_size(struct intel_crtc_state *crtc_state)
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{
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	struct intel_crtc *crtc = to_intel_crtc(crtc_state->base.crtc);
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	struct drm_i915_private *dev_priv = to_i915(crtc->base.dev);
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	struct vlv_fifo_state *fifo_state = &crtc_state->wm.vlv.fifo_state;
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	enum pipe pipe = crtc->pipe;
	int sprite0_start, sprite1_start;
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	switch (pipe) {
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		uint32_t dsparb, dsparb2, dsparb3;
	case PIPE_A:
		dsparb = I915_READ(DSPARB);
		dsparb2 = I915_READ(DSPARB2);
		sprite0_start = VLV_FIFO_START(dsparb, dsparb2, 0, 0);
		sprite1_start = VLV_FIFO_START(dsparb, dsparb2, 8, 4);
		break;
	case PIPE_B:
		dsparb = I915_READ(DSPARB);
		dsparb2 = I915_READ(DSPARB2);
		sprite0_start = VLV_FIFO_START(dsparb, dsparb2, 16, 8);
		sprite1_start = VLV_FIFO_START(dsparb, dsparb2, 24, 12);
		break;
	case PIPE_C:
		dsparb2 = I915_READ(DSPARB2);
		dsparb3 = I915_READ(DSPARB3);
		sprite0_start = VLV_FIFO_START(dsparb3, dsparb2, 0, 16);
		sprite1_start = VLV_FIFO_START(dsparb3, dsparb2, 8, 20);
		break;
	default:
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		MISSING_CASE(pipe);
		return;
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	}

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	fifo_state->plane[PLANE_PRIMARY] = sprite0_start;
	fifo_state->plane[PLANE_SPRITE0] = sprite1_start - sprite0_start;
	fifo_state->plane[PLANE_SPRITE1] = 511 - sprite1_start;
	fifo_state->plane[PLANE_CURSOR] = 63;
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}

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static int i9xx_get_fifo_size(struct drm_i915_private *dev_priv, int plane)
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{
	uint32_t dsparb = I915_READ(DSPARB);
	int size;

	size = dsparb & 0x7f;
	if (plane)
		size = ((dsparb >> DSPARB_CSTART_SHIFT) & 0x7f) - size;

	DRM_DEBUG_KMS("FIFO size - (0x%08x) %s: %d\n", dsparb,
		      plane ? "B" : "A", size);

	return size;
}

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static int i830_get_fifo_size(struct drm_i915_private *dev_priv, int plane)
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{
	uint32_t dsparb = I915_READ(DSPARB);
	int size;

	size = dsparb & 0x1ff;
	if (plane)
		size = ((dsparb >> DSPARB_BEND_SHIFT) & 0x1ff) - size;
	size >>= 1; /* Convert to cachelines */

	DRM_DEBUG_KMS("FIFO size - (0x%08x) %s: %d\n", dsparb,
		      plane ? "B" : "A", size);

	return size;
}

530
static int i845_get_fifo_size(struct drm_i915_private *dev_priv, int plane)
531 532 533 534 535 536 537 538 539 540 541 542 543 544 545 546
{
	uint32_t dsparb = I915_READ(DSPARB);
	int size;

	size = dsparb & 0x7f;
	size >>= 2; /* Convert to cachelines */

	DRM_DEBUG_KMS("FIFO size - (0x%08x) %s: %d\n", dsparb,
		      plane ? "B" : "A",
		      size);

	return size;
}

/* Pineview has different values for various configs */
static const struct intel_watermark_params pineview_display_wm = {
547 548 549 550 551
	.fifo_size = PINEVIEW_DISPLAY_FIFO,
	.max_wm = PINEVIEW_MAX_WM,
	.default_wm = PINEVIEW_DFT_WM,
	.guard_size = PINEVIEW_GUARD_WM,
	.cacheline_size = PINEVIEW_FIFO_LINE_SIZE,
552 553
};
static const struct intel_watermark_params pineview_display_hplloff_wm = {
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	.fifo_size = PINEVIEW_DISPLAY_FIFO,
	.max_wm = PINEVIEW_MAX_WM,
	.default_wm = PINEVIEW_DFT_HPLLOFF_WM,
	.guard_size = PINEVIEW_GUARD_WM,
	.cacheline_size = PINEVIEW_FIFO_LINE_SIZE,
559 560
};
static const struct intel_watermark_params pineview_cursor_wm = {
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	.fifo_size = PINEVIEW_CURSOR_FIFO,
	.max_wm = PINEVIEW_CURSOR_MAX_WM,
	.default_wm = PINEVIEW_CURSOR_DFT_WM,
	.guard_size = PINEVIEW_CURSOR_GUARD_WM,
	.cacheline_size = PINEVIEW_FIFO_LINE_SIZE,
566 567
};
static const struct intel_watermark_params pineview_cursor_hplloff_wm = {
568 569 570 571 572
	.fifo_size = PINEVIEW_CURSOR_FIFO,
	.max_wm = PINEVIEW_CURSOR_MAX_WM,
	.default_wm = PINEVIEW_CURSOR_DFT_WM,
	.guard_size = PINEVIEW_CURSOR_GUARD_WM,
	.cacheline_size = PINEVIEW_FIFO_LINE_SIZE,
573 574
};
static const struct intel_watermark_params i965_cursor_wm_info = {
575 576 577 578 579
	.fifo_size = I965_CURSOR_FIFO,
	.max_wm = I965_CURSOR_MAX_WM,
	.default_wm = I965_CURSOR_DFT_WM,
	.guard_size = 2,
	.cacheline_size = I915_FIFO_LINE_SIZE,
580 581
};
static const struct intel_watermark_params i945_wm_info = {
582 583 584 585 586
	.fifo_size = I945_FIFO_SIZE,
	.max_wm = I915_MAX_WM,
	.default_wm = 1,
	.guard_size = 2,
	.cacheline_size = I915_FIFO_LINE_SIZE,
587 588
};
static const struct intel_watermark_params i915_wm_info = {
589 590 591 592 593
	.fifo_size = I915_FIFO_SIZE,
	.max_wm = I915_MAX_WM,
	.default_wm = 1,
	.guard_size = 2,
	.cacheline_size = I915_FIFO_LINE_SIZE,
594
};
595
static const struct intel_watermark_params i830_a_wm_info = {
596 597 598 599 600
	.fifo_size = I855GM_FIFO_SIZE,
	.max_wm = I915_MAX_WM,
	.default_wm = 1,
	.guard_size = 2,
	.cacheline_size = I830_FIFO_LINE_SIZE,
601
};
602 603 604 605 606 607 608
static const struct intel_watermark_params i830_bc_wm_info = {
	.fifo_size = I855GM_FIFO_SIZE,
	.max_wm = I915_MAX_WM/2,
	.default_wm = 1,
	.guard_size = 2,
	.cacheline_size = I830_FIFO_LINE_SIZE,
};
609
static const struct intel_watermark_params i845_wm_info = {
610 611 612 613 614
	.fifo_size = I830_FIFO_SIZE,
	.max_wm = I915_MAX_WM,
	.default_wm = 1,
	.guard_size = 2,
	.cacheline_size = I830_FIFO_LINE_SIZE,
615 616
};

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/**
 * intel_wm_method1 - Method 1 / "small buffer" watermark formula
 * @pixel_rate: Pipe pixel rate in kHz
 * @cpp: Plane bytes per pixel
 * @latency: Memory wakeup latency in 0.1us units
 *
 * Compute the watermark using the method 1 or "small buffer"
 * formula. The caller may additonally add extra cachelines
 * to account for TLB misses and clock crossings.
 *
 * This method is concerned with the short term drain rate
 * of the FIFO, ie. it does not account for blanking periods
 * which would effectively reduce the average drain rate across
 * a longer period. The name "small" refers to the fact the
 * FIFO is relatively small compared to the amount of data
 * fetched.
 *
 * The FIFO level vs. time graph might look something like:
 *
 *   |\   |\
 *   | \  | \
 * __---__---__ (- plane active, _ blanking)
 * -> time
 *
 * or perhaps like this:
 *
 *   |\|\  |\|\
 * __----__----__ (- plane active, _ blanking)
 * -> time
 *
 * Returns:
 * The watermark in bytes
 */
static unsigned int intel_wm_method1(unsigned int pixel_rate,
				     unsigned int cpp,
				     unsigned int latency)
{
	uint64_t ret;

	ret = (uint64_t) pixel_rate * cpp * latency;
	ret = DIV_ROUND_UP_ULL(ret, 10000);

	return ret;
}

/**
 * intel_wm_method2 - Method 2 / "large buffer" watermark formula
 * @pixel_rate: Pipe pixel rate in kHz
 * @htotal: Pipe horizontal total
 * @width: Plane width in pixels
 * @cpp: Plane bytes per pixel
 * @latency: Memory wakeup latency in 0.1us units
 *
 * Compute the watermark using the method 2 or "large buffer"
 * formula. The caller may additonally add extra cachelines
 * to account for TLB misses and clock crossings.
 *
 * This method is concerned with the long term drain rate
 * of the FIFO, ie. it does account for blanking periods
 * which effectively reduce the average drain rate across
 * a longer period. The name "large" refers to the fact the
 * FIFO is relatively large compared to the amount of data
 * fetched.
 *
 * The FIFO level vs. time graph might look something like:
 *
 *    |\___       |\___
 *    |    \___   |    \___
 *    |        \  |        \
 * __ --__--__--__--__--__--__ (- plane active, _ blanking)
 * -> time
 *
 * Returns:
 * The watermark in bytes
 */
static unsigned int intel_wm_method2(unsigned int pixel_rate,
				     unsigned int htotal,
				     unsigned int width,
				     unsigned int cpp,
				     unsigned int latency)
{
	unsigned int ret;

	/*
	 * FIXME remove once all users are computing
	 * watermarks in the correct place.
	 */
	if (WARN_ON_ONCE(htotal == 0))
		htotal = 1;

	ret = (latency * pixel_rate) / (htotal * 10000);
	ret = (ret + 1) * width * cpp;

	return ret;
}

713 714
/**
 * intel_calculate_wm - calculate watermark level
715
 * @pixel_rate: pixel clock
716
 * @wm: chip FIFO params
717
 * @cpp: bytes per pixel
718 719 720 721 722 723 724 725 726 727 728 729 730
 * @latency_ns: memory latency for the platform
 *
 * Calculate the watermark level (the level at which the display plane will
 * start fetching from memory again).  Each chip has a different display
 * FIFO size and allocation, so the caller needs to figure that out and pass
 * in the correct intel_watermark_params structure.
 *
 * As the pixel clock runs, the FIFO will be drained at a rate that depends
 * on the pixel size.  When it reaches the watermark level, it'll start
 * fetching FIFO line sized based chunks from memory until the FIFO fills
 * past the watermark point.  If the FIFO drains completely, a FIFO underrun
 * will occur, and a display engine hang could result.
 */
731 732 733 734
static unsigned int intel_calculate_wm(int pixel_rate,
				       const struct intel_watermark_params *wm,
				       int fifo_size, int cpp,
				       unsigned int latency_ns)
735
{
736
	int entries, wm_size;
737 738 739 740 741 742 743

	/*
	 * Note: we need to make sure we don't overflow for various clock &
	 * latency values.
	 * clocks go from a few thousand to several hundred thousand.
	 * latency is usually a few thousand
	 */
744 745 746 747 748
	entries = intel_wm_method1(pixel_rate, cpp,
				   latency_ns / 100);
	entries = DIV_ROUND_UP(entries, wm->cacheline_size) +
		wm->guard_size;
	DRM_DEBUG_KMS("FIFO entries required for mode: %d\n", entries);
749

750 751
	wm_size = fifo_size - entries;
	DRM_DEBUG_KMS("FIFO watermark level: %d\n", wm_size);
752 753

	/* Don't promote wm_size to unsigned... */
754
	if (wm_size > wm->max_wm)
755 756 757
		wm_size = wm->max_wm;
	if (wm_size <= 0)
		wm_size = wm->default_wm;
758 759 760 761 762 763 764 765 766 767 768

	/*
	 * Bspec seems to indicate that the value shouldn't be lower than
	 * 'burst size + 1'. Certainly 830 is quite unhappy with low values.
	 * Lets go for 8 which is the burst size since certain platforms
	 * already use a hardcoded 8 (which is what the spec says should be
	 * done).
	 */
	if (wm_size <= 8)
		wm_size = 8;

769 770 771
	return wm_size;
}

772 773 774 775 776 777 778 779 780 781
static bool is_disabling(int old, int new, int threshold)
{
	return old >= threshold && new < threshold;
}

static bool is_enabling(int old, int new, int threshold)
{
	return old < threshold && new >= threshold;
}

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static int intel_wm_num_levels(struct drm_i915_private *dev_priv)
{
	return dev_priv->wm.max_level + 1;
}

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static bool intel_wm_plane_visible(const struct intel_crtc_state *crtc_state,
				   const struct intel_plane_state *plane_state)
{
	struct intel_plane *plane = to_intel_plane(plane_state->base.plane);

	/* FIXME check the 'enable' instead */
	if (!crtc_state->base.active)
		return false;

	/*
	 * Treat cursor with fb as always visible since cursor updates
	 * can happen faster than the vrefresh rate, and the current
	 * watermark code doesn't handle that correctly. Cursor updates
	 * which set/clear the fb or change the cursor size are going
	 * to get throttled by intel_legacy_cursor_update() to work
	 * around this problem with the watermark code.
	 */
	if (plane->id == PLANE_CURSOR)
		return plane_state->base.fb != NULL;
	else
		return plane_state->base.visible;
}

810
static struct intel_crtc *single_enabled_crtc(struct drm_i915_private *dev_priv)
811
{
812
	struct intel_crtc *crtc, *enabled = NULL;
813

814
	for_each_intel_crtc(&dev_priv->drm, crtc) {
815
		if (intel_crtc_active(crtc)) {
816 817 818 819 820 821 822 823 824
			if (enabled)
				return NULL;
			enabled = crtc;
		}
	}

	return enabled;
}

825
static void pineview_update_wm(struct intel_crtc *unused_crtc)
826
{
827
	struct drm_i915_private *dev_priv = to_i915(unused_crtc->base.dev);
828
	struct intel_crtc *crtc;
829 830
	const struct cxsr_latency *latency;
	u32 reg;
831
	unsigned int wm;
832

833 834 835 836
	latency = intel_get_cxsr_latency(IS_PINEVIEW_G(dev_priv),
					 dev_priv->is_ddr3,
					 dev_priv->fsb_freq,
					 dev_priv->mem_freq);
837 838
	if (!latency) {
		DRM_DEBUG_KMS("Unknown FSB/MEM found, disable CxSR\n");
839
		intel_set_memory_cxsr(dev_priv, false);
840 841 842
		return;
	}

843
	crtc = single_enabled_crtc(dev_priv);
844
	if (crtc) {
845 846 847 848
		const struct drm_display_mode *adjusted_mode =
			&crtc->config->base.adjusted_mode;
		const struct drm_framebuffer *fb =
			crtc->base.primary->state->fb;
849
		int cpp = fb->format->cpp[0];
850
		int clock = adjusted_mode->crtc_clock;
851 852 853 854

		/* Display SR */
		wm = intel_calculate_wm(clock, &pineview_display_wm,
					pineview_display_wm.fifo_size,
855
					cpp, latency->display_sr);
856 857
		reg = I915_READ(DSPFW1);
		reg &= ~DSPFW_SR_MASK;
858
		reg |= FW_WM(wm, SR);
859 860 861 862 863 864
		I915_WRITE(DSPFW1, reg);
		DRM_DEBUG_KMS("DSPFW1 register is %x\n", reg);

		/* cursor SR */
		wm = intel_calculate_wm(clock, &pineview_cursor_wm,
					pineview_display_wm.fifo_size,
865
					4, latency->cursor_sr);
866 867
		reg = I915_READ(DSPFW3);
		reg &= ~DSPFW_CURSOR_SR_MASK;
868
		reg |= FW_WM(wm, CURSOR_SR);
869 870 871 872 873
		I915_WRITE(DSPFW3, reg);

		/* Display HPLL off SR */
		wm = intel_calculate_wm(clock, &pineview_display_hplloff_wm,
					pineview_display_hplloff_wm.fifo_size,
874
					cpp, latency->display_hpll_disable);
875 876
		reg = I915_READ(DSPFW3);
		reg &= ~DSPFW_HPLL_SR_MASK;
877
		reg |= FW_WM(wm, HPLL_SR);
878 879 880 881 882
		I915_WRITE(DSPFW3, reg);

		/* cursor HPLL off SR */
		wm = intel_calculate_wm(clock, &pineview_cursor_hplloff_wm,
					pineview_display_hplloff_wm.fifo_size,
883
					4, latency->cursor_hpll_disable);
884 885
		reg = I915_READ(DSPFW3);
		reg &= ~DSPFW_HPLL_CURSOR_MASK;
886
		reg |= FW_WM(wm, HPLL_CURSOR);
887 888 889
		I915_WRITE(DSPFW3, reg);
		DRM_DEBUG_KMS("DSPFW3 register is %x\n", reg);

890
		intel_set_memory_cxsr(dev_priv, true);
891
	} else {
892
		intel_set_memory_cxsr(dev_priv, false);
893 894 895
	}
}

896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912
/*
 * Documentation says:
 * "If the line size is small, the TLB fetches can get in the way of the
 *  data fetches, causing some lag in the pixel data return which is not
 *  accounted for in the above formulas. The following adjustment only
 *  needs to be applied if eight whole lines fit in the buffer at once.
 *  The WM is adjusted upwards by the difference between the FIFO size
 *  and the size of 8 whole lines. This adjustment is always performed
 *  in the actual pixel depth regardless of whether FBC is enabled or not."
 */
static int g4x_tlb_miss_wa(int fifo_size, int width, int cpp)
{
	int tlb_miss = fifo_size * 64 - width * cpp * 8;

	return max(0, tlb_miss);
}

913 914
static void g4x_write_wm_values(struct drm_i915_private *dev_priv,
				const struct g4x_wm_values *wm)
915
{
916 917 918 919 920
	enum pipe pipe;

	for_each_pipe(dev_priv, pipe)
		trace_g4x_wm(intel_get_crtc_for_pipe(dev_priv, pipe), wm);

921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937
	I915_WRITE(DSPFW1,
		   FW_WM(wm->sr.plane, SR) |
		   FW_WM(wm->pipe[PIPE_B].plane[PLANE_CURSOR], CURSORB) |
		   FW_WM(wm->pipe[PIPE_B].plane[PLANE_PRIMARY], PLANEB) |
		   FW_WM(wm->pipe[PIPE_A].plane[PLANE_PRIMARY], PLANEA));
	I915_WRITE(DSPFW2,
		   (wm->fbc_en ? DSPFW_FBC_SR_EN : 0) |
		   FW_WM(wm->sr.fbc, FBC_SR) |
		   FW_WM(wm->hpll.fbc, FBC_HPLL_SR) |
		   FW_WM(wm->pipe[PIPE_B].plane[PLANE_SPRITE0], SPRITEB) |
		   FW_WM(wm->pipe[PIPE_A].plane[PLANE_CURSOR], CURSORA) |
		   FW_WM(wm->pipe[PIPE_A].plane[PLANE_SPRITE0], SPRITEA));
	I915_WRITE(DSPFW3,
		   (wm->hpll_en ? DSPFW_HPLL_SR_EN : 0) |
		   FW_WM(wm->sr.cursor, CURSOR_SR) |
		   FW_WM(wm->hpll.cursor, HPLL_CURSOR) |
		   FW_WM(wm->hpll.plane, HPLL_SR));
938

939
	POSTING_READ(DSPFW1);
940 941
}

942 943 944
#define FW_WM_VLV(value, plane) \
	(((value) << DSPFW_ ## plane ## _SHIFT) & DSPFW_ ## plane ## _MASK_VLV)

945
static void vlv_write_wm_values(struct drm_i915_private *dev_priv,
946 947
				const struct vlv_wm_values *wm)
{
948 949 950
	enum pipe pipe;

	for_each_pipe(dev_priv, pipe) {
951 952
		trace_vlv_wm(intel_get_crtc_for_pipe(dev_priv, pipe), wm);

953 954 955 956 957 958
		I915_WRITE(VLV_DDL(pipe),
			   (wm->ddl[pipe].plane[PLANE_CURSOR] << DDL_CURSOR_SHIFT) |
			   (wm->ddl[pipe].plane[PLANE_SPRITE1] << DDL_SPRITE_SHIFT(1)) |
			   (wm->ddl[pipe].plane[PLANE_SPRITE0] << DDL_SPRITE_SHIFT(0)) |
			   (wm->ddl[pipe].plane[PLANE_PRIMARY] << DDL_PLANE_SHIFT));
	}
959

960 961 962 963 964 965 966 967 968 969 970
	/*
	 * Zero the (unused) WM1 watermarks, and also clear all the
	 * high order bits so that there are no out of bounds values
	 * present in the registers during the reprogramming.
	 */
	I915_WRITE(DSPHOWM, 0);
	I915_WRITE(DSPHOWM1, 0);
	I915_WRITE(DSPFW4, 0);
	I915_WRITE(DSPFW5, 0);
	I915_WRITE(DSPFW6, 0);

971
	I915_WRITE(DSPFW1,
972
		   FW_WM(wm->sr.plane, SR) |
973 974 975
		   FW_WM(wm->pipe[PIPE_B].plane[PLANE_CURSOR], CURSORB) |
		   FW_WM_VLV(wm->pipe[PIPE_B].plane[PLANE_PRIMARY], PLANEB) |
		   FW_WM_VLV(wm->pipe[PIPE_A].plane[PLANE_PRIMARY], PLANEA));
976
	I915_WRITE(DSPFW2,
977 978 979
		   FW_WM_VLV(wm->pipe[PIPE_A].plane[PLANE_SPRITE1], SPRITEB) |
		   FW_WM(wm->pipe[PIPE_A].plane[PLANE_CURSOR], CURSORA) |
		   FW_WM_VLV(wm->pipe[PIPE_A].plane[PLANE_SPRITE0], SPRITEA));
980
	I915_WRITE(DSPFW3,
981
		   FW_WM(wm->sr.cursor, CURSOR_SR));
982 983 984

	if (IS_CHERRYVIEW(dev_priv)) {
		I915_WRITE(DSPFW7_CHV,
985 986
			   FW_WM_VLV(wm->pipe[PIPE_B].plane[PLANE_SPRITE1], SPRITED) |
			   FW_WM_VLV(wm->pipe[PIPE_B].plane[PLANE_SPRITE0], SPRITEC));
987
		I915_WRITE(DSPFW8_CHV,
988 989
			   FW_WM_VLV(wm->pipe[PIPE_C].plane[PLANE_SPRITE1], SPRITEF) |
			   FW_WM_VLV(wm->pipe[PIPE_C].plane[PLANE_SPRITE0], SPRITEE));
990
		I915_WRITE(DSPFW9_CHV,
991 992
			   FW_WM_VLV(wm->pipe[PIPE_C].plane[PLANE_PRIMARY], PLANEC) |
			   FW_WM(wm->pipe[PIPE_C].plane[PLANE_CURSOR], CURSORC));
993
		I915_WRITE(DSPHOWM,
994
			   FW_WM(wm->sr.plane >> 9, SR_HI) |
995 996 997 998 999 1000 1001 1002 1003
			   FW_WM(wm->pipe[PIPE_C].plane[PLANE_SPRITE1] >> 8, SPRITEF_HI) |
			   FW_WM(wm->pipe[PIPE_C].plane[PLANE_SPRITE0] >> 8, SPRITEE_HI) |
			   FW_WM(wm->pipe[PIPE_C].plane[PLANE_PRIMARY] >> 8, PLANEC_HI) |
			   FW_WM(wm->pipe[PIPE_B].plane[PLANE_SPRITE1] >> 8, SPRITED_HI) |
			   FW_WM(wm->pipe[PIPE_B].plane[PLANE_SPRITE0] >> 8, SPRITEC_HI) |
			   FW_WM(wm->pipe[PIPE_B].plane[PLANE_PRIMARY] >> 8, PLANEB_HI) |
			   FW_WM(wm->pipe[PIPE_A].plane[PLANE_SPRITE1] >> 8, SPRITEB_HI) |
			   FW_WM(wm->pipe[PIPE_A].plane[PLANE_SPRITE0] >> 8, SPRITEA_HI) |
			   FW_WM(wm->pipe[PIPE_A].plane[PLANE_PRIMARY] >> 8, PLANEA_HI));
1004 1005
	} else {
		I915_WRITE(DSPFW7,
1006 1007
			   FW_WM_VLV(wm->pipe[PIPE_B].plane[PLANE_SPRITE1], SPRITED) |
			   FW_WM_VLV(wm->pipe[PIPE_B].plane[PLANE_SPRITE0], SPRITEC));
1008
		I915_WRITE(DSPHOWM,
1009
			   FW_WM(wm->sr.plane >> 9, SR_HI) |
1010 1011 1012 1013 1014 1015
			   FW_WM(wm->pipe[PIPE_B].plane[PLANE_SPRITE1] >> 8, SPRITED_HI) |
			   FW_WM(wm->pipe[PIPE_B].plane[PLANE_SPRITE0] >> 8, SPRITEC_HI) |
			   FW_WM(wm->pipe[PIPE_B].plane[PLANE_PRIMARY] >> 8, PLANEB_HI) |
			   FW_WM(wm->pipe[PIPE_A].plane[PLANE_SPRITE1] >> 8, SPRITEB_HI) |
			   FW_WM(wm->pipe[PIPE_A].plane[PLANE_SPRITE0] >> 8, SPRITEA_HI) |
			   FW_WM(wm->pipe[PIPE_A].plane[PLANE_PRIMARY] >> 8, PLANEA_HI));
1016 1017 1018
	}

	POSTING_READ(DSPFW1);
1019 1020
}

1021 1022
#undef FW_WM_VLV

1023 1024 1025 1026 1027
static void g4x_setup_wm_latency(struct drm_i915_private *dev_priv)
{
	/* all latencies in usec */
	dev_priv->wm.pri_latency[G4X_WM_LEVEL_NORMAL] = 5;
	dev_priv->wm.pri_latency[G4X_WM_LEVEL_SR] = 12;
1028
	dev_priv->wm.pri_latency[G4X_WM_LEVEL_HPLL] = 35;
1029

1030
	dev_priv->wm.max_level = G4X_WM_LEVEL_HPLL;
1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 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 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302 1303 1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 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 1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533 1534 1535 1536 1537 1538 1539 1540
}

static int g4x_plane_fifo_size(enum plane_id plane_id, int level)
{
	/*
	 * DSPCNTR[13] supposedly controls whether the
	 * primary plane can use the FIFO space otherwise
	 * reserved for the sprite plane. It's not 100% clear
	 * what the actual FIFO size is, but it looks like we
	 * can happily set both primary and sprite watermarks
	 * up to 127 cachelines. So that would seem to mean
	 * that either DSPCNTR[13] doesn't do anything, or that
	 * the total FIFO is >= 256 cachelines in size. Either
	 * way, we don't seem to have to worry about this
	 * repartitioning as the maximum watermark value the
	 * register can hold for each plane is lower than the
	 * minimum FIFO size.
	 */
	switch (plane_id) {
	case PLANE_CURSOR:
		return 63;
	case PLANE_PRIMARY:
		return level == G4X_WM_LEVEL_NORMAL ? 127 : 511;
	case PLANE_SPRITE0:
		return level == G4X_WM_LEVEL_NORMAL ? 127 : 0;
	default:
		MISSING_CASE(plane_id);
		return 0;
	}
}

static int g4x_fbc_fifo_size(int level)
{
	switch (level) {
	case G4X_WM_LEVEL_SR:
		return 7;
	case G4X_WM_LEVEL_HPLL:
		return 15;
	default:
		MISSING_CASE(level);
		return 0;
	}
}

static uint16_t g4x_compute_wm(const struct intel_crtc_state *crtc_state,
			       const struct intel_plane_state *plane_state,
			       int level)
{
	struct intel_plane *plane = to_intel_plane(plane_state->base.plane);
	struct drm_i915_private *dev_priv = to_i915(plane->base.dev);
	const struct drm_display_mode *adjusted_mode =
		&crtc_state->base.adjusted_mode;
	int clock, htotal, cpp, width, wm;
	int latency = dev_priv->wm.pri_latency[level] * 10;

	if (latency == 0)
		return USHRT_MAX;

	if (!intel_wm_plane_visible(crtc_state, plane_state))
		return 0;

	/*
	 * Not 100% sure which way ELK should go here as the
	 * spec only says CL/CTG should assume 32bpp and BW
	 * doesn't need to. But as these things followed the
	 * mobile vs. desktop lines on gen3 as well, let's
	 * assume ELK doesn't need this.
	 *
	 * The spec also fails to list such a restriction for
	 * the HPLL watermark, which seems a little strange.
	 * Let's use 32bpp for the HPLL watermark as well.
	 */
	if (IS_GM45(dev_priv) && plane->id == PLANE_PRIMARY &&
	    level != G4X_WM_LEVEL_NORMAL)
		cpp = 4;
	else
		cpp = plane_state->base.fb->format->cpp[0];

	clock = adjusted_mode->crtc_clock;
	htotal = adjusted_mode->crtc_htotal;

	if (plane->id == PLANE_CURSOR)
		width = plane_state->base.crtc_w;
	else
		width = drm_rect_width(&plane_state->base.dst);

	if (plane->id == PLANE_CURSOR) {
		wm = intel_wm_method2(clock, htotal, width, cpp, latency);
	} else if (plane->id == PLANE_PRIMARY &&
		   level == G4X_WM_LEVEL_NORMAL) {
		wm = intel_wm_method1(clock, cpp, latency);
	} else {
		int small, large;

		small = intel_wm_method1(clock, cpp, latency);
		large = intel_wm_method2(clock, htotal, width, cpp, latency);

		wm = min(small, large);
	}

	wm += g4x_tlb_miss_wa(g4x_plane_fifo_size(plane->id, level),
			      width, cpp);

	wm = DIV_ROUND_UP(wm, 64) + 2;

	return min_t(int, wm, USHRT_MAX);
}

static bool g4x_raw_plane_wm_set(struct intel_crtc_state *crtc_state,
				 int level, enum plane_id plane_id, u16 value)
{
	struct drm_i915_private *dev_priv = to_i915(crtc_state->base.crtc->dev);
	bool dirty = false;

	for (; level < intel_wm_num_levels(dev_priv); level++) {
		struct g4x_pipe_wm *raw = &crtc_state->wm.g4x.raw[level];

		dirty |= raw->plane[plane_id] != value;
		raw->plane[plane_id] = value;
	}

	return dirty;
}

static bool g4x_raw_fbc_wm_set(struct intel_crtc_state *crtc_state,
			       int level, u16 value)
{
	struct drm_i915_private *dev_priv = to_i915(crtc_state->base.crtc->dev);
	bool dirty = false;

	/* NORMAL level doesn't have an FBC watermark */
	level = max(level, G4X_WM_LEVEL_SR);

	for (; level < intel_wm_num_levels(dev_priv); level++) {
		struct g4x_pipe_wm *raw = &crtc_state->wm.g4x.raw[level];

		dirty |= raw->fbc != value;
		raw->fbc = value;
	}

	return dirty;
}

static uint32_t ilk_compute_fbc_wm(const struct intel_crtc_state *cstate,
				   const struct intel_plane_state *pstate,
				   uint32_t pri_val);

static bool g4x_raw_plane_wm_compute(struct intel_crtc_state *crtc_state,
				     const struct intel_plane_state *plane_state)
{
	struct intel_plane *plane = to_intel_plane(plane_state->base.plane);
	int num_levels = intel_wm_num_levels(to_i915(plane->base.dev));
	enum plane_id plane_id = plane->id;
	bool dirty = false;
	int level;

	if (!intel_wm_plane_visible(crtc_state, plane_state)) {
		dirty |= g4x_raw_plane_wm_set(crtc_state, 0, plane_id, 0);
		if (plane_id == PLANE_PRIMARY)
			dirty |= g4x_raw_fbc_wm_set(crtc_state, 0, 0);
		goto out;
	}

	for (level = 0; level < num_levels; level++) {
		struct g4x_pipe_wm *raw = &crtc_state->wm.g4x.raw[level];
		int wm, max_wm;

		wm = g4x_compute_wm(crtc_state, plane_state, level);
		max_wm = g4x_plane_fifo_size(plane_id, level);

		if (wm > max_wm)
			break;

		dirty |= raw->plane[plane_id] != wm;
		raw->plane[plane_id] = wm;

		if (plane_id != PLANE_PRIMARY ||
		    level == G4X_WM_LEVEL_NORMAL)
			continue;

		wm = ilk_compute_fbc_wm(crtc_state, plane_state,
					raw->plane[plane_id]);
		max_wm = g4x_fbc_fifo_size(level);

		/*
		 * FBC wm is not mandatory as we
		 * can always just disable its use.
		 */
		if (wm > max_wm)
			wm = USHRT_MAX;

		dirty |= raw->fbc != wm;
		raw->fbc = wm;
	}

	/* mark watermarks as invalid */
	dirty |= g4x_raw_plane_wm_set(crtc_state, level, plane_id, USHRT_MAX);

	if (plane_id == PLANE_PRIMARY)
		dirty |= g4x_raw_fbc_wm_set(crtc_state, level, USHRT_MAX);

 out:
	if (dirty) {
		DRM_DEBUG_KMS("%s watermarks: normal=%d, SR=%d, HPLL=%d\n",
			      plane->base.name,
			      crtc_state->wm.g4x.raw[G4X_WM_LEVEL_NORMAL].plane[plane_id],
			      crtc_state->wm.g4x.raw[G4X_WM_LEVEL_SR].plane[plane_id],
			      crtc_state->wm.g4x.raw[G4X_WM_LEVEL_HPLL].plane[plane_id]);

		if (plane_id == PLANE_PRIMARY)
			DRM_DEBUG_KMS("FBC watermarks: SR=%d, HPLL=%d\n",
				      crtc_state->wm.g4x.raw[G4X_WM_LEVEL_SR].fbc,
				      crtc_state->wm.g4x.raw[G4X_WM_LEVEL_HPLL].fbc);
	}

	return dirty;
}

static bool g4x_raw_plane_wm_is_valid(const struct intel_crtc_state *crtc_state,
				      enum plane_id plane_id, int level)
{
	const struct g4x_pipe_wm *raw = &crtc_state->wm.g4x.raw[level];

	return raw->plane[plane_id] <= g4x_plane_fifo_size(plane_id, level);
}

static bool g4x_raw_crtc_wm_is_valid(const struct intel_crtc_state *crtc_state,
				     int level)
{
	struct drm_i915_private *dev_priv = to_i915(crtc_state->base.crtc->dev);

	if (level > dev_priv->wm.max_level)
		return false;

	return g4x_raw_plane_wm_is_valid(crtc_state, PLANE_PRIMARY, level) &&
		g4x_raw_plane_wm_is_valid(crtc_state, PLANE_SPRITE0, level) &&
		g4x_raw_plane_wm_is_valid(crtc_state, PLANE_CURSOR, level);
}

/* mark all levels starting from 'level' as invalid */
static void g4x_invalidate_wms(struct intel_crtc *crtc,
			       struct g4x_wm_state *wm_state, int level)
{
	if (level <= G4X_WM_LEVEL_NORMAL) {
		enum plane_id plane_id;

		for_each_plane_id_on_crtc(crtc, plane_id)
			wm_state->wm.plane[plane_id] = USHRT_MAX;
	}

	if (level <= G4X_WM_LEVEL_SR) {
		wm_state->cxsr = false;
		wm_state->sr.cursor = USHRT_MAX;
		wm_state->sr.plane = USHRT_MAX;
		wm_state->sr.fbc = USHRT_MAX;
	}

	if (level <= G4X_WM_LEVEL_HPLL) {
		wm_state->hpll_en = false;
		wm_state->hpll.cursor = USHRT_MAX;
		wm_state->hpll.plane = USHRT_MAX;
		wm_state->hpll.fbc = USHRT_MAX;
	}
}

static int g4x_compute_pipe_wm(struct intel_crtc_state *crtc_state)
{
	struct intel_crtc *crtc = to_intel_crtc(crtc_state->base.crtc);
	struct intel_atomic_state *state =
		to_intel_atomic_state(crtc_state->base.state);
	struct g4x_wm_state *wm_state = &crtc_state->wm.g4x.optimal;
	int num_active_planes = hweight32(crtc_state->active_planes &
					  ~BIT(PLANE_CURSOR));
	const struct g4x_pipe_wm *raw;
	struct intel_plane_state *plane_state;
	struct intel_plane *plane;
	enum plane_id plane_id;
	int i, level;
	unsigned int dirty = 0;

	for_each_intel_plane_in_state(state, plane, plane_state, i) {
		const struct intel_plane_state *old_plane_state =
			to_intel_plane_state(plane->base.state);

		if (plane_state->base.crtc != &crtc->base &&
		    old_plane_state->base.crtc != &crtc->base)
			continue;

		if (g4x_raw_plane_wm_compute(crtc_state, plane_state))
			dirty |= BIT(plane->id);
	}

	if (!dirty)
		return 0;

	level = G4X_WM_LEVEL_NORMAL;
	if (!g4x_raw_crtc_wm_is_valid(crtc_state, level))
		goto out;

	raw = &crtc_state->wm.g4x.raw[level];
	for_each_plane_id_on_crtc(crtc, plane_id)
		wm_state->wm.plane[plane_id] = raw->plane[plane_id];

	level = G4X_WM_LEVEL_SR;

	if (!g4x_raw_crtc_wm_is_valid(crtc_state, level))
		goto out;

	raw = &crtc_state->wm.g4x.raw[level];
	wm_state->sr.plane = raw->plane[PLANE_PRIMARY];
	wm_state->sr.cursor = raw->plane[PLANE_CURSOR];
	wm_state->sr.fbc = raw->fbc;

	wm_state->cxsr = num_active_planes == BIT(PLANE_PRIMARY);

	level = G4X_WM_LEVEL_HPLL;

	if (!g4x_raw_crtc_wm_is_valid(crtc_state, level))
		goto out;

	raw = &crtc_state->wm.g4x.raw[level];
	wm_state->hpll.plane = raw->plane[PLANE_PRIMARY];
	wm_state->hpll.cursor = raw->plane[PLANE_CURSOR];
	wm_state->hpll.fbc = raw->fbc;

	wm_state->hpll_en = wm_state->cxsr;

	level++;

 out:
	if (level == G4X_WM_LEVEL_NORMAL)
		return -EINVAL;

	/* invalidate the higher levels */
	g4x_invalidate_wms(crtc, wm_state, level);

	/*
	 * Determine if the FBC watermark(s) can be used. IF
	 * this isn't the case we prefer to disable the FBC
	 ( watermark(s) rather than disable the SR/HPLL
	 * level(s) entirely.
	 */
	wm_state->fbc_en = level > G4X_WM_LEVEL_NORMAL;

	if (level >= G4X_WM_LEVEL_SR &&
	    wm_state->sr.fbc > g4x_fbc_fifo_size(G4X_WM_LEVEL_SR))
		wm_state->fbc_en = false;
	else if (level >= G4X_WM_LEVEL_HPLL &&
		 wm_state->hpll.fbc > g4x_fbc_fifo_size(G4X_WM_LEVEL_HPLL))
		wm_state->fbc_en = false;

	return 0;
}

static int g4x_compute_intermediate_wm(struct drm_device *dev,
				       struct intel_crtc *crtc,
				       struct intel_crtc_state *crtc_state)
{
	struct g4x_wm_state *intermediate = &crtc_state->wm.g4x.intermediate;
	const struct g4x_wm_state *optimal = &crtc_state->wm.g4x.optimal;
	const struct g4x_wm_state *active = &crtc->wm.active.g4x;
	enum plane_id plane_id;

	intermediate->cxsr = optimal->cxsr && active->cxsr &&
		!crtc_state->disable_cxsr;
	intermediate->hpll_en = optimal->hpll_en && active->hpll_en &&
		!crtc_state->disable_cxsr;
	intermediate->fbc_en = optimal->fbc_en && active->fbc_en;

	for_each_plane_id_on_crtc(crtc, plane_id) {
		intermediate->wm.plane[plane_id] =
			max(optimal->wm.plane[plane_id],
			    active->wm.plane[plane_id]);

		WARN_ON(intermediate->wm.plane[plane_id] >
			g4x_plane_fifo_size(plane_id, G4X_WM_LEVEL_NORMAL));
	}

	intermediate->sr.plane = max(optimal->sr.plane,
				     active->sr.plane);
	intermediate->sr.cursor = max(optimal->sr.cursor,
				      active->sr.cursor);
	intermediate->sr.fbc = max(optimal->sr.fbc,
				   active->sr.fbc);

	intermediate->hpll.plane = max(optimal->hpll.plane,
				       active->hpll.plane);
	intermediate->hpll.cursor = max(optimal->hpll.cursor,
					active->hpll.cursor);
	intermediate->hpll.fbc = max(optimal->hpll.fbc,
				     active->hpll.fbc);

	WARN_ON((intermediate->sr.plane >
		 g4x_plane_fifo_size(PLANE_PRIMARY, G4X_WM_LEVEL_SR) ||
		 intermediate->sr.cursor >
		 g4x_plane_fifo_size(PLANE_CURSOR, G4X_WM_LEVEL_SR)) &&
		intermediate->cxsr);
	WARN_ON((intermediate->sr.plane >
		 g4x_plane_fifo_size(PLANE_PRIMARY, G4X_WM_LEVEL_HPLL) ||
		 intermediate->sr.cursor >
		 g4x_plane_fifo_size(PLANE_CURSOR, G4X_WM_LEVEL_HPLL)) &&
		intermediate->hpll_en);

	WARN_ON(intermediate->sr.fbc > g4x_fbc_fifo_size(1) &&
		intermediate->fbc_en && intermediate->cxsr);
	WARN_ON(intermediate->hpll.fbc > g4x_fbc_fifo_size(2) &&
		intermediate->fbc_en && intermediate->hpll_en);

	/*
	 * If our intermediate WM are identical to the final WM, then we can
	 * omit the post-vblank programming; only update if it's different.
	 */
	if (memcmp(intermediate, optimal, sizeof(*intermediate)) != 0)
		crtc_state->wm.need_postvbl_update = true;

	return 0;
}

static void g4x_merge_wm(struct drm_i915_private *dev_priv,
			 struct g4x_wm_values *wm)
{
	struct intel_crtc *crtc;
	int num_active_crtcs = 0;

	wm->cxsr = true;
	wm->hpll_en = true;
	wm->fbc_en = true;

	for_each_intel_crtc(&dev_priv->drm, crtc) {
		const struct g4x_wm_state *wm_state = &crtc->wm.active.g4x;

		if (!crtc->active)
			continue;

		if (!wm_state->cxsr)
			wm->cxsr = false;
		if (!wm_state->hpll_en)
			wm->hpll_en = false;
		if (!wm_state->fbc_en)
			wm->fbc_en = false;

		num_active_crtcs++;
	}

	if (num_active_crtcs != 1) {
		wm->cxsr = false;
		wm->hpll_en = false;
		wm->fbc_en = false;
	}

	for_each_intel_crtc(&dev_priv->drm, crtc) {
		const struct g4x_wm_state *wm_state = &crtc->wm.active.g4x;
		enum pipe pipe = crtc->pipe;

		wm->pipe[pipe] = wm_state->wm;
		if (crtc->active && wm->cxsr)
			wm->sr = wm_state->sr;
		if (crtc->active && wm->hpll_en)
			wm->hpll = wm_state->hpll;
	}
}

static void g4x_program_watermarks(struct drm_i915_private *dev_priv)
{
	struct g4x_wm_values *old_wm = &dev_priv->wm.g4x;
	struct g4x_wm_values new_wm = {};

	g4x_merge_wm(dev_priv, &new_wm);

	if (memcmp(old_wm, &new_wm, sizeof(new_wm)) == 0)
		return;

	if (is_disabling(old_wm->cxsr, new_wm.cxsr, true))
		_intel_set_memory_cxsr(dev_priv, false);

	g4x_write_wm_values(dev_priv, &new_wm);

	if (is_enabling(old_wm->cxsr, new_wm.cxsr, true))
		_intel_set_memory_cxsr(dev_priv, true);

	*old_wm = new_wm;
}

static void g4x_initial_watermarks(struct intel_atomic_state *state,
				   struct intel_crtc_state *crtc_state)
{
	struct drm_i915_private *dev_priv = to_i915(crtc_state->base.crtc->dev);
	struct intel_crtc *crtc = to_intel_crtc(crtc_state->base.crtc);

	mutex_lock(&dev_priv->wm.wm_mutex);
	crtc->wm.active.g4x = crtc_state->wm.g4x.intermediate;
	g4x_program_watermarks(dev_priv);
	mutex_unlock(&dev_priv->wm.wm_mutex);
}

static void g4x_optimize_watermarks(struct intel_atomic_state *state,
				    struct intel_crtc_state *crtc_state)
{
	struct drm_i915_private *dev_priv = to_i915(crtc_state->base.crtc->dev);
	struct intel_crtc *intel_crtc = to_intel_crtc(crtc_state->base.crtc);

	if (!crtc_state->wm.need_postvbl_update)
		return;

	mutex_lock(&dev_priv->wm.wm_mutex);
	intel_crtc->wm.active.g4x = crtc_state->wm.g4x.optimal;
	g4x_program_watermarks(dev_priv);
	mutex_unlock(&dev_priv->wm.wm_mutex);
}

1541 1542
/* latency must be in 0.1us units. */
static unsigned int vlv_wm_method2(unsigned int pixel_rate,
1543 1544
				   unsigned int htotal,
				   unsigned int width,
1545
				   unsigned int cpp,
1546 1547 1548 1549
				   unsigned int latency)
{
	unsigned int ret;

1550 1551
	ret = intel_wm_method2(pixel_rate, htotal,
			       width, cpp, latency);
1552 1553 1554 1555 1556
	ret = DIV_ROUND_UP(ret, 64);

	return ret;
}

1557
static void vlv_setup_wm_latency(struct drm_i915_private *dev_priv)
1558 1559 1560 1561
{
	/* all latencies in usec */
	dev_priv->wm.pri_latency[VLV_WM_LEVEL_PM2] = 3;

1562 1563
	dev_priv->wm.max_level = VLV_WM_LEVEL_PM2;

1564 1565 1566
	if (IS_CHERRYVIEW(dev_priv)) {
		dev_priv->wm.pri_latency[VLV_WM_LEVEL_PM5] = 12;
		dev_priv->wm.pri_latency[VLV_WM_LEVEL_DDR_DVFS] = 33;
1567 1568

		dev_priv->wm.max_level = VLV_WM_LEVEL_DDR_DVFS;
1569 1570 1571
	}
}

1572 1573
static uint16_t vlv_compute_wm_level(const struct intel_crtc_state *crtc_state,
				     const struct intel_plane_state *plane_state,
1574 1575
				     int level)
{
1576
	struct intel_plane *plane = to_intel_plane(plane_state->base.plane);
1577
	struct drm_i915_private *dev_priv = to_i915(plane->base.dev);
1578 1579
	const struct drm_display_mode *adjusted_mode =
		&crtc_state->base.adjusted_mode;
1580
	int clock, htotal, cpp, width, wm;
1581 1582 1583 1584

	if (dev_priv->wm.pri_latency[level] == 0)
		return USHRT_MAX;

1585
	if (!intel_wm_plane_visible(crtc_state, plane_state))
1586 1587
		return 0;

1588
	cpp = plane_state->base.fb->format->cpp[0];
1589 1590 1591
	clock = adjusted_mode->crtc_clock;
	htotal = adjusted_mode->crtc_htotal;
	width = crtc_state->pipe_src_w;
1592

1593
	if (plane->id == PLANE_CURSOR) {
1594 1595 1596 1597 1598 1599 1600 1601
		/*
		 * FIXME the formula gives values that are
		 * too big for the cursor FIFO, and hence we
		 * would never be able to use cursors. For
		 * now just hardcode the watermark.
		 */
		wm = 63;
	} else {
1602
		wm = vlv_wm_method2(clock, htotal, width, cpp,
1603 1604 1605 1606 1607 1608
				    dev_priv->wm.pri_latency[level] * 10);
	}

	return min_t(int, wm, USHRT_MAX);
}

1609 1610 1611 1612 1613 1614
static bool vlv_need_sprite0_fifo_workaround(unsigned int active_planes)
{
	return (active_planes & (BIT(PLANE_SPRITE0) |
				 BIT(PLANE_SPRITE1))) == BIT(PLANE_SPRITE1);
}

1615
static int vlv_compute_fifo(struct intel_crtc_state *crtc_state)
1616
{
1617
	struct intel_crtc *crtc = to_intel_crtc(crtc_state->base.crtc);
1618
	const struct g4x_pipe_wm *raw =
1619
		&crtc_state->wm.vlv.raw[VLV_WM_LEVEL_PM2];
1620
	struct vlv_fifo_state *fifo_state = &crtc_state->wm.vlv.fifo_state;
1621 1622 1623
	unsigned int active_planes = crtc_state->active_planes & ~BIT(PLANE_CURSOR);
	int num_active_planes = hweight32(active_planes);
	const int fifo_size = 511;
1624
	int fifo_extra, fifo_left = fifo_size;
1625
	int sprite0_fifo_extra = 0;
1626 1627
	unsigned int total_rate;
	enum plane_id plane_id;
1628

1629 1630 1631 1632 1633 1634 1635 1636 1637 1638 1639
	/*
	 * When enabling sprite0 after sprite1 has already been enabled
	 * we tend to get an underrun unless sprite0 already has some
	 * FIFO space allcoated. Hence we always allocate at least one
	 * cacheline for sprite0 whenever sprite1 is enabled.
	 *
	 * All other plane enable sequences appear immune to this problem.
	 */
	if (vlv_need_sprite0_fifo_workaround(active_planes))
		sprite0_fifo_extra = 1;

1640 1641
	total_rate = raw->plane[PLANE_PRIMARY] +
		raw->plane[PLANE_SPRITE0] +
1642 1643
		raw->plane[PLANE_SPRITE1] +
		sprite0_fifo_extra;
1644

1645 1646
	if (total_rate > fifo_size)
		return -EINVAL;
1647

1648 1649
	if (total_rate == 0)
		total_rate = 1;
1650

1651
	for_each_plane_id_on_crtc(crtc, plane_id) {
1652 1653
		unsigned int rate;

1654 1655
		if ((active_planes & BIT(plane_id)) == 0) {
			fifo_state->plane[plane_id] = 0;
1656 1657 1658
			continue;
		}

1659 1660 1661
		rate = raw->plane[plane_id];
		fifo_state->plane[plane_id] = fifo_size * rate / total_rate;
		fifo_left -= fifo_state->plane[plane_id];
1662 1663
	}

1664 1665 1666
	fifo_state->plane[PLANE_SPRITE0] += sprite0_fifo_extra;
	fifo_left -= sprite0_fifo_extra;

1667 1668 1669
	fifo_state->plane[PLANE_CURSOR] = 63;

	fifo_extra = DIV_ROUND_UP(fifo_left, num_active_planes ?: 1);
1670 1671

	/* spread the remainder evenly */
1672
	for_each_plane_id_on_crtc(crtc, plane_id) {
1673 1674 1675 1676 1677
		int plane_extra;

		if (fifo_left == 0)
			break;

1678
		if ((active_planes & BIT(plane_id)) == 0)
1679 1680 1681
			continue;

		plane_extra = min(fifo_extra, fifo_left);
1682
		fifo_state->plane[plane_id] += plane_extra;
1683 1684 1685
		fifo_left -= plane_extra;
	}

1686 1687 1688 1689 1690 1691 1692 1693 1694
	WARN_ON(active_planes != 0 && fifo_left != 0);

	/* give it all to the first plane if none are active */
	if (active_planes == 0) {
		WARN_ON(fifo_left != fifo_size);
		fifo_state->plane[PLANE_PRIMARY] = fifo_left;
	}

	return 0;
1695 1696
}

1697 1698 1699 1700 1701 1702
/* mark all levels starting from 'level' as invalid */
static void vlv_invalidate_wms(struct intel_crtc *crtc,
			       struct vlv_wm_state *wm_state, int level)
{
	struct drm_i915_private *dev_priv = to_i915(crtc->base.dev);

1703
	for (; level < intel_wm_num_levels(dev_priv); level++) {
1704 1705 1706 1707 1708 1709 1710 1711 1712 1713
		enum plane_id plane_id;

		for_each_plane_id_on_crtc(crtc, plane_id)
			wm_state->wm[level].plane[plane_id] = USHRT_MAX;

		wm_state->sr[level].cursor = USHRT_MAX;
		wm_state->sr[level].plane = USHRT_MAX;
	}
}

1714 1715 1716 1717 1718 1719 1720 1721
static u16 vlv_invert_wm_value(u16 wm, u16 fifo_size)
{
	if (wm > fifo_size)
		return USHRT_MAX;
	else
		return fifo_size - wm;
}

1722 1723 1724 1725
/*
 * Starting from 'level' set all higher
 * levels to 'value' in the "raw" watermarks.
 */
1726
static bool vlv_raw_plane_wm_set(struct intel_crtc_state *crtc_state,
1727
				 int level, enum plane_id plane_id, u16 value)
1728
{
1729
	struct drm_i915_private *dev_priv = to_i915(crtc_state->base.crtc->dev);
1730
	int num_levels = intel_wm_num_levels(dev_priv);
1731
	bool dirty = false;
1732

1733
	for (; level < num_levels; level++) {
1734
		struct g4x_pipe_wm *raw = &crtc_state->wm.vlv.raw[level];
1735

1736
		dirty |= raw->plane[plane_id] != value;
1737
		raw->plane[plane_id] = value;
1738
	}
1739 1740

	return dirty;
1741 1742
}

1743 1744
static bool vlv_raw_plane_wm_compute(struct intel_crtc_state *crtc_state,
				     const struct intel_plane_state *plane_state)
1745
{
1746 1747
	struct intel_plane *plane = to_intel_plane(plane_state->base.plane);
	enum plane_id plane_id = plane->id;
1748
	int num_levels = intel_wm_num_levels(to_i915(plane->base.dev));
1749
	int level;
1750
	bool dirty = false;
1751

1752
	if (!intel_wm_plane_visible(crtc_state, plane_state)) {
1753 1754
		dirty |= vlv_raw_plane_wm_set(crtc_state, 0, plane_id, 0);
		goto out;
1755
	}
1756

1757
	for (level = 0; level < num_levels; level++) {
1758
		struct g4x_pipe_wm *raw = &crtc_state->wm.vlv.raw[level];
1759 1760
		int wm = vlv_compute_wm_level(crtc_state, plane_state, level);
		int max_wm = plane_id == PLANE_CURSOR ? 63 : 511;
1761

1762 1763
		if (wm > max_wm)
			break;
1764

1765
		dirty |= raw->plane[plane_id] != wm;
1766 1767
		raw->plane[plane_id] = wm;
	}
1768

1769
	/* mark all higher levels as invalid */
1770
	dirty |= vlv_raw_plane_wm_set(crtc_state, level, plane_id, USHRT_MAX);
1771

1772 1773
out:
	if (dirty)
1774
		DRM_DEBUG_KMS("%s watermarks: PM2=%d, PM5=%d, DDR DVFS=%d\n",
1775 1776 1777 1778 1779 1780
			      plane->base.name,
			      crtc_state->wm.vlv.raw[VLV_WM_LEVEL_PM2].plane[plane_id],
			      crtc_state->wm.vlv.raw[VLV_WM_LEVEL_PM5].plane[plane_id],
			      crtc_state->wm.vlv.raw[VLV_WM_LEVEL_DDR_DVFS].plane[plane_id]);

	return dirty;
1781
}
1782

1783 1784
static bool vlv_raw_plane_wm_is_valid(const struct intel_crtc_state *crtc_state,
				      enum plane_id plane_id, int level)
1785
{
1786
	const struct g4x_pipe_wm *raw =
1787 1788 1789
		&crtc_state->wm.vlv.raw[level];
	const struct vlv_fifo_state *fifo_state =
		&crtc_state->wm.vlv.fifo_state;
1790

1791 1792
	return raw->plane[plane_id] <= fifo_state->plane[plane_id];
}
1793

1794
static bool vlv_raw_crtc_wm_is_valid(const struct intel_crtc_state *crtc_state, int level)
1795
{
1796 1797 1798 1799
	return vlv_raw_plane_wm_is_valid(crtc_state, PLANE_PRIMARY, level) &&
		vlv_raw_plane_wm_is_valid(crtc_state, PLANE_SPRITE0, level) &&
		vlv_raw_plane_wm_is_valid(crtc_state, PLANE_SPRITE1, level) &&
		vlv_raw_plane_wm_is_valid(crtc_state, PLANE_CURSOR, level);
1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812
}

static int vlv_compute_pipe_wm(struct intel_crtc_state *crtc_state)
{
	struct intel_crtc *crtc = to_intel_crtc(crtc_state->base.crtc);
	struct drm_i915_private *dev_priv = to_i915(crtc->base.dev);
	struct intel_atomic_state *state =
		to_intel_atomic_state(crtc_state->base.state);
	struct vlv_wm_state *wm_state = &crtc_state->wm.vlv.optimal;
	const struct vlv_fifo_state *fifo_state =
		&crtc_state->wm.vlv.fifo_state;
	int num_active_planes = hweight32(crtc_state->active_planes &
					  ~BIT(PLANE_CURSOR));
1813
	bool needs_modeset = drm_atomic_crtc_needs_modeset(&crtc_state->base);
1814 1815 1816 1817
	struct intel_plane_state *plane_state;
	struct intel_plane *plane;
	enum plane_id plane_id;
	int level, ret, i;
1818
	unsigned int dirty = 0;
1819 1820 1821 1822 1823 1824 1825 1826

	for_each_intel_plane_in_state(state, plane, plane_state, i) {
		const struct intel_plane_state *old_plane_state =
			to_intel_plane_state(plane->base.state);

		if (plane_state->base.crtc != &crtc->base &&
		    old_plane_state->base.crtc != &crtc->base)
			continue;
1827

1828
		if (vlv_raw_plane_wm_compute(crtc_state, plane_state))
1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858
			dirty |= BIT(plane->id);
	}

	/*
	 * DSPARB registers may have been reset due to the
	 * power well being turned off. Make sure we restore
	 * them to a consistent state even if no primary/sprite
	 * planes are initially active.
	 */
	if (needs_modeset)
		crtc_state->fifo_changed = true;

	if (!dirty)
		return 0;

	/* cursor changes don't warrant a FIFO recompute */
	if (dirty & ~BIT(PLANE_CURSOR)) {
		const struct intel_crtc_state *old_crtc_state =
			to_intel_crtc_state(crtc->base.state);
		const struct vlv_fifo_state *old_fifo_state =
			&old_crtc_state->wm.vlv.fifo_state;

		ret = vlv_compute_fifo(crtc_state);
		if (ret)
			return ret;

		if (needs_modeset ||
		    memcmp(old_fifo_state, fifo_state,
			   sizeof(*fifo_state)) != 0)
			crtc_state->fifo_changed = true;
1859
	}
1860

1861
	/* initially allow all levels */
1862
	wm_state->num_levels = intel_wm_num_levels(dev_priv);
1863 1864 1865 1866 1867
	/*
	 * Note that enabling cxsr with no primary/sprite planes
	 * enabled can wedge the pipe. Hence we only allow cxsr
	 * with exactly one enabled primary/sprite plane.
	 */
1868
	wm_state->cxsr = crtc->pipe != PIPE_C && num_active_planes == 1;
1869

1870
	for (level = 0; level < wm_state->num_levels; level++) {
1871
		const struct g4x_pipe_wm *raw = &crtc_state->wm.vlv.raw[level];
1872
		const int sr_fifo_size = INTEL_INFO(dev_priv)->num_pipes * 512 - 1;
1873

1874
		if (!vlv_raw_crtc_wm_is_valid(crtc_state, level))
1875
			break;
1876

1877 1878 1879 1880 1881 1882 1883 1884
		for_each_plane_id_on_crtc(crtc, plane_id) {
			wm_state->wm[level].plane[plane_id] =
				vlv_invert_wm_value(raw->plane[plane_id],
						    fifo_state->plane[plane_id]);
		}

		wm_state->sr[level].plane =
			vlv_invert_wm_value(max3(raw->plane[PLANE_PRIMARY],
1885
						 raw->plane[PLANE_SPRITE0],
1886 1887
						 raw->plane[PLANE_SPRITE1]),
					    sr_fifo_size);
1888

1889 1890 1891
		wm_state->sr[level].cursor =
			vlv_invert_wm_value(raw->plane[PLANE_CURSOR],
					    63);
1892 1893
	}

1894 1895 1896 1897 1898 1899 1900 1901 1902 1903
	if (level == 0)
		return -EINVAL;

	/* limit to only levels we can actually handle */
	wm_state->num_levels = level;

	/* invalidate the higher levels */
	vlv_invalidate_wms(crtc, wm_state, level);

	return 0;
1904 1905
}

1906 1907 1908
#define VLV_FIFO(plane, value) \
	(((value) << DSPARB_ ## plane ## _SHIFT_VLV) & DSPARB_ ## plane ## _MASK_VLV)

1909 1910
static void vlv_atomic_update_fifo(struct intel_atomic_state *state,
				   struct intel_crtc_state *crtc_state)
1911
{
1912
	struct intel_crtc *crtc = to_intel_crtc(crtc_state->base.crtc);
1913
	struct drm_i915_private *dev_priv = to_i915(crtc->base.dev);
1914 1915
	const struct vlv_fifo_state *fifo_state =
		&crtc_state->wm.vlv.fifo_state;
1916
	int sprite0_start, sprite1_start, fifo_size;
1917

1918 1919 1920
	if (!crtc_state->fifo_changed)
		return;

1921 1922 1923
	sprite0_start = fifo_state->plane[PLANE_PRIMARY];
	sprite1_start = fifo_state->plane[PLANE_SPRITE0] + sprite0_start;
	fifo_size = fifo_state->plane[PLANE_SPRITE1] + sprite1_start;
1924

1925 1926
	WARN_ON(fifo_state->plane[PLANE_CURSOR] != 63);
	WARN_ON(fifo_size != 511);
1927

1928 1929
	trace_vlv_fifo_size(crtc, sprite0_start, sprite1_start, fifo_size);

1930 1931 1932 1933 1934 1935 1936 1937 1938 1939
	/*
	 * uncore.lock serves a double purpose here. It allows us to
	 * use the less expensive I915_{READ,WRITE}_FW() functions, and
	 * it protects the DSPARB registers from getting clobbered by
	 * parallel updates from multiple pipes.
	 *
	 * intel_pipe_update_start() has already disabled interrupts
	 * for us, so a plain spin_lock() is sufficient here.
	 */
	spin_lock(&dev_priv->uncore.lock);
1940

1941 1942 1943
	switch (crtc->pipe) {
		uint32_t dsparb, dsparb2, dsparb3;
	case PIPE_A:
1944 1945
		dsparb = I915_READ_FW(DSPARB);
		dsparb2 = I915_READ_FW(DSPARB2);
1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956

		dsparb &= ~(VLV_FIFO(SPRITEA, 0xff) |
			    VLV_FIFO(SPRITEB, 0xff));
		dsparb |= (VLV_FIFO(SPRITEA, sprite0_start) |
			   VLV_FIFO(SPRITEB, sprite1_start));

		dsparb2 &= ~(VLV_FIFO(SPRITEA_HI, 0x1) |
			     VLV_FIFO(SPRITEB_HI, 0x1));
		dsparb2 |= (VLV_FIFO(SPRITEA_HI, sprite0_start >> 8) |
			   VLV_FIFO(SPRITEB_HI, sprite1_start >> 8));

1957 1958
		I915_WRITE_FW(DSPARB, dsparb);
		I915_WRITE_FW(DSPARB2, dsparb2);
1959 1960
		break;
	case PIPE_B:
1961 1962
		dsparb = I915_READ_FW(DSPARB);
		dsparb2 = I915_READ_FW(DSPARB2);
1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973

		dsparb &= ~(VLV_FIFO(SPRITEC, 0xff) |
			    VLV_FIFO(SPRITED, 0xff));
		dsparb |= (VLV_FIFO(SPRITEC, sprite0_start) |
			   VLV_FIFO(SPRITED, sprite1_start));

		dsparb2 &= ~(VLV_FIFO(SPRITEC_HI, 0xff) |
			     VLV_FIFO(SPRITED_HI, 0xff));
		dsparb2 |= (VLV_FIFO(SPRITEC_HI, sprite0_start >> 8) |
			   VLV_FIFO(SPRITED_HI, sprite1_start >> 8));

1974 1975
		I915_WRITE_FW(DSPARB, dsparb);
		I915_WRITE_FW(DSPARB2, dsparb2);
1976 1977
		break;
	case PIPE_C:
1978 1979
		dsparb3 = I915_READ_FW(DSPARB3);
		dsparb2 = I915_READ_FW(DSPARB2);
1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990

		dsparb3 &= ~(VLV_FIFO(SPRITEE, 0xff) |
			     VLV_FIFO(SPRITEF, 0xff));
		dsparb3 |= (VLV_FIFO(SPRITEE, sprite0_start) |
			    VLV_FIFO(SPRITEF, sprite1_start));

		dsparb2 &= ~(VLV_FIFO(SPRITEE_HI, 0xff) |
			     VLV_FIFO(SPRITEF_HI, 0xff));
		dsparb2 |= (VLV_FIFO(SPRITEE_HI, sprite0_start >> 8) |
			   VLV_FIFO(SPRITEF_HI, sprite1_start >> 8));

1991 1992
		I915_WRITE_FW(DSPARB3, dsparb3);
		I915_WRITE_FW(DSPARB2, dsparb2);
1993 1994 1995 1996
		break;
	default:
		break;
	}
1997

1998
	POSTING_READ_FW(DSPARB);
1999

2000
	spin_unlock(&dev_priv->uncore.lock);
2001 2002 2003 2004
}

#undef VLV_FIFO

2005 2006 2007 2008 2009 2010 2011 2012 2013 2014
static int vlv_compute_intermediate_wm(struct drm_device *dev,
				       struct intel_crtc *crtc,
				       struct intel_crtc_state *crtc_state)
{
	struct vlv_wm_state *intermediate = &crtc_state->wm.vlv.intermediate;
	const struct vlv_wm_state *optimal = &crtc_state->wm.vlv.optimal;
	const struct vlv_wm_state *active = &crtc->wm.active.vlv;
	int level;

	intermediate->num_levels = min(optimal->num_levels, active->num_levels);
2015 2016
	intermediate->cxsr = optimal->cxsr && active->cxsr &&
		!crtc_state->disable_cxsr;
2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038

	for (level = 0; level < intermediate->num_levels; level++) {
		enum plane_id plane_id;

		for_each_plane_id_on_crtc(crtc, plane_id) {
			intermediate->wm[level].plane[plane_id] =
				min(optimal->wm[level].plane[plane_id],
				    active->wm[level].plane[plane_id]);
		}

		intermediate->sr[level].plane = min(optimal->sr[level].plane,
						    active->sr[level].plane);
		intermediate->sr[level].cursor = min(optimal->sr[level].cursor,
						     active->sr[level].cursor);
	}

	vlv_invalidate_wms(crtc, intermediate, level);

	/*
	 * If our intermediate WM are identical to the final WM, then we can
	 * omit the post-vblank programming; only update if it's different.
	 */
2039 2040
	if (memcmp(intermediate, optimal, sizeof(*intermediate)) != 0)
		crtc_state->wm.need_postvbl_update = true;
2041 2042 2043 2044

	return 0;
}

2045
static void vlv_merge_wm(struct drm_i915_private *dev_priv,
2046 2047 2048 2049 2050
			 struct vlv_wm_values *wm)
{
	struct intel_crtc *crtc;
	int num_active_crtcs = 0;

2051
	wm->level = dev_priv->wm.max_level;
2052 2053
	wm->cxsr = true;

2054
	for_each_intel_crtc(&dev_priv->drm, crtc) {
2055
		const struct vlv_wm_state *wm_state = &crtc->wm.active.vlv;
2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069

		if (!crtc->active)
			continue;

		if (!wm_state->cxsr)
			wm->cxsr = false;

		num_active_crtcs++;
		wm->level = min_t(int, wm->level, wm_state->num_levels - 1);
	}

	if (num_active_crtcs != 1)
		wm->cxsr = false;

2070 2071 2072
	if (num_active_crtcs > 1)
		wm->level = VLV_WM_LEVEL_PM2;

2073
	for_each_intel_crtc(&dev_priv->drm, crtc) {
2074
		const struct vlv_wm_state *wm_state = &crtc->wm.active.vlv;
2075 2076 2077
		enum pipe pipe = crtc->pipe;

		wm->pipe[pipe] = wm_state->wm[wm->level];
2078
		if (crtc->active && wm->cxsr)
2079 2080
			wm->sr = wm_state->sr[wm->level];

2081 2082 2083 2084
		wm->ddl[pipe].plane[PLANE_PRIMARY] = DDL_PRECISION_HIGH | 2;
		wm->ddl[pipe].plane[PLANE_SPRITE0] = DDL_PRECISION_HIGH | 2;
		wm->ddl[pipe].plane[PLANE_SPRITE1] = DDL_PRECISION_HIGH | 2;
		wm->ddl[pipe].plane[PLANE_CURSOR] = DDL_PRECISION_HIGH | 2;
2085 2086 2087
	}
}

2088
static void vlv_program_watermarks(struct drm_i915_private *dev_priv)
2089
{
2090 2091
	struct vlv_wm_values *old_wm = &dev_priv->wm.vlv;
	struct vlv_wm_values new_wm = {};
2092

2093
	vlv_merge_wm(dev_priv, &new_wm);
2094

2095
	if (memcmp(old_wm, &new_wm, sizeof(new_wm)) == 0)
2096 2097
		return;

2098
	if (is_disabling(old_wm->level, new_wm.level, VLV_WM_LEVEL_DDR_DVFS))
2099 2100
		chv_set_memory_dvfs(dev_priv, false);

2101
	if (is_disabling(old_wm->level, new_wm.level, VLV_WM_LEVEL_PM5))
2102 2103
		chv_set_memory_pm5(dev_priv, false);

2104
	if (is_disabling(old_wm->cxsr, new_wm.cxsr, true))
2105
		_intel_set_memory_cxsr(dev_priv, false);
2106

2107
	vlv_write_wm_values(dev_priv, &new_wm);
2108

2109
	if (is_enabling(old_wm->cxsr, new_wm.cxsr, true))
2110
		_intel_set_memory_cxsr(dev_priv, true);
2111

2112
	if (is_enabling(old_wm->level, new_wm.level, VLV_WM_LEVEL_PM5))
2113 2114
		chv_set_memory_pm5(dev_priv, true);

2115
	if (is_enabling(old_wm->level, new_wm.level, VLV_WM_LEVEL_DDR_DVFS))
2116 2117
		chv_set_memory_dvfs(dev_priv, true);

2118
	*old_wm = new_wm;
2119 2120
}

2121 2122 2123 2124 2125 2126 2127
static void vlv_initial_watermarks(struct intel_atomic_state *state,
				   struct intel_crtc_state *crtc_state)
{
	struct drm_i915_private *dev_priv = to_i915(crtc_state->base.crtc->dev);
	struct intel_crtc *crtc = to_intel_crtc(crtc_state->base.crtc);

	mutex_lock(&dev_priv->wm.wm_mutex);
2128 2129 2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143
	crtc->wm.active.vlv = crtc_state->wm.vlv.intermediate;
	vlv_program_watermarks(dev_priv);
	mutex_unlock(&dev_priv->wm.wm_mutex);
}

static void vlv_optimize_watermarks(struct intel_atomic_state *state,
				    struct intel_crtc_state *crtc_state)
{
	struct drm_i915_private *dev_priv = to_i915(crtc_state->base.crtc->dev);
	struct intel_crtc *intel_crtc = to_intel_crtc(crtc_state->base.crtc);

	if (!crtc_state->wm.need_postvbl_update)
		return;

	mutex_lock(&dev_priv->wm.wm_mutex);
	intel_crtc->wm.active.vlv = crtc_state->wm.vlv.optimal;
2144 2145 2146 2147
	vlv_program_watermarks(dev_priv);
	mutex_unlock(&dev_priv->wm.wm_mutex);
}

2148
static void i965_update_wm(struct intel_crtc *unused_crtc)
2149
{
2150
	struct drm_i915_private *dev_priv = to_i915(unused_crtc->base.dev);
2151
	struct intel_crtc *crtc;
2152 2153
	int srwm = 1;
	int cursor_sr = 16;
2154
	bool cxsr_enabled;
2155 2156

	/* Calc sr entries for one plane configs */
2157
	crtc = single_enabled_crtc(dev_priv);
2158 2159 2160
	if (crtc) {
		/* self-refresh has much higher latency */
		static const int sr_latency_ns = 12000;
2161 2162 2163 2164
		const struct drm_display_mode *adjusted_mode =
			&crtc->config->base.adjusted_mode;
		const struct drm_framebuffer *fb =
			crtc->base.primary->state->fb;
2165
		int clock = adjusted_mode->crtc_clock;
2166
		int htotal = adjusted_mode->crtc_htotal;
2167
		int hdisplay = crtc->config->pipe_src_w;
2168
		int cpp = fb->format->cpp[0];
2169 2170
		int entries;

2171 2172
		entries = intel_wm_method2(clock, htotal,
					   hdisplay, cpp, sr_latency_ns / 100);
2173 2174 2175 2176 2177 2178 2179 2180
		entries = DIV_ROUND_UP(entries, I915_FIFO_LINE_SIZE);
		srwm = I965_FIFO_SIZE - entries;
		if (srwm < 0)
			srwm = 1;
		srwm &= 0x1ff;
		DRM_DEBUG_KMS("self-refresh entries: %d, wm: %d\n",
			      entries, srwm);

2181 2182 2183
		entries = intel_wm_method2(clock, htotal,
					   crtc->base.cursor->state->crtc_w, 4,
					   sr_latency_ns / 100);
2184
		entries = DIV_ROUND_UP(entries,
2185 2186
				       i965_cursor_wm_info.cacheline_size) +
			i965_cursor_wm_info.guard_size;
2187

2188
		cursor_sr = i965_cursor_wm_info.fifo_size - entries;
2189 2190 2191 2192 2193 2194
		if (cursor_sr > i965_cursor_wm_info.max_wm)
			cursor_sr = i965_cursor_wm_info.max_wm;

		DRM_DEBUG_KMS("self-refresh watermark: display plane %d "
			      "cursor %d\n", srwm, cursor_sr);

2195
		cxsr_enabled = true;
2196
	} else {
2197
		cxsr_enabled = false;
2198
		/* Turn off self refresh if both pipes are enabled */
2199
		intel_set_memory_cxsr(dev_priv, false);
2200 2201 2202 2203 2204 2205
	}

	DRM_DEBUG_KMS("Setting FIFO watermarks - A: 8, B: 8, C: 8, SR %d\n",
		      srwm);

	/* 965 has limitations... */
2206 2207 2208 2209 2210 2211
	I915_WRITE(DSPFW1, FW_WM(srwm, SR) |
		   FW_WM(8, CURSORB) |
		   FW_WM(8, PLANEB) |
		   FW_WM(8, PLANEA));
	I915_WRITE(DSPFW2, FW_WM(8, CURSORA) |
		   FW_WM(8, PLANEC_OLD));
2212
	/* update cursor SR watermark */
2213
	I915_WRITE(DSPFW3, FW_WM(cursor_sr, CURSOR_SR));
2214 2215 2216

	if (cxsr_enabled)
		intel_set_memory_cxsr(dev_priv, true);
2217 2218
}

2219 2220
#undef FW_WM

2221
static void i9xx_update_wm(struct intel_crtc *unused_crtc)
2222
{
2223
	struct drm_i915_private *dev_priv = to_i915(unused_crtc->base.dev);
2224 2225 2226 2227 2228 2229
	const struct intel_watermark_params *wm_info;
	uint32_t fwater_lo;
	uint32_t fwater_hi;
	int cwm, srwm = 1;
	int fifo_size;
	int planea_wm, planeb_wm;
2230
	struct intel_crtc *crtc, *enabled = NULL;
2231

2232
	if (IS_I945GM(dev_priv))
2233
		wm_info = &i945_wm_info;
2234
	else if (!IS_GEN2(dev_priv))
2235 2236
		wm_info = &i915_wm_info;
	else
2237
		wm_info = &i830_a_wm_info;
2238

2239
	fifo_size = dev_priv->display.get_fifo_size(dev_priv, 0);
2240
	crtc = intel_get_crtc_for_plane(dev_priv, 0);
2241 2242 2243 2244 2245 2246 2247
	if (intel_crtc_active(crtc)) {
		const struct drm_display_mode *adjusted_mode =
			&crtc->config->base.adjusted_mode;
		const struct drm_framebuffer *fb =
			crtc->base.primary->state->fb;
		int cpp;

2248
		if (IS_GEN2(dev_priv))
2249
			cpp = 4;
2250
		else
2251
			cpp = fb->format->cpp[0];
2252

2253
		planea_wm = intel_calculate_wm(adjusted_mode->crtc_clock,
2254
					       wm_info, fifo_size, cpp,
2255
					       pessimal_latency_ns);
2256
		enabled = crtc;
2257
	} else {
2258
		planea_wm = fifo_size - wm_info->guard_size;
2259 2260 2261 2262
		if (planea_wm > (long)wm_info->max_wm)
			planea_wm = wm_info->max_wm;
	}

2263
	if (IS_GEN2(dev_priv))
2264
		wm_info = &i830_bc_wm_info;
2265

2266
	fifo_size = dev_priv->display.get_fifo_size(dev_priv, 1);
2267
	crtc = intel_get_crtc_for_plane(dev_priv, 1);
2268 2269 2270 2271 2272 2273 2274
	if (intel_crtc_active(crtc)) {
		const struct drm_display_mode *adjusted_mode =
			&crtc->config->base.adjusted_mode;
		const struct drm_framebuffer *fb =
			crtc->base.primary->state->fb;
		int cpp;

2275
		if (IS_GEN2(dev_priv))
2276
			cpp = 4;
2277
		else
2278
			cpp = fb->format->cpp[0];
2279

2280
		planeb_wm = intel_calculate_wm(adjusted_mode->crtc_clock,
2281
					       wm_info, fifo_size, cpp,
2282
					       pessimal_latency_ns);
2283 2284 2285 2286
		if (enabled == NULL)
			enabled = crtc;
		else
			enabled = NULL;
2287
	} else {
2288
		planeb_wm = fifo_size - wm_info->guard_size;
2289 2290 2291
		if (planeb_wm > (long)wm_info->max_wm)
			planeb_wm = wm_info->max_wm;
	}
2292 2293 2294

	DRM_DEBUG_KMS("FIFO watermarks - A: %d, B: %d\n", planea_wm, planeb_wm);

2295
	if (IS_I915GM(dev_priv) && enabled) {
2296
		struct drm_i915_gem_object *obj;
2297

2298
		obj = intel_fb_obj(enabled->base.primary->state->fb);
2299 2300

		/* self-refresh seems busted with untiled */
2301
		if (!i915_gem_object_is_tiled(obj))
2302 2303 2304
			enabled = NULL;
	}

2305 2306 2307 2308 2309 2310
	/*
	 * Overlay gets an aggressive default since video jitter is bad.
	 */
	cwm = 2;

	/* Play safe and disable self-refresh before adjusting watermarks. */
2311
	intel_set_memory_cxsr(dev_priv, false);
2312 2313

	/* Calc sr entries for one plane configs */
2314
	if (HAS_FW_BLC(dev_priv) && enabled) {
2315 2316
		/* self-refresh has much higher latency */
		static const int sr_latency_ns = 6000;
2317 2318 2319 2320
		const struct drm_display_mode *adjusted_mode =
			&enabled->config->base.adjusted_mode;
		const struct drm_framebuffer *fb =
			enabled->base.primary->state->fb;
2321
		int clock = adjusted_mode->crtc_clock;
2322
		int htotal = adjusted_mode->crtc_htotal;
2323 2324
		int hdisplay = enabled->config->pipe_src_w;
		int cpp;
2325 2326
		int entries;

2327
		if (IS_I915GM(dev_priv) || IS_I945GM(dev_priv))
2328
			cpp = 4;
2329
		else
2330
			cpp = fb->format->cpp[0];
2331

2332 2333
		entries = intel_wm_method2(clock, htotal, hdisplay, cpp,
					   sr_latency_ns / 100);
2334 2335 2336 2337 2338 2339
		entries = DIV_ROUND_UP(entries, wm_info->cacheline_size);
		DRM_DEBUG_KMS("self-refresh entries: %d\n", entries);
		srwm = wm_info->fifo_size - entries;
		if (srwm < 0)
			srwm = 1;

2340
		if (IS_I945G(dev_priv) || IS_I945GM(dev_priv))
2341 2342
			I915_WRITE(FW_BLC_SELF,
				   FW_BLC_SELF_FIFO_MASK | (srwm & 0xff));
2343
		else
2344 2345 2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359
			I915_WRITE(FW_BLC_SELF, srwm & 0x3f);
	}

	DRM_DEBUG_KMS("Setting FIFO watermarks - A: %d, B: %d, C: %d, SR %d\n",
		      planea_wm, planeb_wm, cwm, srwm);

	fwater_lo = ((planeb_wm & 0x3f) << 16) | (planea_wm & 0x3f);
	fwater_hi = (cwm & 0x1f);

	/* Set request length to 8 cachelines per fetch */
	fwater_lo = fwater_lo | (1 << 24) | (1 << 8);
	fwater_hi = fwater_hi | (1 << 8);

	I915_WRITE(FW_BLC, fwater_lo);
	I915_WRITE(FW_BLC2, fwater_hi);

2360 2361
	if (enabled)
		intel_set_memory_cxsr(dev_priv, true);
2362 2363
}

2364
static void i845_update_wm(struct intel_crtc *unused_crtc)
2365
{
2366
	struct drm_i915_private *dev_priv = to_i915(unused_crtc->base.dev);
2367
	struct intel_crtc *crtc;
2368
	const struct drm_display_mode *adjusted_mode;
2369 2370 2371
	uint32_t fwater_lo;
	int planea_wm;

2372
	crtc = single_enabled_crtc(dev_priv);
2373 2374 2375
	if (crtc == NULL)
		return;

2376
	adjusted_mode = &crtc->config->base.adjusted_mode;
2377
	planea_wm = intel_calculate_wm(adjusted_mode->crtc_clock,
2378
				       &i845_wm_info,
2379
				       dev_priv->display.get_fifo_size(dev_priv, 0),
2380
				       4, pessimal_latency_ns);
2381 2382 2383 2384 2385 2386 2387 2388
	fwater_lo = I915_READ(FW_BLC) & ~0xfff;
	fwater_lo |= (3<<8) | planea_wm;

	DRM_DEBUG_KMS("Setting FIFO watermarks - A: %d\n", planea_wm);

	I915_WRITE(FW_BLC, fwater_lo);
}

2389
/* latency must be in 0.1us units. */
2390 2391 2392
static unsigned int ilk_wm_method1(unsigned int pixel_rate,
				   unsigned int cpp,
				   unsigned int latency)
2393
{
2394
	unsigned int ret;
2395

2396 2397
	ret = intel_wm_method1(pixel_rate, cpp, latency);
	ret = DIV_ROUND_UP(ret, 64) + 2;
2398 2399 2400 2401

	return ret;
}

2402
/* latency must be in 0.1us units. */
2403 2404 2405 2406 2407
static unsigned int ilk_wm_method2(unsigned int pixel_rate,
				   unsigned int htotal,
				   unsigned int width,
				   unsigned int cpp,
				   unsigned int latency)
2408
{
2409
	unsigned int ret;
2410

2411 2412
	ret = intel_wm_method2(pixel_rate, htotal,
			       width, cpp, latency);
2413
	ret = DIV_ROUND_UP(ret, 64) + 2;
2414

2415 2416 2417
	return ret;
}

2418
static uint32_t ilk_wm_fbc(uint32_t pri_val, uint32_t horiz_pixels,
2419
			   uint8_t cpp)
2420
{
2421 2422 2423 2424 2425 2426
	/*
	 * Neither of these should be possible since this function shouldn't be
	 * called if the CRTC is off or the plane is invisible.  But let's be
	 * extra paranoid to avoid a potential divide-by-zero if we screw up
	 * elsewhere in the driver.
	 */
2427
	if (WARN_ON(!cpp))
2428 2429 2430 2431
		return 0;
	if (WARN_ON(!horiz_pixels))
		return 0;

2432
	return DIV_ROUND_UP(pri_val * 64, horiz_pixels * cpp) + 2;
2433 2434
}

2435
struct ilk_wm_maximums {
2436 2437 2438 2439 2440 2441
	uint16_t pri;
	uint16_t spr;
	uint16_t cur;
	uint16_t fbc;
};

2442 2443 2444 2445
/*
 * For both WM_PIPE and WM_LP.
 * mem_value must be in 0.1us units.
 */
2446
static uint32_t ilk_compute_pri_wm(const struct intel_crtc_state *cstate,
2447
				   const struct intel_plane_state *pstate,
2448 2449
				   uint32_t mem_value,
				   bool is_lp)
2450
{
2451
	uint32_t method1, method2;
2452
	int cpp;
2453

2454
	if (!intel_wm_plane_visible(cstate, pstate))
2455 2456
		return 0;

2457
	cpp = pstate->base.fb->format->cpp[0];
2458

2459
	method1 = ilk_wm_method1(cstate->pixel_rate, cpp, mem_value);
2460 2461 2462 2463

	if (!is_lp)
		return method1;

2464
	method2 = ilk_wm_method2(cstate->pixel_rate,
2465
				 cstate->base.adjusted_mode.crtc_htotal,
2466
				 drm_rect_width(&pstate->base.dst),
2467
				 cpp, mem_value);
2468 2469

	return min(method1, method2);
2470 2471
}

2472 2473 2474 2475
/*
 * For both WM_PIPE and WM_LP.
 * mem_value must be in 0.1us units.
 */
2476
static uint32_t ilk_compute_spr_wm(const struct intel_crtc_state *cstate,
2477
				   const struct intel_plane_state *pstate,
2478 2479 2480
				   uint32_t mem_value)
{
	uint32_t method1, method2;
2481
	int cpp;
2482

2483
	if (!intel_wm_plane_visible(cstate, pstate))
2484 2485
		return 0;

2486
	cpp = pstate->base.fb->format->cpp[0];
2487

2488 2489
	method1 = ilk_wm_method1(cstate->pixel_rate, cpp, mem_value);
	method2 = ilk_wm_method2(cstate->pixel_rate,
2490
				 cstate->base.adjusted_mode.crtc_htotal,
2491
				 drm_rect_width(&pstate->base.dst),
2492
				 cpp, mem_value);
2493 2494 2495
	return min(method1, method2);
}

2496 2497 2498 2499
/*
 * For both WM_PIPE and WM_LP.
 * mem_value must be in 0.1us units.
 */
2500
static uint32_t ilk_compute_cur_wm(const struct intel_crtc_state *cstate,
2501
				   const struct intel_plane_state *pstate,
2502 2503
				   uint32_t mem_value)
{
2504 2505
	int cpp;

2506
	if (!intel_wm_plane_visible(cstate, pstate))
2507 2508
		return 0;

2509 2510
	cpp = pstate->base.fb->format->cpp[0];

2511
	return ilk_wm_method2(cstate->pixel_rate,
2512
			      cstate->base.adjusted_mode.crtc_htotal,
2513
			      pstate->base.crtc_w, cpp, mem_value);
2514 2515
}

2516
/* Only for WM_LP. */
2517
static uint32_t ilk_compute_fbc_wm(const struct intel_crtc_state *cstate,
2518
				   const struct intel_plane_state *pstate,
2519
				   uint32_t pri_val)
2520
{
2521
	int cpp;
2522

2523
	if (!intel_wm_plane_visible(cstate, pstate))
2524 2525
		return 0;

2526
	cpp = pstate->base.fb->format->cpp[0];
2527

2528
	return ilk_wm_fbc(pri_val, drm_rect_width(&pstate->base.dst), cpp);
2529 2530
}

2531 2532
static unsigned int
ilk_display_fifo_size(const struct drm_i915_private *dev_priv)
2533
{
2534
	if (INTEL_GEN(dev_priv) >= 8)
2535
		return 3072;
2536
	else if (INTEL_GEN(dev_priv) >= 7)
2537 2538 2539 2540 2541
		return 768;
	else
		return 512;
}

2542 2543 2544
static unsigned int
ilk_plane_wm_reg_max(const struct drm_i915_private *dev_priv,
		     int level, bool is_sprite)
2545
{
2546
	if (INTEL_GEN(dev_priv) >= 8)
2547 2548
		/* BDW primary/sprite plane watermarks */
		return level == 0 ? 255 : 2047;
2549
	else if (INTEL_GEN(dev_priv) >= 7)
2550 2551 2552 2553 2554 2555 2556 2557 2558 2559
		/* IVB/HSW primary/sprite plane watermarks */
		return level == 0 ? 127 : 1023;
	else if (!is_sprite)
		/* ILK/SNB primary plane watermarks */
		return level == 0 ? 127 : 511;
	else
		/* ILK/SNB sprite plane watermarks */
		return level == 0 ? 63 : 255;
}

2560 2561
static unsigned int
ilk_cursor_wm_reg_max(const struct drm_i915_private *dev_priv, int level)
2562
{
2563
	if (INTEL_GEN(dev_priv) >= 7)
2564 2565 2566 2567 2568
		return level == 0 ? 63 : 255;
	else
		return level == 0 ? 31 : 63;
}

2569
static unsigned int ilk_fbc_wm_reg_max(const struct drm_i915_private *dev_priv)
2570
{
2571
	if (INTEL_GEN(dev_priv) >= 8)
2572 2573 2574 2575 2576
		return 31;
	else
		return 15;
}

2577 2578 2579
/* Calculate the maximum primary/sprite plane watermark */
static unsigned int ilk_plane_wm_max(const struct drm_device *dev,
				     int level,
2580
				     const struct intel_wm_config *config,
2581 2582 2583
				     enum intel_ddb_partitioning ddb_partitioning,
				     bool is_sprite)
{
2584 2585
	struct drm_i915_private *dev_priv = to_i915(dev);
	unsigned int fifo_size = ilk_display_fifo_size(dev_priv);
2586 2587

	/* if sprites aren't enabled, sprites get nothing */
2588
	if (is_sprite && !config->sprites_enabled)
2589 2590 2591
		return 0;

	/* HSW allows LP1+ watermarks even with multiple pipes */
2592
	if (level == 0 || config->num_pipes_active > 1) {
2593
		fifo_size /= INTEL_INFO(dev_priv)->num_pipes;
2594 2595 2596 2597 2598 2599

		/*
		 * For some reason the non self refresh
		 * FIFO size is only half of the self
		 * refresh FIFO size on ILK/SNB.
		 */
2600
		if (INTEL_GEN(dev_priv) <= 6)
2601 2602 2603
			fifo_size /= 2;
	}

2604
	if (config->sprites_enabled) {
2605 2606 2607 2608 2609 2610 2611 2612 2613 2614 2615
		/* level 0 is always calculated with 1:1 split */
		if (level > 0 && ddb_partitioning == INTEL_DDB_PART_5_6) {
			if (is_sprite)
				fifo_size *= 5;
			fifo_size /= 6;
		} else {
			fifo_size /= 2;
		}
	}

	/* clamp to max that the registers can hold */
2616
	return min(fifo_size, ilk_plane_wm_reg_max(dev_priv, level, is_sprite));
2617 2618 2619 2620
}

/* Calculate the maximum cursor plane watermark */
static unsigned int ilk_cursor_wm_max(const struct drm_device *dev,
2621 2622
				      int level,
				      const struct intel_wm_config *config)
2623 2624
{
	/* HSW LP1+ watermarks w/ multiple pipes */
2625
	if (level > 0 && config->num_pipes_active > 1)
2626 2627 2628
		return 64;

	/* otherwise just report max that registers can hold */
2629
	return ilk_cursor_wm_reg_max(to_i915(dev), level);
2630 2631
}

2632
static void ilk_compute_wm_maximums(const struct drm_device *dev,
2633 2634 2635
				    int level,
				    const struct intel_wm_config *config,
				    enum intel_ddb_partitioning ddb_partitioning,
2636
				    struct ilk_wm_maximums *max)
2637
{
2638 2639 2640
	max->pri = ilk_plane_wm_max(dev, level, config, ddb_partitioning, false);
	max->spr = ilk_plane_wm_max(dev, level, config, ddb_partitioning, true);
	max->cur = ilk_cursor_wm_max(dev, level, config);
2641
	max->fbc = ilk_fbc_wm_reg_max(to_i915(dev));
2642 2643
}

2644
static void ilk_compute_wm_reg_maximums(const struct drm_i915_private *dev_priv,
2645 2646 2647
					int level,
					struct ilk_wm_maximums *max)
{
2648 2649 2650 2651
	max->pri = ilk_plane_wm_reg_max(dev_priv, level, false);
	max->spr = ilk_plane_wm_reg_max(dev_priv, level, true);
	max->cur = ilk_cursor_wm_reg_max(dev_priv, level);
	max->fbc = ilk_fbc_wm_reg_max(dev_priv);
2652 2653
}

2654
static bool ilk_validate_wm_level(int level,
2655
				  const struct ilk_wm_maximums *max,
2656
				  struct intel_wm_level *result)
2657 2658 2659 2660 2661 2662 2663 2664 2665 2666 2667 2668 2669 2670 2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682 2683 2684 2685 2686 2687 2688 2689 2690 2691 2692 2693 2694
{
	bool ret;

	/* already determined to be invalid? */
	if (!result->enable)
		return false;

	result->enable = result->pri_val <= max->pri &&
			 result->spr_val <= max->spr &&
			 result->cur_val <= max->cur;

	ret = result->enable;

	/*
	 * HACK until we can pre-compute everything,
	 * and thus fail gracefully if LP0 watermarks
	 * are exceeded...
	 */
	if (level == 0 && !result->enable) {
		if (result->pri_val > max->pri)
			DRM_DEBUG_KMS("Primary WM%d too large %u (max %u)\n",
				      level, result->pri_val, max->pri);
		if (result->spr_val > max->spr)
			DRM_DEBUG_KMS("Sprite WM%d too large %u (max %u)\n",
				      level, result->spr_val, max->spr);
		if (result->cur_val > max->cur)
			DRM_DEBUG_KMS("Cursor WM%d too large %u (max %u)\n",
				      level, result->cur_val, max->cur);

		result->pri_val = min_t(uint32_t, result->pri_val, max->pri);
		result->spr_val = min_t(uint32_t, result->spr_val, max->spr);
		result->cur_val = min_t(uint32_t, result->cur_val, max->cur);
		result->enable = true;
	}

	return ret;
}

2695
static void ilk_compute_wm_level(const struct drm_i915_private *dev_priv,
2696
				 const struct intel_crtc *intel_crtc,
2697
				 int level,
2698
				 struct intel_crtc_state *cstate,
2699 2700 2701
				 struct intel_plane_state *pristate,
				 struct intel_plane_state *sprstate,
				 struct intel_plane_state *curstate,
2702
				 struct intel_wm_level *result)
2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714
{
	uint16_t pri_latency = dev_priv->wm.pri_latency[level];
	uint16_t spr_latency = dev_priv->wm.spr_latency[level];
	uint16_t cur_latency = dev_priv->wm.cur_latency[level];

	/* WM1+ latency values stored in 0.5us units */
	if (level > 0) {
		pri_latency *= 5;
		spr_latency *= 5;
		cur_latency *= 5;
	}

2715 2716 2717 2718 2719 2720 2721 2722 2723 2724 2725 2726
	if (pristate) {
		result->pri_val = ilk_compute_pri_wm(cstate, pristate,
						     pri_latency, level);
		result->fbc_val = ilk_compute_fbc_wm(cstate, pristate, result->pri_val);
	}

	if (sprstate)
		result->spr_val = ilk_compute_spr_wm(cstate, sprstate, spr_latency);

	if (curstate)
		result->cur_val = ilk_compute_cur_wm(cstate, curstate, cur_latency);

2727 2728 2729
	result->enable = true;
}

2730
static uint32_t
2731
hsw_compute_linetime_wm(const struct intel_crtc_state *cstate)
2732
{
2733 2734
	const struct intel_atomic_state *intel_state =
		to_intel_atomic_state(cstate->base.state);
2735 2736
	const struct drm_display_mode *adjusted_mode =
		&cstate->base.adjusted_mode;
2737
	u32 linetime, ips_linetime;
2738

2739 2740 2741 2742
	if (!cstate->base.active)
		return 0;
	if (WARN_ON(adjusted_mode->crtc_clock == 0))
		return 0;
2743
	if (WARN_ON(intel_state->cdclk.logical.cdclk == 0))
2744
		return 0;
2745

2746 2747 2748
	/* The WM are computed with base on how long it takes to fill a single
	 * row at the given clock rate, multiplied by 8.
	 * */
2749 2750 2751
	linetime = DIV_ROUND_CLOSEST(adjusted_mode->crtc_htotal * 1000 * 8,
				     adjusted_mode->crtc_clock);
	ips_linetime = DIV_ROUND_CLOSEST(adjusted_mode->crtc_htotal * 1000 * 8,
2752
					 intel_state->cdclk.logical.cdclk);
2753

2754 2755
	return PIPE_WM_LINETIME_IPS_LINETIME(ips_linetime) |
	       PIPE_WM_LINETIME_TIME(linetime);
2756 2757
}

2758 2759
static void intel_read_wm_latency(struct drm_i915_private *dev_priv,
				  uint16_t wm[8])
2760
{
2761
	if (IS_GEN9(dev_priv)) {
2762
		uint32_t val;
2763
		int ret, i;
2764
		int level, max_level = ilk_wm_max_level(dev_priv);
2765 2766 2767 2768 2769 2770 2771 2772 2773 2774 2775 2776 2777 2778 2779 2780 2781 2782 2783 2784 2785 2786 2787 2788 2789 2790 2791 2792 2793 2794 2795 2796 2797 2798 2799 2800 2801 2802 2803 2804 2805 2806

		/* read the first set of memory latencies[0:3] */
		val = 0; /* data0 to be programmed to 0 for first set */
		mutex_lock(&dev_priv->rps.hw_lock);
		ret = sandybridge_pcode_read(dev_priv,
					     GEN9_PCODE_READ_MEM_LATENCY,
					     &val);
		mutex_unlock(&dev_priv->rps.hw_lock);

		if (ret) {
			DRM_ERROR("SKL Mailbox read error = %d\n", ret);
			return;
		}

		wm[0] = val & GEN9_MEM_LATENCY_LEVEL_MASK;
		wm[1] = (val >> GEN9_MEM_LATENCY_LEVEL_1_5_SHIFT) &
				GEN9_MEM_LATENCY_LEVEL_MASK;
		wm[2] = (val >> GEN9_MEM_LATENCY_LEVEL_2_6_SHIFT) &
				GEN9_MEM_LATENCY_LEVEL_MASK;
		wm[3] = (val >> GEN9_MEM_LATENCY_LEVEL_3_7_SHIFT) &
				GEN9_MEM_LATENCY_LEVEL_MASK;

		/* read the second set of memory latencies[4:7] */
		val = 1; /* data0 to be programmed to 1 for second set */
		mutex_lock(&dev_priv->rps.hw_lock);
		ret = sandybridge_pcode_read(dev_priv,
					     GEN9_PCODE_READ_MEM_LATENCY,
					     &val);
		mutex_unlock(&dev_priv->rps.hw_lock);
		if (ret) {
			DRM_ERROR("SKL Mailbox read error = %d\n", ret);
			return;
		}

		wm[4] = val & GEN9_MEM_LATENCY_LEVEL_MASK;
		wm[5] = (val >> GEN9_MEM_LATENCY_LEVEL_1_5_SHIFT) &
				GEN9_MEM_LATENCY_LEVEL_MASK;
		wm[6] = (val >> GEN9_MEM_LATENCY_LEVEL_2_6_SHIFT) &
				GEN9_MEM_LATENCY_LEVEL_MASK;
		wm[7] = (val >> GEN9_MEM_LATENCY_LEVEL_3_7_SHIFT) &
				GEN9_MEM_LATENCY_LEVEL_MASK;

2807 2808 2809 2810 2811 2812 2813 2814 2815 2816 2817 2818 2819
		/*
		 * If a level n (n > 1) has a 0us latency, all levels m (m >= n)
		 * need to be disabled. We make sure to sanitize the values out
		 * of the punit to satisfy this requirement.
		 */
		for (level = 1; level <= max_level; level++) {
			if (wm[level] == 0) {
				for (i = level + 1; i <= max_level; i++)
					wm[i] = 0;
				break;
			}
		}

2820
		/*
2821
		 * WaWmMemoryReadLatency:skl,glk
2822
		 *
2823
		 * punit doesn't take into account the read latency so we need
2824 2825
		 * to add 2us to the various latency levels we retrieve from the
		 * punit when level 0 response data us 0us.
2826
		 */
2827 2828 2829 2830 2831
		if (wm[0] == 0) {
			wm[0] += 2;
			for (level = 1; level <= max_level; level++) {
				if (wm[level] == 0)
					break;
2832
				wm[level] += 2;
2833
			}
2834 2835
		}

2836
	} else if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv)) {
2837 2838 2839 2840 2841
		uint64_t sskpd = I915_READ64(MCH_SSKPD);

		wm[0] = (sskpd >> 56) & 0xFF;
		if (wm[0] == 0)
			wm[0] = sskpd & 0xF;
2842 2843 2844 2845
		wm[1] = (sskpd >> 4) & 0xFF;
		wm[2] = (sskpd >> 12) & 0xFF;
		wm[3] = (sskpd >> 20) & 0x1FF;
		wm[4] = (sskpd >> 32) & 0x1FF;
2846
	} else if (INTEL_GEN(dev_priv) >= 6) {
2847 2848 2849 2850 2851 2852
		uint32_t sskpd = I915_READ(MCH_SSKPD);

		wm[0] = (sskpd >> SSKPD_WM0_SHIFT) & SSKPD_WM_MASK;
		wm[1] = (sskpd >> SSKPD_WM1_SHIFT) & SSKPD_WM_MASK;
		wm[2] = (sskpd >> SSKPD_WM2_SHIFT) & SSKPD_WM_MASK;
		wm[3] = (sskpd >> SSKPD_WM3_SHIFT) & SSKPD_WM_MASK;
2853
	} else if (INTEL_GEN(dev_priv) >= 5) {
2854 2855 2856 2857 2858 2859
		uint32_t mltr = I915_READ(MLTR_ILK);

		/* ILK primary LP0 latency is 700 ns */
		wm[0] = 7;
		wm[1] = (mltr >> MLTR_WM1_SHIFT) & ILK_SRLT_MASK;
		wm[2] = (mltr >> MLTR_WM2_SHIFT) & ILK_SRLT_MASK;
2860 2861 2862
	}
}

2863 2864
static void intel_fixup_spr_wm_latency(struct drm_i915_private *dev_priv,
				       uint16_t wm[5])
2865 2866
{
	/* ILK sprite LP0 latency is 1300 ns */
2867
	if (IS_GEN5(dev_priv))
2868 2869 2870
		wm[0] = 13;
}

2871 2872
static void intel_fixup_cur_wm_latency(struct drm_i915_private *dev_priv,
				       uint16_t wm[5])
2873 2874
{
	/* ILK cursor LP0 latency is 1300 ns */
2875
	if (IS_GEN5(dev_priv))
2876 2877 2878
		wm[0] = 13;

	/* WaDoubleCursorLP3Latency:ivb */
2879
	if (IS_IVYBRIDGE(dev_priv))
2880 2881 2882
		wm[3] *= 2;
}

2883
int ilk_wm_max_level(const struct drm_i915_private *dev_priv)
2884 2885
{
	/* how many WM levels are we expecting */
2886
	if (INTEL_GEN(dev_priv) >= 9)
2887
		return 7;
2888
	else if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
2889
		return 4;
2890
	else if (INTEL_GEN(dev_priv) >= 6)
2891
		return 3;
2892
	else
2893 2894
		return 2;
}
2895

2896
static void intel_print_wm_latency(struct drm_i915_private *dev_priv,
2897
				   const char *name,
2898
				   const uint16_t wm[8])
2899
{
2900
	int level, max_level = ilk_wm_max_level(dev_priv);
2901 2902 2903 2904 2905 2906 2907 2908 2909 2910

	for (level = 0; level <= max_level; level++) {
		unsigned int latency = wm[level];

		if (latency == 0) {
			DRM_ERROR("%s WM%d latency not provided\n",
				  name, level);
			continue;
		}

2911 2912 2913 2914
		/*
		 * - latencies are in us on gen9.
		 * - before then, WM1+ latency values are in 0.5us units
		 */
2915
		if (IS_GEN9(dev_priv))
2916 2917
			latency *= 10;
		else if (level > 0)
2918 2919 2920 2921 2922 2923 2924 2925
			latency *= 5;

		DRM_DEBUG_KMS("%s WM%d latency %u (%u.%u usec)\n",
			      name, level, wm[level],
			      latency / 10, latency % 10);
	}
}

2926 2927 2928
static bool ilk_increase_wm_latency(struct drm_i915_private *dev_priv,
				    uint16_t wm[5], uint16_t min)
{
2929
	int level, max_level = ilk_wm_max_level(dev_priv);
2930 2931 2932 2933 2934 2935 2936 2937 2938 2939 2940

	if (wm[0] >= min)
		return false;

	wm[0] = max(wm[0], min);
	for (level = 1; level <= max_level; level++)
		wm[level] = max_t(uint16_t, wm[level], DIV_ROUND_UP(min, 5));

	return true;
}

2941
static void snb_wm_latency_quirk(struct drm_i915_private *dev_priv)
2942 2943 2944 2945 2946 2947 2948 2949 2950 2951 2952 2953 2954 2955 2956
{
	bool changed;

	/*
	 * The BIOS provided WM memory latency values are often
	 * inadequate for high resolution displays. Adjust them.
	 */
	changed = ilk_increase_wm_latency(dev_priv, dev_priv->wm.pri_latency, 12) |
		ilk_increase_wm_latency(dev_priv, dev_priv->wm.spr_latency, 12) |
		ilk_increase_wm_latency(dev_priv, dev_priv->wm.cur_latency, 12);

	if (!changed)
		return;

	DRM_DEBUG_KMS("WM latency values increased to avoid potential underruns\n");
2957 2958 2959
	intel_print_wm_latency(dev_priv, "Primary", dev_priv->wm.pri_latency);
	intel_print_wm_latency(dev_priv, "Sprite", dev_priv->wm.spr_latency);
	intel_print_wm_latency(dev_priv, "Cursor", dev_priv->wm.cur_latency);
2960 2961
}

2962
static void ilk_setup_wm_latency(struct drm_i915_private *dev_priv)
2963
{
2964
	intel_read_wm_latency(dev_priv, dev_priv->wm.pri_latency);
2965 2966 2967 2968 2969 2970

	memcpy(dev_priv->wm.spr_latency, dev_priv->wm.pri_latency,
	       sizeof(dev_priv->wm.pri_latency));
	memcpy(dev_priv->wm.cur_latency, dev_priv->wm.pri_latency,
	       sizeof(dev_priv->wm.pri_latency));

2971
	intel_fixup_spr_wm_latency(dev_priv, dev_priv->wm.spr_latency);
2972
	intel_fixup_cur_wm_latency(dev_priv, dev_priv->wm.cur_latency);
2973

2974 2975 2976
	intel_print_wm_latency(dev_priv, "Primary", dev_priv->wm.pri_latency);
	intel_print_wm_latency(dev_priv, "Sprite", dev_priv->wm.spr_latency);
	intel_print_wm_latency(dev_priv, "Cursor", dev_priv->wm.cur_latency);
2977

2978
	if (IS_GEN6(dev_priv))
2979
		snb_wm_latency_quirk(dev_priv);
2980 2981
}

2982
static void skl_setup_wm_latency(struct drm_i915_private *dev_priv)
2983
{
2984
	intel_read_wm_latency(dev_priv, dev_priv->wm.skl_latency);
2985
	intel_print_wm_latency(dev_priv, "Gen9 Plane", dev_priv->wm.skl_latency);
2986 2987
}

2988 2989 2990 2991 2992 2993 2994 2995 2996 2997 2998 2999 3000 3001 3002 3003 3004 3005 3006 3007 3008 3009 3010
static bool ilk_validate_pipe_wm(struct drm_device *dev,
				 struct intel_pipe_wm *pipe_wm)
{
	/* LP0 watermark maximums depend on this pipe alone */
	const struct intel_wm_config config = {
		.num_pipes_active = 1,
		.sprites_enabled = pipe_wm->sprites_enabled,
		.sprites_scaled = pipe_wm->sprites_scaled,
	};
	struct ilk_wm_maximums max;

	/* LP0 watermarks always use 1/2 DDB partitioning */
	ilk_compute_wm_maximums(dev, 0, &config, INTEL_DDB_PART_1_2, &max);

	/* At least LP0 must be valid */
	if (!ilk_validate_wm_level(0, &max, &pipe_wm->wm[0])) {
		DRM_DEBUG_KMS("LP0 watermark invalid\n");
		return false;
	}

	return true;
}

3011
/* Compute new watermarks for the pipe */
3012
static int ilk_compute_pipe_wm(struct intel_crtc_state *cstate)
3013
{
3014 3015
	struct drm_atomic_state *state = cstate->base.state;
	struct intel_crtc *intel_crtc = to_intel_crtc(cstate->base.crtc);
3016
	struct intel_pipe_wm *pipe_wm;
3017
	struct drm_device *dev = state->dev;
3018
	const struct drm_i915_private *dev_priv = to_i915(dev);
3019
	struct intel_plane *intel_plane;
3020
	struct intel_plane_state *pristate = NULL;
3021
	struct intel_plane_state *sprstate = NULL;
3022
	struct intel_plane_state *curstate = NULL;
3023
	int level, max_level = ilk_wm_max_level(dev_priv), usable_level;
3024
	struct ilk_wm_maximums max;
3025

3026
	pipe_wm = &cstate->wm.ilk.optimal;
3027

3028
	for_each_intel_plane_on_crtc(dev, intel_crtc, intel_plane) {
3029 3030 3031 3032 3033 3034
		struct intel_plane_state *ps;

		ps = intel_atomic_get_existing_plane_state(state,
							   intel_plane);
		if (!ps)
			continue;
3035 3036

		if (intel_plane->base.type == DRM_PLANE_TYPE_PRIMARY)
3037
			pristate = ps;
3038
		else if (intel_plane->base.type == DRM_PLANE_TYPE_OVERLAY)
3039
			sprstate = ps;
3040
		else if (intel_plane->base.type == DRM_PLANE_TYPE_CURSOR)
3041
			curstate = ps;
3042 3043
	}

3044
	pipe_wm->pipe_enabled = cstate->base.active;
3045
	if (sprstate) {
3046 3047 3048 3049
		pipe_wm->sprites_enabled = sprstate->base.visible;
		pipe_wm->sprites_scaled = sprstate->base.visible &&
			(drm_rect_width(&sprstate->base.dst) != drm_rect_width(&sprstate->base.src) >> 16 ||
			 drm_rect_height(&sprstate->base.dst) != drm_rect_height(&sprstate->base.src) >> 16);
3050 3051
	}

3052 3053
	usable_level = max_level;

3054
	/* ILK/SNB: LP2+ watermarks only w/o sprites */
3055
	if (INTEL_GEN(dev_priv) <= 6 && pipe_wm->sprites_enabled)
3056
		usable_level = 1;
3057 3058

	/* ILK/SNB/IVB: LP1+ watermarks only w/o scaling */
3059
	if (pipe_wm->sprites_scaled)
3060
		usable_level = 0;
3061

3062
	ilk_compute_wm_level(dev_priv, intel_crtc, 0, cstate,
3063 3064 3065 3066
			     pristate, sprstate, curstate, &pipe_wm->raw_wm[0]);

	memset(&pipe_wm->wm, 0, sizeof(pipe_wm->wm));
	pipe_wm->wm[0] = pipe_wm->raw_wm[0];
3067

3068
	if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
3069
		pipe_wm->linetime = hsw_compute_linetime_wm(cstate);
3070

3071
	if (!ilk_validate_pipe_wm(dev, pipe_wm))
3072
		return -EINVAL;
3073

3074
	ilk_compute_wm_reg_maximums(dev_priv, 1, &max);
3075 3076

	for (level = 1; level <= max_level; level++) {
3077
		struct intel_wm_level *wm = &pipe_wm->raw_wm[level];
3078

3079
		ilk_compute_wm_level(dev_priv, intel_crtc, level, cstate,
3080
				     pristate, sprstate, curstate, wm);
3081 3082 3083 3084 3085 3086

		/*
		 * Disable any watermark level that exceeds the
		 * register maximums since such watermarks are
		 * always invalid.
		 */
3087 3088 3089 3090 3091 3092
		if (level > usable_level)
			continue;

		if (ilk_validate_wm_level(level, &max, wm))
			pipe_wm->wm[level] = *wm;
		else
3093
			usable_level = level;
3094 3095
	}

3096
	return 0;
3097 3098
}

3099 3100 3101 3102 3103 3104 3105 3106 3107
/*
 * Build a set of 'intermediate' watermark values that satisfy both the old
 * state and the new state.  These can be programmed to the hardware
 * immediately.
 */
static int ilk_compute_intermediate_wm(struct drm_device *dev,
				       struct intel_crtc *intel_crtc,
				       struct intel_crtc_state *newstate)
{
3108
	struct intel_pipe_wm *a = &newstate->wm.ilk.intermediate;
3109
	struct intel_pipe_wm *b = &intel_crtc->wm.active.ilk;
3110
	int level, max_level = ilk_wm_max_level(to_i915(dev));
3111 3112 3113 3114 3115 3116

	/*
	 * Start with the final, target watermarks, then combine with the
	 * currently active watermarks to get values that are safe both before
	 * and after the vblank.
	 */
3117
	*a = newstate->wm.ilk.optimal;
3118 3119 3120 3121 3122 3123 3124 3125 3126 3127 3128 3129 3130 3131 3132 3133 3134 3135 3136 3137 3138 3139 3140 3141 3142 3143 3144 3145
	a->pipe_enabled |= b->pipe_enabled;
	a->sprites_enabled |= b->sprites_enabled;
	a->sprites_scaled |= b->sprites_scaled;

	for (level = 0; level <= max_level; level++) {
		struct intel_wm_level *a_wm = &a->wm[level];
		const struct intel_wm_level *b_wm = &b->wm[level];

		a_wm->enable &= b_wm->enable;
		a_wm->pri_val = max(a_wm->pri_val, b_wm->pri_val);
		a_wm->spr_val = max(a_wm->spr_val, b_wm->spr_val);
		a_wm->cur_val = max(a_wm->cur_val, b_wm->cur_val);
		a_wm->fbc_val = max(a_wm->fbc_val, b_wm->fbc_val);
	}

	/*
	 * We need to make sure that these merged watermark values are
	 * actually a valid configuration themselves.  If they're not,
	 * there's no safe way to transition from the old state to
	 * the new state, so we need to fail the atomic transaction.
	 */
	if (!ilk_validate_pipe_wm(dev, a))
		return -EINVAL;

	/*
	 * If our intermediate WM are identical to the final WM, then we can
	 * omit the post-vblank programming; only update if it's different.
	 */
3146 3147
	if (memcmp(a, &newstate->wm.ilk.optimal, sizeof(*a)) != 0)
		newstate->wm.need_postvbl_update = true;
3148 3149 3150 3151

	return 0;
}

3152 3153 3154 3155 3156 3157 3158 3159 3160
/*
 * Merge the watermarks from all active pipes for a specific level.
 */
static void ilk_merge_wm_level(struct drm_device *dev,
			       int level,
			       struct intel_wm_level *ret_wm)
{
	const struct intel_crtc *intel_crtc;

3161 3162
	ret_wm->enable = true;

3163
	for_each_intel_crtc(dev, intel_crtc) {
3164
		const struct intel_pipe_wm *active = &intel_crtc->wm.active.ilk;
3165 3166 3167 3168
		const struct intel_wm_level *wm = &active->wm[level];

		if (!active->pipe_enabled)
			continue;
3169

3170 3171 3172 3173 3174
		/*
		 * The watermark values may have been used in the past,
		 * so we must maintain them in the registers for some
		 * time even if the level is now disabled.
		 */
3175
		if (!wm->enable)
3176
			ret_wm->enable = false;
3177 3178 3179 3180 3181 3182 3183 3184 3185 3186 3187 3188

		ret_wm->pri_val = max(ret_wm->pri_val, wm->pri_val);
		ret_wm->spr_val = max(ret_wm->spr_val, wm->spr_val);
		ret_wm->cur_val = max(ret_wm->cur_val, wm->cur_val);
		ret_wm->fbc_val = max(ret_wm->fbc_val, wm->fbc_val);
	}
}

/*
 * Merge all low power watermarks for all active pipes.
 */
static void ilk_wm_merge(struct drm_device *dev,
3189
			 const struct intel_wm_config *config,
3190
			 const struct ilk_wm_maximums *max,
3191 3192
			 struct intel_pipe_wm *merged)
{
3193
	struct drm_i915_private *dev_priv = to_i915(dev);
3194
	int level, max_level = ilk_wm_max_level(dev_priv);
3195
	int last_enabled_level = max_level;
3196

3197
	/* ILK/SNB/IVB: LP1+ watermarks only w/ single pipe */
3198
	if ((INTEL_GEN(dev_priv) <= 6 || IS_IVYBRIDGE(dev_priv)) &&
3199
	    config->num_pipes_active > 1)
3200
		last_enabled_level = 0;
3201

3202
	/* ILK: FBC WM must be disabled always */
3203
	merged->fbc_wm_enabled = INTEL_GEN(dev_priv) >= 6;
3204 3205 3206 3207 3208 3209 3210

	/* merge each WM1+ level */
	for (level = 1; level <= max_level; level++) {
		struct intel_wm_level *wm = &merged->wm[level];

		ilk_merge_wm_level(dev, level, wm);

3211 3212 3213 3214 3215
		if (level > last_enabled_level)
			wm->enable = false;
		else if (!ilk_validate_wm_level(level, max, wm))
			/* make sure all following levels get disabled */
			last_enabled_level = level - 1;
3216 3217 3218 3219 3220 3221

		/*
		 * The spec says it is preferred to disable
		 * FBC WMs instead of disabling a WM level.
		 */
		if (wm->fbc_val > max->fbc) {
3222 3223
			if (wm->enable)
				merged->fbc_wm_enabled = false;
3224 3225 3226
			wm->fbc_val = 0;
		}
	}
3227 3228 3229 3230 3231 3232 3233

	/* ILK: LP2+ must be disabled when FBC WM is disabled but FBC enabled */
	/*
	 * FIXME this is racy. FBC might get enabled later.
	 * What we should check here is whether FBC can be
	 * enabled sometime later.
	 */
3234
	if (IS_GEN5(dev_priv) && !merged->fbc_wm_enabled &&
3235
	    intel_fbc_is_active(dev_priv)) {
3236 3237 3238 3239 3240 3241
		for (level = 2; level <= max_level; level++) {
			struct intel_wm_level *wm = &merged->wm[level];

			wm->enable = false;
		}
	}
3242 3243
}

3244 3245 3246 3247 3248 3249
static int ilk_wm_lp_to_level(int wm_lp, const struct intel_pipe_wm *pipe_wm)
{
	/* LP1,LP2,LP3 levels are either 1,2,3 or 1,3,4 */
	return wm_lp + (wm_lp >= 2 && pipe_wm->wm[4].enable);
}

3250 3251 3252
/* The value we need to program into the WM_LPx latency field */
static unsigned int ilk_wm_lp_latency(struct drm_device *dev, int level)
{
3253
	struct drm_i915_private *dev_priv = to_i915(dev);
3254

3255
	if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
3256 3257 3258 3259 3260
		return 2 * level;
	else
		return dev_priv->wm.pri_latency[level];
}

3261
static void ilk_compute_wm_results(struct drm_device *dev,
3262
				   const struct intel_pipe_wm *merged,
3263
				   enum intel_ddb_partitioning partitioning,
3264
				   struct ilk_wm_values *results)
3265
{
3266
	struct drm_i915_private *dev_priv = to_i915(dev);
3267 3268
	struct intel_crtc *intel_crtc;
	int level, wm_lp;
3269

3270
	results->enable_fbc_wm = merged->fbc_wm_enabled;
3271
	results->partitioning = partitioning;
3272

3273
	/* LP1+ register values */
3274
	for (wm_lp = 1; wm_lp <= 3; wm_lp++) {
3275
		const struct intel_wm_level *r;
3276

3277
		level = ilk_wm_lp_to_level(wm_lp, merged);
3278

3279
		r = &merged->wm[level];
3280

3281 3282 3283 3284 3285
		/*
		 * Maintain the watermark values even if the level is
		 * disabled. Doing otherwise could cause underruns.
		 */
		results->wm_lp[wm_lp - 1] =
3286
			(ilk_wm_lp_latency(dev, level) << WM1_LP_LATENCY_SHIFT) |
3287 3288 3289
			(r->pri_val << WM1_LP_SR_SHIFT) |
			r->cur_val;

3290 3291 3292
		if (r->enable)
			results->wm_lp[wm_lp - 1] |= WM1_LP_SR_EN;

3293
		if (INTEL_GEN(dev_priv) >= 8)
3294 3295 3296 3297 3298 3299
			results->wm_lp[wm_lp - 1] |=
				r->fbc_val << WM1_LP_FBC_SHIFT_BDW;
		else
			results->wm_lp[wm_lp - 1] |=
				r->fbc_val << WM1_LP_FBC_SHIFT;

3300 3301 3302 3303
		/*
		 * Always set WM1S_LP_EN when spr_val != 0, even if the
		 * level is disabled. Doing otherwise could cause underruns.
		 */
3304
		if (INTEL_GEN(dev_priv) <= 6 && r->spr_val) {
3305 3306 3307 3308
			WARN_ON(wm_lp != 1);
			results->wm_lp_spr[wm_lp - 1] = WM1S_LP_EN | r->spr_val;
		} else
			results->wm_lp_spr[wm_lp - 1] = r->spr_val;
3309
	}
3310

3311
	/* LP0 register values */
3312
	for_each_intel_crtc(dev, intel_crtc) {
3313
		enum pipe pipe = intel_crtc->pipe;
3314 3315
		const struct intel_wm_level *r =
			&intel_crtc->wm.active.ilk.wm[0];
3316 3317 3318 3319

		if (WARN_ON(!r->enable))
			continue;

3320
		results->wm_linetime[pipe] = intel_crtc->wm.active.ilk.linetime;
3321

3322 3323 3324 3325
		results->wm_pipe[pipe] =
			(r->pri_val << WM0_PIPE_PLANE_SHIFT) |
			(r->spr_val << WM0_PIPE_SPRITE_SHIFT) |
			r->cur_val;
3326 3327 3328
	}
}

3329 3330
/* Find the result with the highest level enabled. Check for enable_fbc_wm in
 * case both are at the same level. Prefer r1 in case they're the same. */
3331
static struct intel_pipe_wm *ilk_find_best_result(struct drm_device *dev,
3332 3333
						  struct intel_pipe_wm *r1,
						  struct intel_pipe_wm *r2)
3334
{
3335
	int level, max_level = ilk_wm_max_level(to_i915(dev));
3336
	int level1 = 0, level2 = 0;
3337

3338 3339 3340 3341 3342
	for (level = 1; level <= max_level; level++) {
		if (r1->wm[level].enable)
			level1 = level;
		if (r2->wm[level].enable)
			level2 = level;
3343 3344
	}

3345 3346
	if (level1 == level2) {
		if (r2->fbc_wm_enabled && !r1->fbc_wm_enabled)
3347 3348 3349
			return r2;
		else
			return r1;
3350
	} else if (level1 > level2) {
3351 3352 3353 3354 3355 3356
		return r1;
	} else {
		return r2;
	}
}

3357 3358 3359 3360 3361 3362 3363 3364
/* dirty bits used to track which watermarks need changes */
#define WM_DIRTY_PIPE(pipe) (1 << (pipe))
#define WM_DIRTY_LINETIME(pipe) (1 << (8 + (pipe)))
#define WM_DIRTY_LP(wm_lp) (1 << (15 + (wm_lp)))
#define WM_DIRTY_LP_ALL (WM_DIRTY_LP(1) | WM_DIRTY_LP(2) | WM_DIRTY_LP(3))
#define WM_DIRTY_FBC (1 << 24)
#define WM_DIRTY_DDB (1 << 25)

3365
static unsigned int ilk_compute_wm_dirty(struct drm_i915_private *dev_priv,
3366 3367
					 const struct ilk_wm_values *old,
					 const struct ilk_wm_values *new)
3368 3369 3370 3371 3372
{
	unsigned int dirty = 0;
	enum pipe pipe;
	int wm_lp;

3373
	for_each_pipe(dev_priv, pipe) {
3374 3375 3376 3377 3378 3379 3380 3381 3382 3383 3384 3385 3386 3387 3388 3389 3390 3391 3392 3393 3394 3395 3396 3397 3398 3399 3400 3401 3402 3403 3404 3405 3406 3407 3408 3409 3410 3411 3412 3413 3414 3415 3416
		if (old->wm_linetime[pipe] != new->wm_linetime[pipe]) {
			dirty |= WM_DIRTY_LINETIME(pipe);
			/* Must disable LP1+ watermarks too */
			dirty |= WM_DIRTY_LP_ALL;
		}

		if (old->wm_pipe[pipe] != new->wm_pipe[pipe]) {
			dirty |= WM_DIRTY_PIPE(pipe);
			/* Must disable LP1+ watermarks too */
			dirty |= WM_DIRTY_LP_ALL;
		}
	}

	if (old->enable_fbc_wm != new->enable_fbc_wm) {
		dirty |= WM_DIRTY_FBC;
		/* Must disable LP1+ watermarks too */
		dirty |= WM_DIRTY_LP_ALL;
	}

	if (old->partitioning != new->partitioning) {
		dirty |= WM_DIRTY_DDB;
		/* Must disable LP1+ watermarks too */
		dirty |= WM_DIRTY_LP_ALL;
	}

	/* LP1+ watermarks already deemed dirty, no need to continue */
	if (dirty & WM_DIRTY_LP_ALL)
		return dirty;

	/* Find the lowest numbered LP1+ watermark in need of an update... */
	for (wm_lp = 1; wm_lp <= 3; wm_lp++) {
		if (old->wm_lp[wm_lp - 1] != new->wm_lp[wm_lp - 1] ||
		    old->wm_lp_spr[wm_lp - 1] != new->wm_lp_spr[wm_lp - 1])
			break;
	}

	/* ...and mark it and all higher numbered LP1+ watermarks as dirty */
	for (; wm_lp <= 3; wm_lp++)
		dirty |= WM_DIRTY_LP(wm_lp);

	return dirty;
}

3417 3418
static bool _ilk_disable_lp_wm(struct drm_i915_private *dev_priv,
			       unsigned int dirty)
3419
{
3420
	struct ilk_wm_values *previous = &dev_priv->wm.hw;
3421
	bool changed = false;
3422

3423 3424 3425
	if (dirty & WM_DIRTY_LP(3) && previous->wm_lp[2] & WM1_LP_SR_EN) {
		previous->wm_lp[2] &= ~WM1_LP_SR_EN;
		I915_WRITE(WM3_LP_ILK, previous->wm_lp[2]);
3426
		changed = true;
3427 3428 3429 3430
	}
	if (dirty & WM_DIRTY_LP(2) && previous->wm_lp[1] & WM1_LP_SR_EN) {
		previous->wm_lp[1] &= ~WM1_LP_SR_EN;
		I915_WRITE(WM2_LP_ILK, previous->wm_lp[1]);
3431
		changed = true;
3432 3433 3434 3435
	}
	if (dirty & WM_DIRTY_LP(1) && previous->wm_lp[0] & WM1_LP_SR_EN) {
		previous->wm_lp[0] &= ~WM1_LP_SR_EN;
		I915_WRITE(WM1_LP_ILK, previous->wm_lp[0]);
3436
		changed = true;
3437
	}
3438

3439 3440 3441 3442
	/*
	 * Don't touch WM1S_LP_EN here.
	 * Doing so could cause underruns.
	 */
3443

3444 3445 3446 3447 3448 3449 3450
	return changed;
}

/*
 * The spec says we shouldn't write when we don't need, because every write
 * causes WMs to be re-evaluated, expending some power.
 */
3451 3452
static void ilk_write_wm_values(struct drm_i915_private *dev_priv,
				struct ilk_wm_values *results)
3453
{
3454
	struct ilk_wm_values *previous = &dev_priv->wm.hw;
3455 3456 3457
	unsigned int dirty;
	uint32_t val;

3458
	dirty = ilk_compute_wm_dirty(dev_priv, previous, results);
3459 3460 3461 3462 3463
	if (!dirty)
		return;

	_ilk_disable_lp_wm(dev_priv, dirty);

3464
	if (dirty & WM_DIRTY_PIPE(PIPE_A))
3465
		I915_WRITE(WM0_PIPEA_ILK, results->wm_pipe[0]);
3466
	if (dirty & WM_DIRTY_PIPE(PIPE_B))
3467
		I915_WRITE(WM0_PIPEB_ILK, results->wm_pipe[1]);
3468
	if (dirty & WM_DIRTY_PIPE(PIPE_C))
3469 3470
		I915_WRITE(WM0_PIPEC_IVB, results->wm_pipe[2]);

3471
	if (dirty & WM_DIRTY_LINETIME(PIPE_A))
3472
		I915_WRITE(PIPE_WM_LINETIME(PIPE_A), results->wm_linetime[0]);
3473
	if (dirty & WM_DIRTY_LINETIME(PIPE_B))
3474
		I915_WRITE(PIPE_WM_LINETIME(PIPE_B), results->wm_linetime[1]);
3475
	if (dirty & WM_DIRTY_LINETIME(PIPE_C))
3476 3477
		I915_WRITE(PIPE_WM_LINETIME(PIPE_C), results->wm_linetime[2]);

3478
	if (dirty & WM_DIRTY_DDB) {
3479
		if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv)) {
3480 3481 3482 3483 3484 3485 3486 3487 3488 3489 3490 3491 3492 3493
			val = I915_READ(WM_MISC);
			if (results->partitioning == INTEL_DDB_PART_1_2)
				val &= ~WM_MISC_DATA_PARTITION_5_6;
			else
				val |= WM_MISC_DATA_PARTITION_5_6;
			I915_WRITE(WM_MISC, val);
		} else {
			val = I915_READ(DISP_ARB_CTL2);
			if (results->partitioning == INTEL_DDB_PART_1_2)
				val &= ~DISP_DATA_PARTITION_5_6;
			else
				val |= DISP_DATA_PARTITION_5_6;
			I915_WRITE(DISP_ARB_CTL2, val);
		}
3494 3495
	}

3496
	if (dirty & WM_DIRTY_FBC) {
3497 3498 3499 3500 3501 3502 3503 3504
		val = I915_READ(DISP_ARB_CTL);
		if (results->enable_fbc_wm)
			val &= ~DISP_FBC_WM_DIS;
		else
			val |= DISP_FBC_WM_DIS;
		I915_WRITE(DISP_ARB_CTL, val);
	}

3505 3506 3507 3508
	if (dirty & WM_DIRTY_LP(1) &&
	    previous->wm_lp_spr[0] != results->wm_lp_spr[0])
		I915_WRITE(WM1S_LP_ILK, results->wm_lp_spr[0]);

3509
	if (INTEL_GEN(dev_priv) >= 7) {
3510 3511 3512 3513 3514
		if (dirty & WM_DIRTY_LP(2) && previous->wm_lp_spr[1] != results->wm_lp_spr[1])
			I915_WRITE(WM2S_LP_IVB, results->wm_lp_spr[1]);
		if (dirty & WM_DIRTY_LP(3) && previous->wm_lp_spr[2] != results->wm_lp_spr[2])
			I915_WRITE(WM3S_LP_IVB, results->wm_lp_spr[2]);
	}
3515

3516
	if (dirty & WM_DIRTY_LP(1) && previous->wm_lp[0] != results->wm_lp[0])
3517
		I915_WRITE(WM1_LP_ILK, results->wm_lp[0]);
3518
	if (dirty & WM_DIRTY_LP(2) && previous->wm_lp[1] != results->wm_lp[1])
3519
		I915_WRITE(WM2_LP_ILK, results->wm_lp[1]);
3520
	if (dirty & WM_DIRTY_LP(3) && previous->wm_lp[2] != results->wm_lp[2])
3521
		I915_WRITE(WM3_LP_ILK, results->wm_lp[2]);
3522 3523

	dev_priv->wm.hw = *results;
3524 3525
}

3526
bool ilk_disable_lp_wm(struct drm_device *dev)
3527
{
3528
	struct drm_i915_private *dev_priv = to_i915(dev);
3529 3530 3531 3532

	return _ilk_disable_lp_wm(dev_priv, WM_DIRTY_LP_ALL);
}

3533
#define SKL_SAGV_BLOCK_TIME	30 /* µs */
3534

3535 3536 3537 3538 3539 3540 3541 3542
/*
 * FIXME: We still don't have the proper code detect if we need to apply the WA,
 * so assume we'll always need it in order to avoid underruns.
 */
static bool skl_needs_memory_bw_wa(struct intel_atomic_state *state)
{
	struct drm_i915_private *dev_priv = to_i915(state->base.dev);

3543
	if (IS_GEN9_BC(dev_priv) || IS_BROXTON(dev_priv))
3544 3545 3546 3547 3548
		return true;

	return false;
}

3549 3550 3551
static bool
intel_has_sagv(struct drm_i915_private *dev_priv)
{
3552
	if (IS_KABYLAKE(dev_priv) || IS_COFFEELAKE(dev_priv))
3553 3554 3555 3556 3557 3558 3559
		return true;

	if (IS_SKYLAKE(dev_priv) &&
	    dev_priv->sagv_status != I915_SAGV_NOT_CONTROLLED)
		return true;

	return false;
3560 3561
}

3562 3563 3564 3565 3566 3567 3568 3569 3570 3571 3572 3573
/*
 * SAGV dynamically adjusts the system agent voltage and clock frequencies
 * depending on power and performance requirements. The display engine access
 * to system memory is blocked during the adjustment time. Because of the
 * blocking time, having this enabled can cause full system hangs and/or pipe
 * underruns if we don't meet all of the following requirements:
 *
 *  - <= 1 pipe enabled
 *  - All planes can enable watermarks for latencies >= SAGV engine block time
 *  - We're not using an interlaced display configuration
 */
int
3574
intel_enable_sagv(struct drm_i915_private *dev_priv)
3575 3576 3577
{
	int ret;

3578 3579 3580 3581
	if (!intel_has_sagv(dev_priv))
		return 0;

	if (dev_priv->sagv_status == I915_SAGV_ENABLED)
3582 3583 3584 3585 3586 3587 3588 3589 3590 3591 3592 3593 3594 3595 3596
		return 0;

	DRM_DEBUG_KMS("Enabling the SAGV\n");
	mutex_lock(&dev_priv->rps.hw_lock);

	ret = sandybridge_pcode_write(dev_priv, GEN9_PCODE_SAGV_CONTROL,
				      GEN9_SAGV_ENABLE);

	/* We don't need to wait for the SAGV when enabling */
	mutex_unlock(&dev_priv->rps.hw_lock);

	/*
	 * Some skl systems, pre-release machines in particular,
	 * don't actually have an SAGV.
	 */
3597
	if (IS_SKYLAKE(dev_priv) && ret == -ENXIO) {
3598
		DRM_DEBUG_DRIVER("No SAGV found on system, ignoring\n");
3599
		dev_priv->sagv_status = I915_SAGV_NOT_CONTROLLED;
3600 3601 3602 3603 3604 3605
		return 0;
	} else if (ret < 0) {
		DRM_ERROR("Failed to enable the SAGV\n");
		return ret;
	}

3606
	dev_priv->sagv_status = I915_SAGV_ENABLED;
3607 3608 3609 3610
	return 0;
}

int
3611
intel_disable_sagv(struct drm_i915_private *dev_priv)
3612
{
3613
	int ret;
3614

3615 3616 3617 3618
	if (!intel_has_sagv(dev_priv))
		return 0;

	if (dev_priv->sagv_status == I915_SAGV_DISABLED)
3619 3620 3621 3622 3623 3624
		return 0;

	DRM_DEBUG_KMS("Disabling the SAGV\n");
	mutex_lock(&dev_priv->rps.hw_lock);

	/* bspec says to keep retrying for at least 1 ms */
3625 3626 3627 3628
	ret = skl_pcode_request(dev_priv, GEN9_PCODE_SAGV_CONTROL,
				GEN9_SAGV_DISABLE,
				GEN9_SAGV_IS_DISABLED, GEN9_SAGV_IS_DISABLED,
				1);
3629 3630 3631 3632 3633 3634
	mutex_unlock(&dev_priv->rps.hw_lock);

	/*
	 * Some skl systems, pre-release machines in particular,
	 * don't actually have an SAGV.
	 */
3635
	if (IS_SKYLAKE(dev_priv) && ret == -ENXIO) {
3636
		DRM_DEBUG_DRIVER("No SAGV found on system, ignoring\n");
3637
		dev_priv->sagv_status = I915_SAGV_NOT_CONTROLLED;
3638
		return 0;
3639 3640 3641
	} else if (ret < 0) {
		DRM_ERROR("Failed to disable the SAGV (%d)\n", ret);
		return ret;
3642 3643
	}

3644
	dev_priv->sagv_status = I915_SAGV_DISABLED;
3645 3646 3647
	return 0;
}

3648
bool intel_can_enable_sagv(struct drm_atomic_state *state)
3649 3650 3651 3652
{
	struct drm_device *dev = state->dev;
	struct drm_i915_private *dev_priv = to_i915(dev);
	struct intel_atomic_state *intel_state = to_intel_atomic_state(state);
3653 3654
	struct intel_crtc *crtc;
	struct intel_plane *plane;
3655
	struct intel_crtc_state *cstate;
3656
	enum pipe pipe;
3657
	int level, latency;
3658

3659 3660 3661
	if (!intel_has_sagv(dev_priv))
		return false;

3662 3663 3664 3665 3666 3667 3668 3669 3670 3671 3672 3673 3674
	/*
	 * SKL workaround: bspec recommends we disable the SAGV when we have
	 * more then one pipe enabled
	 *
	 * If there are no active CRTCs, no additional checks need be performed
	 */
	if (hweight32(intel_state->active_crtcs) == 0)
		return true;
	else if (hweight32(intel_state->active_crtcs) > 1)
		return false;

	/* Since we're now guaranteed to only have one active CRTC... */
	pipe = ffs(intel_state->active_crtcs) - 1;
3675
	crtc = intel_get_crtc_for_pipe(dev_priv, pipe);
3676
	cstate = to_intel_crtc_state(crtc->base.state);
3677

3678
	if (crtc->base.state->adjusted_mode.flags & DRM_MODE_FLAG_INTERLACE)
3679 3680
		return false;

3681
	for_each_intel_plane_on_crtc(dev, crtc, plane) {
3682 3683
		struct skl_plane_wm *wm =
			&cstate->wm.skl.optimal.planes[plane->id];
3684

3685
		/* Skip this plane if it's not enabled */
3686
		if (!wm->wm[0].plane_en)
3687 3688 3689
			continue;

		/* Find the highest enabled wm level for this plane */
3690
		for (level = ilk_wm_max_level(dev_priv);
3691
		     !wm->wm[level].plane_en; --level)
3692 3693
		     { }

3694 3695 3696
		latency = dev_priv->wm.skl_latency[level];

		if (skl_needs_memory_bw_wa(intel_state) &&
V
Ville Syrjälä 已提交
3697
		    plane->base.state->fb->modifier ==
3698 3699 3700
		    I915_FORMAT_MOD_X_TILED)
			latency += 15;

3701 3702 3703 3704 3705
		/*
		 * If any of the planes on this pipe don't enable wm levels
		 * that incur memory latencies higher then 30µs we can't enable
		 * the SAGV
		 */
3706
		if (latency < SKL_SAGV_BLOCK_TIME)
3707 3708 3709 3710 3711 3712
			return false;
	}

	return true;
}

3713 3714
static void
skl_ddb_get_pipe_allocation_limits(struct drm_device *dev,
3715
				   const struct intel_crtc_state *cstate,
3716 3717
				   struct skl_ddb_entry *alloc, /* out */
				   int *num_active /* out */)
3718
{
3719 3720 3721
	struct drm_atomic_state *state = cstate->base.state;
	struct intel_atomic_state *intel_state = to_intel_atomic_state(state);
	struct drm_i915_private *dev_priv = to_i915(dev);
3722
	struct drm_crtc *for_crtc = cstate->base.crtc;
3723 3724
	unsigned int pipe_size, ddb_size;
	int nth_active_pipe;
3725

3726
	if (WARN_ON(!state) || !cstate->base.active) {
3727 3728
		alloc->start = 0;
		alloc->end = 0;
3729
		*num_active = hweight32(dev_priv->active_crtcs);
3730 3731 3732
		return;
	}

3733 3734 3735 3736 3737
	if (intel_state->active_pipe_changes)
		*num_active = hweight32(intel_state->active_crtcs);
	else
		*num_active = hweight32(dev_priv->active_crtcs);

3738 3739
	ddb_size = INTEL_INFO(dev_priv)->ddb_size;
	WARN_ON(ddb_size == 0);
3740 3741 3742

	ddb_size -= 4; /* 4 blocks for bypass path allocation */

3743
	/*
3744 3745 3746 3747 3748 3749
	 * If the state doesn't change the active CRTC's, then there's
	 * no need to recalculate; the existing pipe allocation limits
	 * should remain unchanged.  Note that we're safe from racing
	 * commits since any racing commit that changes the active CRTC
	 * list would need to grab _all_ crtc locks, including the one
	 * we currently hold.
3750
	 */
3751
	if (!intel_state->active_pipe_changes) {
3752 3753 3754 3755 3756
		/*
		 * alloc may be cleared by clear_intel_crtc_state,
		 * copy from old state to be sure
		 */
		*alloc = to_intel_crtc_state(for_crtc->state)->wm.skl.ddb;
3757
		return;
3758
	}
3759 3760 3761 3762 3763 3764

	nth_active_pipe = hweight32(intel_state->active_crtcs &
				    (drm_crtc_mask(for_crtc) - 1));
	pipe_size = ddb_size / hweight32(intel_state->active_crtcs);
	alloc->start = nth_active_pipe * ddb_size / *num_active;
	alloc->end = alloc->start + pipe_size;
3765 3766
}

3767
static unsigned int skl_cursor_allocation(int num_active)
3768
{
3769
	if (num_active == 1)
3770 3771 3772 3773 3774
		return 32;

	return 8;
}

3775 3776 3777 3778
static void skl_ddb_entry_init_from_hw(struct skl_ddb_entry *entry, u32 reg)
{
	entry->start = reg & 0x3ff;
	entry->end = (reg >> 16) & 0x3ff;
3779 3780
	if (entry->end)
		entry->end += 1;
3781 3782
}

3783 3784
void skl_ddb_get_hw_state(struct drm_i915_private *dev_priv,
			  struct skl_ddb_allocation *ddb /* out */)
3785
{
3786
	struct intel_crtc *crtc;
3787

3788 3789
	memset(ddb, 0, sizeof(*ddb));

3790
	for_each_intel_crtc(&dev_priv->drm, crtc) {
3791
		enum intel_display_power_domain power_domain;
3792 3793
		enum plane_id plane_id;
		enum pipe pipe = crtc->pipe;
3794 3795 3796

		power_domain = POWER_DOMAIN_PIPE(pipe);
		if (!intel_display_power_get_if_enabled(dev_priv, power_domain))
3797 3798
			continue;

3799 3800 3801 3802 3803 3804 3805
		for_each_plane_id_on_crtc(crtc, plane_id) {
			u32 val;

			if (plane_id != PLANE_CURSOR)
				val = I915_READ(PLANE_BUF_CFG(pipe, plane_id));
			else
				val = I915_READ(CUR_BUF_CFG(pipe));
3806

3807 3808
			skl_ddb_entry_init_from_hw(&ddb->plane[pipe][plane_id], val);
		}
3809 3810

		intel_display_power_put(dev_priv, power_domain);
3811 3812 3813
	}
}

3814 3815 3816 3817 3818 3819 3820 3821 3822 3823 3824 3825 3826 3827 3828 3829
/*
 * Determines the downscale amount of a plane for the purposes of watermark calculations.
 * The bspec defines downscale amount as:
 *
 * """
 * Horizontal down scale amount = maximum[1, Horizontal source size /
 *                                           Horizontal destination size]
 * Vertical down scale amount = maximum[1, Vertical source size /
 *                                         Vertical destination size]
 * Total down scale amount = Horizontal down scale amount *
 *                           Vertical down scale amount
 * """
 *
 * Return value is provided in 16.16 fixed point form to retain fractional part.
 * Caller should take care of dividing & rounding off the value.
 */
3830
static uint_fixed_16_16_t
3831 3832
skl_plane_downscale_amount(const struct intel_crtc_state *cstate,
			   const struct intel_plane_state *pstate)
3833
{
3834
	struct intel_plane *plane = to_intel_plane(pstate->base.plane);
3835
	uint32_t src_w, src_h, dst_w, dst_h;
3836 3837
	uint_fixed_16_16_t fp_w_ratio, fp_h_ratio;
	uint_fixed_16_16_t downscale_h, downscale_w;
3838

3839
	if (WARN_ON(!intel_wm_plane_visible(cstate, pstate)))
3840
		return u32_to_fixed16(0);
3841 3842

	/* n.b., src is 16.16 fixed point, dst is whole integer */
3843
	if (plane->id == PLANE_CURSOR) {
3844 3845 3846 3847
		/*
		 * Cursors only support 0/180 degree rotation,
		 * hence no need to account for rotation here.
		 */
3848 3849
		src_w = pstate->base.src_w >> 16;
		src_h = pstate->base.src_h >> 16;
3850 3851 3852
		dst_w = pstate->base.crtc_w;
		dst_h = pstate->base.crtc_h;
	} else {
3853 3854 3855 3856 3857
		/*
		 * Src coordinates are already rotated by 270 degrees for
		 * the 90/270 degree plane rotation cases (to match the
		 * GTT mapping), hence no need to account for rotation here.
		 */
3858 3859
		src_w = drm_rect_width(&pstate->base.src) >> 16;
		src_h = drm_rect_height(&pstate->base.src) >> 16;
3860 3861 3862 3863
		dst_w = drm_rect_width(&pstate->base.dst);
		dst_h = drm_rect_height(&pstate->base.dst);
	}

3864 3865 3866 3867
	fp_w_ratio = div_fixed16(src_w, dst_w);
	fp_h_ratio = div_fixed16(src_h, dst_h);
	downscale_w = max_fixed16(fp_w_ratio, u32_to_fixed16(1));
	downscale_h = max_fixed16(fp_h_ratio, u32_to_fixed16(1));
3868

3869
	return mul_fixed16(downscale_w, downscale_h);
3870 3871
}

3872 3873 3874
static uint_fixed_16_16_t
skl_pipe_downscale_amount(const struct intel_crtc_state *crtc_state)
{
3875
	uint_fixed_16_16_t pipe_downscale = u32_to_fixed16(1);
3876 3877 3878 3879 3880 3881 3882 3883 3884 3885 3886 3887 3888 3889 3890 3891 3892 3893

	if (!crtc_state->base.enable)
		return pipe_downscale;

	if (crtc_state->pch_pfit.enabled) {
		uint32_t src_w, src_h, dst_w, dst_h;
		uint32_t pfit_size = crtc_state->pch_pfit.size;
		uint_fixed_16_16_t fp_w_ratio, fp_h_ratio;
		uint_fixed_16_16_t downscale_h, downscale_w;

		src_w = crtc_state->pipe_src_w;
		src_h = crtc_state->pipe_src_h;
		dst_w = pfit_size >> 16;
		dst_h = pfit_size & 0xffff;

		if (!dst_w || !dst_h)
			return pipe_downscale;

3894 3895 3896 3897
		fp_w_ratio = div_fixed16(src_w, dst_w);
		fp_h_ratio = div_fixed16(src_h, dst_h);
		downscale_w = max_fixed16(fp_w_ratio, u32_to_fixed16(1));
		downscale_h = max_fixed16(fp_h_ratio, u32_to_fixed16(1));
3898 3899 3900 3901 3902 3903 3904 3905 3906 3907 3908 3909 3910 3911 3912

		pipe_downscale = mul_fixed16(downscale_w, downscale_h);
	}

	return pipe_downscale;
}

int skl_check_pipe_max_pixel_rate(struct intel_crtc *intel_crtc,
				  struct intel_crtc_state *cstate)
{
	struct drm_crtc_state *crtc_state = &cstate->base;
	struct drm_atomic_state *state = crtc_state->state;
	struct drm_plane *plane;
	const struct drm_plane_state *pstate;
	struct intel_plane_state *intel_pstate;
3913
	int crtc_clock, dotclk;
3914 3915
	uint32_t pipe_max_pixel_rate;
	uint_fixed_16_16_t pipe_downscale;
3916
	uint_fixed_16_16_t max_downscale = u32_to_fixed16(1);
3917 3918 3919 3920 3921 3922

	if (!cstate->base.enable)
		return 0;

	drm_atomic_crtc_state_for_each_plane_state(plane, pstate, crtc_state) {
		uint_fixed_16_16_t plane_downscale;
3923
		uint_fixed_16_16_t fp_9_div_8 = div_fixed16(9, 8);
3924 3925 3926 3927 3928 3929 3930 3931 3932 3933 3934 3935 3936 3937 3938 3939 3940
		int bpp;

		if (!intel_wm_plane_visible(cstate,
					    to_intel_plane_state(pstate)))
			continue;

		if (WARN_ON(!pstate->fb))
			return -EINVAL;

		intel_pstate = to_intel_plane_state(pstate);
		plane_downscale = skl_plane_downscale_amount(cstate,
							     intel_pstate);
		bpp = pstate->fb->format->cpp[0] * 8;
		if (bpp == 64)
			plane_downscale = mul_fixed16(plane_downscale,
						      fp_9_div_8);

3941
		max_downscale = max_fixed16(plane_downscale, max_downscale);
3942 3943 3944 3945 3946 3947
	}
	pipe_downscale = skl_pipe_downscale_amount(cstate);

	pipe_downscale = mul_fixed16(pipe_downscale, max_downscale);

	crtc_clock = crtc_state->adjusted_mode.crtc_clock;
3948 3949 3950 3951 3952 3953
	dotclk = to_intel_atomic_state(state)->cdclk.logical.cdclk;

	if (IS_GEMINILAKE(to_i915(intel_crtc->base.dev)))
		dotclk *= 2;

	pipe_max_pixel_rate = div_round_up_u32_fixed16(dotclk, pipe_downscale);
3954 3955

	if (pipe_max_pixel_rate < crtc_clock) {
3956
		DRM_DEBUG_KMS("Max supported pixel clock with scaling exceeded\n");
3957 3958 3959 3960 3961 3962
		return -EINVAL;
	}

	return 0;
}

3963
static unsigned int
3964 3965 3966
skl_plane_relative_data_rate(const struct intel_crtc_state *cstate,
			     const struct drm_plane_state *pstate,
			     int y)
3967
{
3968
	struct intel_plane *plane = to_intel_plane(pstate->plane);
3969
	struct intel_plane_state *intel_pstate = to_intel_plane_state(pstate);
3970
	uint32_t data_rate;
3971
	uint32_t width = 0, height = 0;
3972 3973
	struct drm_framebuffer *fb;
	u32 format;
3974
	uint_fixed_16_16_t down_scale_amount;
3975

3976
	if (!intel_pstate->base.visible)
3977
		return 0;
3978 3979

	fb = pstate->fb;
V
Ville Syrjälä 已提交
3980
	format = fb->format->format;
3981

3982
	if (plane->id == PLANE_CURSOR)
3983 3984 3985
		return 0;
	if (y && format != DRM_FORMAT_NV12)
		return 0;
3986

3987 3988 3989 3990 3991
	/*
	 * Src coordinates are already rotated by 270 degrees for
	 * the 90/270 degree plane rotation cases (to match the
	 * GTT mapping), hence no need to account for rotation here.
	 */
3992 3993
	width = drm_rect_width(&intel_pstate->base.src) >> 16;
	height = drm_rect_height(&intel_pstate->base.src) >> 16;
3994

3995
	/* for planar format */
3996
	if (format == DRM_FORMAT_NV12) {
3997
		if (y)  /* y-plane data rate */
3998
			data_rate = width * height *
3999
				fb->format->cpp[0];
4000
		else    /* uv-plane data rate */
4001
			data_rate = (width / 2) * (height / 2) *
4002
				fb->format->cpp[1];
4003 4004
	} else {
		/* for packed formats */
4005
		data_rate = width * height * fb->format->cpp[0];
4006 4007
	}

4008
	down_scale_amount = skl_plane_downscale_amount(cstate, intel_pstate);
4009

4010
	return mul_round_up_u32_fixed16(data_rate, down_scale_amount);
4011 4012 4013 4014 4015 4016 4017 4018
}

/*
 * We don't overflow 32 bits. Worst case is 3 planes enabled, each fetching
 * a 8192x4096@32bpp framebuffer:
 *   3 * 4096 * 8192  * 4 < 2^32
 */
static unsigned int
4019 4020 4021
skl_get_total_relative_data_rate(struct intel_crtc_state *intel_cstate,
				 unsigned *plane_data_rate,
				 unsigned *plane_y_data_rate)
4022
{
4023 4024
	struct drm_crtc_state *cstate = &intel_cstate->base;
	struct drm_atomic_state *state = cstate->state;
4025 4026
	struct drm_plane *plane;
	const struct drm_plane_state *pstate;
4027
	unsigned int total_data_rate = 0;
4028 4029 4030

	if (WARN_ON(!state))
		return 0;
4031

4032
	/* Calculate and cache data rate for each plane */
4033
	drm_atomic_crtc_state_for_each_plane_state(plane, pstate, cstate) {
4034 4035
		enum plane_id plane_id = to_intel_plane(plane)->id;
		unsigned int rate;
4036 4037 4038 4039

		/* packed/uv */
		rate = skl_plane_relative_data_rate(intel_cstate,
						    pstate, 0);
4040
		plane_data_rate[plane_id] = rate;
4041 4042

		total_data_rate += rate;
4043 4044 4045 4046

		/* y-plane */
		rate = skl_plane_relative_data_rate(intel_cstate,
						    pstate, 1);
4047
		plane_y_data_rate[plane_id] = rate;
4048

4049
		total_data_rate += rate;
4050 4051 4052 4053 4054
	}

	return total_data_rate;
}

4055 4056 4057 4058 4059 4060 4061 4062 4063 4064 4065 4066 4067 4068
static uint16_t
skl_ddb_min_alloc(const struct drm_plane_state *pstate,
		  const int y)
{
	struct drm_framebuffer *fb = pstate->fb;
	struct intel_plane_state *intel_pstate = to_intel_plane_state(pstate);
	uint32_t src_w, src_h;
	uint32_t min_scanlines = 8;
	uint8_t plane_bpp;

	if (WARN_ON(!fb))
		return 0;

	/* For packed formats, no y-plane, return 0 */
V
Ville Syrjälä 已提交
4069
	if (y && fb->format->format != DRM_FORMAT_NV12)
4070 4071 4072
		return 0;

	/* For Non Y-tile return 8-blocks */
V
Ville Syrjälä 已提交
4073 4074
	if (fb->modifier != I915_FORMAT_MOD_Y_TILED &&
	    fb->modifier != I915_FORMAT_MOD_Yf_TILED)
4075 4076
		return 8;

4077 4078 4079 4080 4081
	/*
	 * Src coordinates are already rotated by 270 degrees for
	 * the 90/270 degree plane rotation cases (to match the
	 * GTT mapping), hence no need to account for rotation here.
	 */
4082 4083
	src_w = drm_rect_width(&intel_pstate->base.src) >> 16;
	src_h = drm_rect_height(&intel_pstate->base.src) >> 16;
4084 4085

	/* Halve UV plane width and height for NV12 */
V
Ville Syrjälä 已提交
4086
	if (fb->format->format == DRM_FORMAT_NV12 && !y) {
4087 4088 4089 4090
		src_w /= 2;
		src_h /= 2;
	}

V
Ville Syrjälä 已提交
4091
	if (fb->format->format == DRM_FORMAT_NV12 && !y)
4092
		plane_bpp = fb->format->cpp[1];
4093
	else
4094
		plane_bpp = fb->format->cpp[0];
4095

4096
	if (drm_rotation_90_or_270(pstate->rotation)) {
4097 4098 4099 4100 4101 4102 4103 4104 4105 4106 4107 4108 4109 4110 4111 4112 4113 4114 4115 4116 4117 4118 4119
		switch (plane_bpp) {
		case 1:
			min_scanlines = 32;
			break;
		case 2:
			min_scanlines = 16;
			break;
		case 4:
			min_scanlines = 8;
			break;
		case 8:
			min_scanlines = 4;
			break;
		default:
			WARN(1, "Unsupported pixel depth %u for rotation",
			     plane_bpp);
			min_scanlines = 32;
		}
	}

	return DIV_ROUND_UP((4 * src_w * plane_bpp), 512) * min_scanlines/4 + 3;
}

4120 4121 4122 4123 4124 4125 4126 4127
static void
skl_ddb_calc_min(const struct intel_crtc_state *cstate, int num_active,
		 uint16_t *minimum, uint16_t *y_minimum)
{
	const struct drm_plane_state *pstate;
	struct drm_plane *plane;

	drm_atomic_crtc_state_for_each_plane_state(plane, pstate, &cstate->base) {
4128
		enum plane_id plane_id = to_intel_plane(plane)->id;
4129

4130
		if (plane_id == PLANE_CURSOR)
4131 4132 4133 4134 4135
			continue;

		if (!pstate->visible)
			continue;

4136 4137
		minimum[plane_id] = skl_ddb_min_alloc(pstate, 0);
		y_minimum[plane_id] = skl_ddb_min_alloc(pstate, 1);
4138 4139 4140 4141 4142
	}

	minimum[PLANE_CURSOR] = skl_cursor_allocation(num_active);
}

4143
static int
4144
skl_allocate_pipe_ddb(struct intel_crtc_state *cstate,
4145 4146
		      struct skl_ddb_allocation *ddb /* out */)
{
4147
	struct drm_atomic_state *state = cstate->base.state;
4148
	struct drm_crtc *crtc = cstate->base.crtc;
4149 4150 4151
	struct drm_device *dev = crtc->dev;
	struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
	enum pipe pipe = intel_crtc->pipe;
4152
	struct skl_ddb_entry *alloc = &cstate->wm.skl.ddb;
4153
	uint16_t alloc_size, start;
4154 4155
	uint16_t minimum[I915_MAX_PLANES] = {};
	uint16_t y_minimum[I915_MAX_PLANES] = {};
4156
	unsigned int total_data_rate;
4157
	enum plane_id plane_id;
4158
	int num_active;
4159 4160
	unsigned plane_data_rate[I915_MAX_PLANES] = {};
	unsigned plane_y_data_rate[I915_MAX_PLANES] = {};
4161
	uint16_t total_min_blocks = 0;
4162

4163 4164 4165 4166
	/* Clear the partitioning for disabled planes. */
	memset(ddb->plane[pipe], 0, sizeof(ddb->plane[pipe]));
	memset(ddb->y_plane[pipe], 0, sizeof(ddb->y_plane[pipe]));

4167 4168 4169
	if (WARN_ON(!state))
		return 0;

4170
	if (!cstate->base.active) {
4171
		alloc->start = alloc->end = 0;
4172 4173 4174
		return 0;
	}

4175
	skl_ddb_get_pipe_allocation_limits(dev, cstate, alloc, &num_active);
4176
	alloc_size = skl_ddb_entry_size(alloc);
4177
	if (alloc_size == 0)
4178
		return 0;
4179

4180
	skl_ddb_calc_min(cstate, num_active, minimum, y_minimum);
4181

4182 4183 4184 4185 4186
	/*
	 * 1. Allocate the mininum required blocks for each active plane
	 * and allocate the cursor, it doesn't require extra allocation
	 * proportional to the data rate.
	 */
4187

4188
	for_each_plane_id_on_crtc(intel_crtc, plane_id) {
4189 4190
		total_min_blocks += minimum[plane_id];
		total_min_blocks += y_minimum[plane_id];
4191 4192
	}

4193 4194 4195 4196 4197 4198 4199
	if (total_min_blocks > alloc_size) {
		DRM_DEBUG_KMS("Requested display configuration exceeds system DDB limitations");
		DRM_DEBUG_KMS("minimum required %d/%d\n", total_min_blocks,
							alloc_size);
		return -EINVAL;
	}

4200 4201
	alloc_size -= total_min_blocks;
	ddb->plane[pipe][PLANE_CURSOR].start = alloc->end - minimum[PLANE_CURSOR];
4202 4203
	ddb->plane[pipe][PLANE_CURSOR].end = alloc->end;

4204
	/*
4205 4206
	 * 2. Distribute the remaining space in proportion to the amount of
	 * data each plane needs to fetch from memory.
4207 4208 4209
	 *
	 * FIXME: we may not allocate every single block here.
	 */
4210 4211 4212
	total_data_rate = skl_get_total_relative_data_rate(cstate,
							   plane_data_rate,
							   plane_y_data_rate);
4213
	if (total_data_rate == 0)
4214
		return 0;
4215

4216
	start = alloc->start;
4217
	for_each_plane_id_on_crtc(intel_crtc, plane_id) {
4218
		unsigned int data_rate, y_data_rate;
4219
		uint16_t plane_blocks, y_plane_blocks = 0;
4220

4221
		if (plane_id == PLANE_CURSOR)
4222 4223
			continue;

4224
		data_rate = plane_data_rate[plane_id];
4225 4226

		/*
4227
		 * allocation for (packed formats) or (uv-plane part of planar format):
4228 4229 4230
		 * promote the expression to 64 bits to avoid overflowing, the
		 * result is < available as data_rate / total_data_rate < 1
		 */
4231 4232 4233
		plane_blocks = minimum[plane_id];
		plane_blocks += div_u64((uint64_t)alloc_size * data_rate,
					total_data_rate);
4234

4235 4236
		/* Leave disabled planes at (0,0) */
		if (data_rate) {
4237 4238
			ddb->plane[pipe][plane_id].start = start;
			ddb->plane[pipe][plane_id].end = start + plane_blocks;
4239
		}
4240

4241 4242
		start += plane_blocks;

4243 4244 4245
		/*
		 * allocation for y_plane part of planar format:
		 */
4246
		y_data_rate = plane_y_data_rate[plane_id];
4247

4248 4249 4250 4251
		y_plane_blocks = y_minimum[plane_id];
		y_plane_blocks += div_u64((uint64_t)alloc_size * y_data_rate,
					total_data_rate);

4252
		if (y_data_rate) {
4253 4254
			ddb->y_plane[pipe][plane_id].start = start;
			ddb->y_plane[pipe][plane_id].end = start + y_plane_blocks;
4255
		}
4256 4257

		start += y_plane_blocks;
4258 4259
	}

4260
	return 0;
4261 4262
}

4263 4264
/*
 * The max latency should be 257 (max the punit can code is 255 and we add 2us
4265
 * for the read latency) and cpp should always be <= 8, so that
4266 4267 4268
 * should allow pixel_rate up to ~2 GHz which seems sufficient since max
 * 2xcdclk is 1350 MHz and the pixel rate should never exceed that.
*/
4269 4270
static uint_fixed_16_16_t skl_wm_method1(uint32_t pixel_rate, uint8_t cpp,
					 uint32_t latency)
4271
{
4272 4273
	uint32_t wm_intermediate_val;
	uint_fixed_16_16_t ret;
4274 4275

	if (latency == 0)
4276
		return FP_16_16_MAX;
4277

4278
	wm_intermediate_val = latency * pixel_rate * cpp;
4279
	ret = div_fixed16(wm_intermediate_val, 1000 * 512);
4280 4281 4282
	return ret;
}

4283 4284 4285 4286
static uint_fixed_16_16_t skl_wm_method2(uint32_t pixel_rate,
			uint32_t pipe_htotal,
			uint32_t latency,
			uint_fixed_16_16_t plane_blocks_per_line)
4287
{
4288
	uint32_t wm_intermediate_val;
4289
	uint_fixed_16_16_t ret;
4290 4291

	if (latency == 0)
4292
		return FP_16_16_MAX;
4293 4294

	wm_intermediate_val = latency * pixel_rate;
4295 4296
	wm_intermediate_val = DIV_ROUND_UP(wm_intermediate_val,
					   pipe_htotal * 1000);
4297
	ret = mul_u32_fixed16(wm_intermediate_val, plane_blocks_per_line);
4298 4299 4300
	return ret;
}

4301 4302 4303 4304 4305 4306 4307 4308
static uint_fixed_16_16_t
intel_get_linetime_us(struct intel_crtc_state *cstate)
{
	uint32_t pixel_rate;
	uint32_t crtc_htotal;
	uint_fixed_16_16_t linetime_us;

	if (!cstate->base.active)
4309
		return u32_to_fixed16(0);
4310 4311 4312 4313

	pixel_rate = cstate->pixel_rate;

	if (WARN_ON(pixel_rate == 0))
4314
		return u32_to_fixed16(0);
4315 4316

	crtc_htotal = cstate->base.adjusted_mode.crtc_htotal;
4317
	linetime_us = div_fixed16(crtc_htotal * 1000, pixel_rate);
4318 4319 4320 4321

	return linetime_us;
}

4322 4323 4324
static uint32_t
skl_adjusted_plane_pixel_rate(const struct intel_crtc_state *cstate,
			      const struct intel_plane_state *pstate)
4325 4326
{
	uint64_t adjusted_pixel_rate;
4327
	uint_fixed_16_16_t downscale_amount;
4328 4329

	/* Shouldn't reach here on disabled planes... */
4330
	if (WARN_ON(!intel_wm_plane_visible(cstate, pstate)))
4331 4332 4333 4334 4335 4336
		return 0;

	/*
	 * Adjusted plane pixel rate is just the pipe's adjusted pixel rate
	 * with additional adjustments for plane-specific scaling.
	 */
4337
	adjusted_pixel_rate = cstate->pixel_rate;
4338
	downscale_amount = skl_plane_downscale_amount(cstate, pstate);
4339

4340 4341
	return mul_round_up_u32_fixed16(adjusted_pixel_rate,
					    downscale_amount);
4342 4343
}

4344 4345
static int skl_compute_plane_wm(const struct drm_i915_private *dev_priv,
				struct intel_crtc_state *cstate,
4346
				const struct intel_plane_state *intel_pstate,
4347
				uint16_t ddb_allocation,
4348 4349
				int level,
				uint16_t *out_blocks, /* out */
4350 4351
				uint8_t *out_lines, /* out */
				bool *enabled /* out */)
4352
{
4353
	struct intel_plane *plane = to_intel_plane(intel_pstate->base.plane);
4354 4355
	const struct drm_plane_state *pstate = &intel_pstate->base;
	const struct drm_framebuffer *fb = pstate->fb;
4356
	uint32_t latency = dev_priv->wm.skl_latency[level];
4357 4358 4359 4360 4361
	uint_fixed_16_16_t method1, method2;
	uint_fixed_16_16_t plane_blocks_per_line;
	uint_fixed_16_16_t selected_result;
	uint32_t interm_pbpl;
	uint32_t plane_bytes_per_line;
4362
	uint32_t res_blocks, res_lines;
4363
	uint8_t cpp;
4364
	uint32_t width = 0;
4365
	uint32_t plane_pixel_rate;
4366 4367
	uint_fixed_16_16_t y_tile_minimum;
	uint32_t y_min_scanlines;
4368 4369 4370
	struct intel_atomic_state *state =
		to_intel_atomic_state(cstate->base.state);
	bool apply_memory_bw_wa = skl_needs_memory_bw_wa(state);
4371
	bool y_tiled, x_tiled;
4372

4373
	if (latency == 0 ||
4374 4375
	    !intel_wm_plane_visible(cstate, intel_pstate)) {
		*enabled = false;
4376
		return 0;
4377
	}
4378

4379 4380 4381 4382
	y_tiled = fb->modifier == I915_FORMAT_MOD_Y_TILED ||
		  fb->modifier == I915_FORMAT_MOD_Yf_TILED;
	x_tiled = fb->modifier == I915_FORMAT_MOD_X_TILED;

4383 4384 4385
	/* Display WA #1141: kbl,cfl */
	if ((IS_KABYLAKE(dev_priv) || IS_COFFEELAKE(dev_priv)) &&
	    dev_priv->ipc_enabled)
4386 4387
		latency += 4;

4388
	if (apply_memory_bw_wa && x_tiled)
4389 4390
		latency += 15;

4391 4392 4393
	if (plane->id == PLANE_CURSOR) {
		width = intel_pstate->base.crtc_w;
	} else {
4394 4395 4396 4397 4398
		/*
		 * Src coordinates are already rotated by 270 degrees for
		 * the 90/270 degree plane rotation cases (to match the
		 * GTT mapping), hence no need to account for rotation here.
		 */
4399 4400
		width = drm_rect_width(&intel_pstate->base.src) >> 16;
	}
4401

4402 4403
	cpp = (fb->format->format == DRM_FORMAT_NV12) ? fb->format->cpp[1] :
							fb->format->cpp[0];
4404 4405
	plane_pixel_rate = skl_adjusted_plane_pixel_rate(cstate, intel_pstate);

4406
	if (drm_rotation_90_or_270(pstate->rotation)) {
4407 4408 4409 4410 4411 4412 4413 4414 4415 4416 4417

		switch (cpp) {
		case 1:
			y_min_scanlines = 16;
			break;
		case 2:
			y_min_scanlines = 8;
			break;
		case 4:
			y_min_scanlines = 4;
			break;
4418 4419 4420
		default:
			MISSING_CASE(cpp);
			return -EINVAL;
4421 4422 4423 4424 4425
		}
	} else {
		y_min_scanlines = 4;
	}

4426 4427 4428
	if (apply_memory_bw_wa)
		y_min_scanlines *= 2;

4429
	plane_bytes_per_line = width * cpp;
4430
	if (y_tiled) {
4431 4432
		interm_pbpl = DIV_ROUND_UP(plane_bytes_per_line *
					   y_min_scanlines, 512);
4433
		plane_blocks_per_line = div_fixed16(interm_pbpl,
4434
							y_min_scanlines);
4435
	} else if (x_tiled) {
4436
		interm_pbpl = DIV_ROUND_UP(plane_bytes_per_line, 512);
4437
		plane_blocks_per_line = u32_to_fixed16(interm_pbpl);
4438
	} else {
4439
		interm_pbpl = DIV_ROUND_UP(plane_bytes_per_line, 512) + 1;
4440
		plane_blocks_per_line = u32_to_fixed16(interm_pbpl);
4441 4442
	}

4443 4444
	method1 = skl_wm_method1(plane_pixel_rate, cpp, latency);
	method2 = skl_wm_method2(plane_pixel_rate,
4445
				 cstate->base.adjusted_mode.crtc_htotal,
4446
				 latency,
4447
				 plane_blocks_per_line);
4448

4449 4450
	y_tile_minimum = mul_u32_fixed16(y_min_scanlines,
					 plane_blocks_per_line);
4451

4452
	if (y_tiled) {
4453
		selected_result = max_fixed16(method2, y_tile_minimum);
4454
	} else {
4455 4456
		uint32_t linetime_us;

4457
		linetime_us = fixed16_to_u32_round_up(
4458
				intel_get_linetime_us(cstate));
4459 4460 4461
		if ((cpp * cstate->base.adjusted_mode.crtc_htotal / 512 < 1) &&
		    (plane_bytes_per_line / 512 < 1))
			selected_result = method2;
4462 4463
		else if (ddb_allocation >=
			 fixed16_to_u32_round_up(plane_blocks_per_line))
4464
			selected_result = min_fixed16(method1, method2);
4465
		else if (latency >= linetime_us)
4466
			selected_result = min_fixed16(method1, method2);
4467 4468 4469
		else
			selected_result = method1;
	}
4470

4471
	res_blocks = fixed16_to_u32_round_up(selected_result) + 1;
4472 4473
	res_lines = div_round_up_fixed16(selected_result,
					 plane_blocks_per_line);
4474

4475
	if (level >= 1 && level <= 7) {
4476
		if (y_tiled) {
4477
			res_blocks += fixed16_to_u32_round_up(y_tile_minimum);
4478
			res_lines += y_min_scanlines;
4479
		} else {
4480
			res_blocks++;
4481
		}
4482
	}
4483

4484 4485
	if (res_blocks >= ddb_allocation || res_lines > 31) {
		*enabled = false;
4486

4487 4488 4489 4490 4491 4492 4493 4494 4495 4496 4497 4498 4499 4500 4501
		/*
		 * If there are no valid level 0 watermarks, then we can't
		 * support this display configuration.
		 */
		if (level) {
			return 0;
		} else {
			struct drm_plane *plane = pstate->plane;

			DRM_DEBUG_KMS("Requested display configuration exceeds system watermark limitations\n");
			DRM_DEBUG_KMS("[PLANE:%d:%s] blocks required = %u/%u, lines required = %u/31\n",
				      plane->base.id, plane->name,
				      res_blocks, ddb_allocation, res_lines);
			return -EINVAL;
		}
4502
	}
4503 4504 4505

	*out_blocks = res_blocks;
	*out_lines = res_lines;
4506
	*enabled = true;
4507

4508
	return 0;
4509 4510
}

4511
static int
4512
skl_compute_wm_levels(const struct drm_i915_private *dev_priv,
4513
		      struct skl_ddb_allocation *ddb,
4514 4515 4516
		      struct intel_crtc_state *cstate,
		      const struct intel_plane_state *intel_pstate,
		      struct skl_plane_wm *wm)
4517
{
4518 4519 4520 4521 4522
	struct intel_crtc *intel_crtc = to_intel_crtc(cstate->base.crtc);
	struct drm_plane *plane = intel_pstate->base.plane;
	struct intel_plane *intel_plane = to_intel_plane(plane);
	uint16_t ddb_blocks;
	enum pipe pipe = intel_crtc->pipe;
4523
	int level, max_level = ilk_wm_max_level(dev_priv);
4524
	int ret;
L
Lyude 已提交
4525

4526 4527
	if (WARN_ON(!intel_pstate->base.fb))
		return -EINVAL;
4528

4529 4530
	ddb_blocks = skl_ddb_entry_size(&ddb->plane[pipe][intel_plane->id]);

4531 4532 4533 4534 4535 4536
	for (level = 0; level <= max_level; level++) {
		struct skl_wm_level *result = &wm->wm[level];

		ret = skl_compute_plane_wm(dev_priv,
					   cstate,
					   intel_pstate,
4537
					   ddb_blocks,
4538 4539
					   level,
					   &result->plane_res_b,
4540 4541
					   &result->plane_res_l,
					   &result->plane_en);
4542 4543 4544
		if (ret)
			return ret;
	}
4545 4546

	return 0;
4547 4548
}

4549
static uint32_t
4550
skl_compute_linetime_wm(struct intel_crtc_state *cstate)
4551
{
M
Mahesh Kumar 已提交
4552 4553
	struct drm_atomic_state *state = cstate->base.state;
	struct drm_i915_private *dev_priv = to_i915(state->dev);
4554
	uint_fixed_16_16_t linetime_us;
M
Mahesh Kumar 已提交
4555
	uint32_t linetime_wm;
4556

4557
	linetime_us = intel_get_linetime_us(cstate);
4558

4559
	if (is_fixed16_zero(linetime_us))
4560
		return 0;
4561

4562
	linetime_wm = fixed16_to_u32_round_up(mul_u32_fixed16(8, linetime_us));
M
Mahesh Kumar 已提交
4563 4564 4565 4566 4567 4568

	/* Display WA #1135: bxt. */
	if (IS_BROXTON(dev_priv) && dev_priv->ipc_enabled)
		linetime_wm = DIV_ROUND_UP(linetime_wm, 2);

	return linetime_wm;
4569 4570
}

4571
static void skl_compute_transition_wm(struct intel_crtc_state *cstate,
4572
				      struct skl_wm_level *trans_wm /* out */)
4573
{
4574
	if (!cstate->base.active)
4575
		return;
4576 4577

	/* Until we know more, just disable transition WMs */
L
Lyude 已提交
4578
	trans_wm->plane_en = false;
4579 4580
}

4581 4582 4583
static int skl_build_pipe_wm(struct intel_crtc_state *cstate,
			     struct skl_ddb_allocation *ddb,
			     struct skl_pipe_wm *pipe_wm)
4584
{
4585
	struct drm_device *dev = cstate->base.crtc->dev;
4586
	struct drm_crtc_state *crtc_state = &cstate->base;
4587
	const struct drm_i915_private *dev_priv = to_i915(dev);
4588 4589
	struct drm_plane *plane;
	const struct drm_plane_state *pstate;
L
Lyude 已提交
4590
	struct skl_plane_wm *wm;
4591
	int ret;
4592

L
Lyude 已提交
4593 4594 4595 4596 4597 4598
	/*
	 * We'll only calculate watermarks for planes that are actually
	 * enabled, so make sure all other planes are set as disabled.
	 */
	memset(pipe_wm->planes, 0, sizeof(pipe_wm->planes));

4599 4600 4601 4602 4603 4604
	drm_atomic_crtc_state_for_each_plane_state(plane, pstate, crtc_state) {
		const struct intel_plane_state *intel_pstate =
						to_intel_plane_state(pstate);
		enum plane_id plane_id = to_intel_plane(plane)->id;

		wm = &pipe_wm->planes[plane_id];
L
Lyude 已提交
4605

4606 4607
		ret = skl_compute_wm_levels(dev_priv, ddb, cstate,
					    intel_pstate, wm);
4608 4609
		if (ret)
			return ret;
L
Lyude 已提交
4610
		skl_compute_transition_wm(cstate, &wm->trans_wm);
4611
	}
4612
	pipe_wm->linetime = skl_compute_linetime_wm(cstate);
4613

4614
	return 0;
4615 4616
}

4617 4618
static void skl_ddb_entry_write(struct drm_i915_private *dev_priv,
				i915_reg_t reg,
4619 4620 4621 4622 4623 4624 4625 4626
				const struct skl_ddb_entry *entry)
{
	if (entry->end)
		I915_WRITE(reg, (entry->end - 1) << 16 | entry->start);
	else
		I915_WRITE(reg, 0);
}

4627 4628 4629 4630 4631 4632 4633 4634 4635 4636 4637 4638 4639 4640 4641
static void skl_write_wm_level(struct drm_i915_private *dev_priv,
			       i915_reg_t reg,
			       const struct skl_wm_level *level)
{
	uint32_t val = 0;

	if (level->plane_en) {
		val |= PLANE_WM_EN;
		val |= level->plane_res_b;
		val |= level->plane_res_l << PLANE_WM_LINES_SHIFT;
	}

	I915_WRITE(reg, val);
}

4642 4643 4644
static void skl_write_plane_wm(struct intel_crtc *intel_crtc,
			       const struct skl_plane_wm *wm,
			       const struct skl_ddb_allocation *ddb,
4645
			       enum plane_id plane_id)
4646 4647 4648 4649
{
	struct drm_crtc *crtc = &intel_crtc->base;
	struct drm_device *dev = crtc->dev;
	struct drm_i915_private *dev_priv = to_i915(dev);
4650
	int level, max_level = ilk_wm_max_level(dev_priv);
4651 4652 4653
	enum pipe pipe = intel_crtc->pipe;

	for (level = 0; level <= max_level; level++) {
4654
		skl_write_wm_level(dev_priv, PLANE_WM(pipe, plane_id, level),
4655
				   &wm->wm[level]);
4656
	}
4657
	skl_write_wm_level(dev_priv, PLANE_WM_TRANS(pipe, plane_id),
4658
			   &wm->trans_wm);
4659

4660 4661 4662 4663
	skl_ddb_entry_write(dev_priv, PLANE_BUF_CFG(pipe, plane_id),
			    &ddb->plane[pipe][plane_id]);
	skl_ddb_entry_write(dev_priv, PLANE_NV12_BUF_CFG(pipe, plane_id),
			    &ddb->y_plane[pipe][plane_id]);
4664 4665
}

4666 4667 4668
static void skl_write_cursor_wm(struct intel_crtc *intel_crtc,
				const struct skl_plane_wm *wm,
				const struct skl_ddb_allocation *ddb)
4669 4670 4671 4672
{
	struct drm_crtc *crtc = &intel_crtc->base;
	struct drm_device *dev = crtc->dev;
	struct drm_i915_private *dev_priv = to_i915(dev);
4673
	int level, max_level = ilk_wm_max_level(dev_priv);
4674 4675 4676
	enum pipe pipe = intel_crtc->pipe;

	for (level = 0; level <= max_level; level++) {
4677 4678
		skl_write_wm_level(dev_priv, CUR_WM(pipe, level),
				   &wm->wm[level]);
4679
	}
4680
	skl_write_wm_level(dev_priv, CUR_WM_TRANS(pipe), &wm->trans_wm);
4681

4682
	skl_ddb_entry_write(dev_priv, CUR_BUF_CFG(pipe),
4683
			    &ddb->plane[pipe][PLANE_CURSOR]);
4684 4685
}

4686 4687 4688 4689 4690 4691 4692 4693 4694 4695 4696 4697 4698 4699
bool skl_wm_level_equals(const struct skl_wm_level *l1,
			 const struct skl_wm_level *l2)
{
	if (l1->plane_en != l2->plane_en)
		return false;

	/* If both planes aren't enabled, the rest shouldn't matter */
	if (!l1->plane_en)
		return true;

	return (l1->plane_res_l == l2->plane_res_l &&
		l1->plane_res_b == l2->plane_res_b);
}

4700 4701
static inline bool skl_ddb_entries_overlap(const struct skl_ddb_entry *a,
					   const struct skl_ddb_entry *b)
4702
{
4703
	return a->start < b->end && b->start < a->end;
4704 4705
}

4706 4707 4708
bool skl_ddb_allocation_overlaps(const struct skl_ddb_entry **entries,
				 const struct skl_ddb_entry *ddb,
				 int ignore)
4709
{
4710
	int i;
4711

4712 4713 4714
	for (i = 0; i < I915_MAX_PIPES; i++)
		if (i != ignore && entries[i] &&
		    skl_ddb_entries_overlap(ddb, entries[i]))
4715
			return true;
4716

4717
	return false;
4718 4719
}

4720
static int skl_update_pipe_wm(struct drm_crtc_state *cstate,
4721
			      const struct skl_pipe_wm *old_pipe_wm,
4722
			      struct skl_pipe_wm *pipe_wm, /* out */
4723
			      struct skl_ddb_allocation *ddb, /* out */
4724
			      bool *changed /* out */)
4725
{
4726
	struct intel_crtc_state *intel_cstate = to_intel_crtc_state(cstate);
4727
	int ret;
4728

4729 4730 4731
	ret = skl_build_pipe_wm(intel_cstate, ddb, pipe_wm);
	if (ret)
		return ret;
4732

4733
	if (!memcmp(old_pipe_wm, pipe_wm, sizeof(*pipe_wm)))
4734 4735 4736
		*changed = false;
	else
		*changed = true;
4737

4738
	return 0;
4739 4740
}

4741 4742 4743 4744 4745 4746 4747
static uint32_t
pipes_modified(struct drm_atomic_state *state)
{
	struct drm_crtc *crtc;
	struct drm_crtc_state *cstate;
	uint32_t i, ret = 0;

4748
	for_each_new_crtc_in_state(state, crtc, cstate, i)
4749 4750 4751 4752 4753
		ret |= drm_crtc_mask(crtc);

	return ret;
}

4754
static int
4755 4756 4757 4758 4759 4760 4761 4762 4763 4764 4765 4766 4767 4768 4769 4770 4771 4772 4773 4774 4775 4776 4777 4778 4779 4780 4781 4782 4783 4784 4785 4786 4787 4788 4789
skl_ddb_add_affected_planes(struct intel_crtc_state *cstate)
{
	struct drm_atomic_state *state = cstate->base.state;
	struct drm_device *dev = state->dev;
	struct drm_crtc *crtc = cstate->base.crtc;
	struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
	struct drm_i915_private *dev_priv = to_i915(dev);
	struct intel_atomic_state *intel_state = to_intel_atomic_state(state);
	struct skl_ddb_allocation *new_ddb = &intel_state->wm_results.ddb;
	struct skl_ddb_allocation *cur_ddb = &dev_priv->wm.skl_hw.ddb;
	struct drm_plane_state *plane_state;
	struct drm_plane *plane;
	enum pipe pipe = intel_crtc->pipe;

	WARN_ON(!drm_atomic_get_existing_crtc_state(state, crtc));

	drm_for_each_plane_mask(plane, dev, cstate->base.plane_mask) {
		enum plane_id plane_id = to_intel_plane(plane)->id;

		if (skl_ddb_entry_equal(&cur_ddb->plane[pipe][plane_id],
					&new_ddb->plane[pipe][plane_id]) &&
		    skl_ddb_entry_equal(&cur_ddb->y_plane[pipe][plane_id],
					&new_ddb->y_plane[pipe][plane_id]))
			continue;

		plane_state = drm_atomic_get_plane_state(state, plane);
		if (IS_ERR(plane_state))
			return PTR_ERR(plane_state);
	}

	return 0;
}

static int
skl_compute_ddb(struct drm_atomic_state *state)
4790 4791 4792 4793 4794
{
	struct drm_device *dev = state->dev;
	struct drm_i915_private *dev_priv = to_i915(dev);
	struct intel_atomic_state *intel_state = to_intel_atomic_state(state);
	struct intel_crtc *intel_crtc;
4795
	struct skl_ddb_allocation *ddb = &intel_state->wm_results.ddb;
4796
	uint32_t realloc_pipes = pipes_modified(state);
4797 4798 4799 4800 4801 4802 4803 4804
	int ret;

	/*
	 * If this is our first atomic update following hardware readout,
	 * we can't trust the DDB that the BIOS programmed for us.  Let's
	 * pretend that all pipes switched active status so that we'll
	 * ensure a full DDB recompute.
	 */
4805 4806 4807 4808 4809 4810
	if (dev_priv->wm.distrust_bios_wm) {
		ret = drm_modeset_lock(&dev->mode_config.connection_mutex,
				       state->acquire_ctx);
		if (ret)
			return ret;

4811 4812
		intel_state->active_pipe_changes = ~0;

4813 4814 4815 4816 4817 4818 4819 4820 4821 4822
		/*
		 * We usually only initialize intel_state->active_crtcs if we
		 * we're doing a modeset; make sure this field is always
		 * initialized during the sanitization process that happens
		 * on the first commit too.
		 */
		if (!intel_state->modeset)
			intel_state->active_crtcs = dev_priv->active_crtcs;
	}

4823 4824 4825 4826 4827 4828 4829 4830 4831 4832 4833 4834 4835
	/*
	 * If the modeset changes which CRTC's are active, we need to
	 * recompute the DDB allocation for *all* active pipes, even
	 * those that weren't otherwise being modified in any way by this
	 * atomic commit.  Due to the shrinking of the per-pipe allocations
	 * when new active CRTC's are added, it's possible for a pipe that
	 * we were already using and aren't changing at all here to suddenly
	 * become invalid if its DDB needs exceeds its new allocation.
	 *
	 * Note that if we wind up doing a full DDB recompute, we can't let
	 * any other display updates race with this transaction, so we need
	 * to grab the lock on *all* CRTC's.
	 */
4836
	if (intel_state->active_pipe_changes) {
4837
		realloc_pipes = ~0;
4838 4839
		intel_state->wm_results.dirty_pipes = ~0;
	}
4840

4841 4842 4843 4844 4845 4846
	/*
	 * We're not recomputing for the pipes not included in the commit, so
	 * make sure we start with the current state.
	 */
	memcpy(ddb, &dev_priv->wm.skl_hw.ddb, sizeof(*ddb));

4847 4848 4849 4850 4851 4852
	for_each_intel_crtc_mask(dev, intel_crtc, realloc_pipes) {
		struct intel_crtc_state *cstate;

		cstate = intel_atomic_get_crtc_state(state, intel_crtc);
		if (IS_ERR(cstate))
			return PTR_ERR(cstate);
4853 4854 4855 4856 4857 4858 4859 4860

		ret = skl_allocate_pipe_ddb(cstate, ddb);
		if (ret)
			return ret;

		ret = skl_ddb_add_affected_planes(cstate);
		if (ret)
			return ret;
4861 4862 4863 4864 4865
	}

	return 0;
}

4866 4867 4868 4869 4870 4871 4872 4873 4874 4875 4876
static void
skl_copy_wm_for_pipe(struct skl_wm_values *dst,
		     struct skl_wm_values *src,
		     enum pipe pipe)
{
	memcpy(dst->ddb.y_plane[pipe], src->ddb.y_plane[pipe],
	       sizeof(dst->ddb.y_plane[pipe]));
	memcpy(dst->ddb.plane[pipe], src->ddb.plane[pipe],
	       sizeof(dst->ddb.plane[pipe]));
}

4877 4878 4879 4880 4881 4882 4883 4884 4885 4886 4887 4888
static void
skl_print_wm_changes(const struct drm_atomic_state *state)
{
	const struct drm_device *dev = state->dev;
	const struct drm_i915_private *dev_priv = to_i915(dev);
	const struct intel_atomic_state *intel_state =
		to_intel_atomic_state(state);
	const struct drm_crtc *crtc;
	const struct drm_crtc_state *cstate;
	const struct intel_plane *intel_plane;
	const struct skl_ddb_allocation *old_ddb = &dev_priv->wm.skl_hw.ddb;
	const struct skl_ddb_allocation *new_ddb = &intel_state->wm_results.ddb;
4889
	int i;
4890

4891
	for_each_new_crtc_in_state(state, crtc, cstate, i) {
4892 4893
		const struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
		enum pipe pipe = intel_crtc->pipe;
4894

4895
		for_each_intel_plane_on_crtc(dev, intel_crtc, intel_plane) {
4896
			enum plane_id plane_id = intel_plane->id;
4897 4898
			const struct skl_ddb_entry *old, *new;

4899 4900
			old = &old_ddb->plane[pipe][plane_id];
			new = &new_ddb->plane[pipe][plane_id];
4901 4902 4903 4904

			if (skl_ddb_entry_equal(old, new))
				continue;

4905 4906 4907 4908 4909
			DRM_DEBUG_ATOMIC("[PLANE:%d:%s] ddb (%d - %d) -> (%d - %d)\n",
					 intel_plane->base.base.id,
					 intel_plane->base.name,
					 old->start, old->end,
					 new->start, new->end);
4910 4911 4912 4913
		}
	}
}

4914 4915 4916 4917 4918
static int
skl_compute_wm(struct drm_atomic_state *state)
{
	struct drm_crtc *crtc;
	struct drm_crtc_state *cstate;
4919 4920
	struct intel_atomic_state *intel_state = to_intel_atomic_state(state);
	struct skl_wm_values *results = &intel_state->wm_results;
4921
	struct drm_device *dev = state->dev;
4922
	struct skl_pipe_wm *pipe_wm;
4923
	bool changed = false;
4924
	int ret, i;
4925

4926 4927 4928 4929 4930 4931 4932
	/*
	 * When we distrust bios wm we always need to recompute to set the
	 * expected DDB allocations for each CRTC.
	 */
	if (to_i915(dev)->wm.distrust_bios_wm)
		changed = true;

4933 4934 4935 4936 4937 4938 4939 4940
	/*
	 * If this transaction isn't actually touching any CRTC's, don't
	 * bother with watermark calculation.  Note that if we pass this
	 * test, we're guaranteed to hold at least one CRTC state mutex,
	 * which means we can safely use values like dev_priv->active_crtcs
	 * since any racing commits that want to update them would need to
	 * hold _all_ CRTC state mutexes.
	 */
4941
	for_each_new_crtc_in_state(state, crtc, cstate, i)
4942
		changed = true;
4943

4944 4945 4946
	if (!changed)
		return 0;

4947 4948 4949
	/* Clear all dirty flags */
	results->dirty_pipes = 0;

4950
	ret = skl_compute_ddb(state);
4951 4952 4953
	if (ret)
		return ret;

4954 4955 4956 4957 4958 4959 4960 4961 4962 4963
	/*
	 * Calculate WM's for all pipes that are part of this transaction.
	 * Note that the DDB allocation above may have added more CRTC's that
	 * weren't otherwise being modified (and set bits in dirty_pipes) if
	 * pipe allocations had to change.
	 *
	 * FIXME:  Now that we're doing this in the atomic check phase, we
	 * should allow skl_update_pipe_wm() to return failure in cases where
	 * no suitable watermark values can be found.
	 */
4964
	for_each_new_crtc_in_state(state, crtc, cstate, i) {
4965 4966
		struct intel_crtc_state *intel_cstate =
			to_intel_crtc_state(cstate);
4967 4968
		const struct skl_pipe_wm *old_pipe_wm =
			&to_intel_crtc_state(crtc->state)->wm.skl.optimal;
4969 4970

		pipe_wm = &intel_cstate->wm.skl.optimal;
4971 4972
		ret = skl_update_pipe_wm(cstate, old_pipe_wm, pipe_wm,
					 &results->ddb, &changed);
4973 4974 4975 4976 4977 4978 4979 4980 4981 4982 4983 4984 4985
		if (ret)
			return ret;

		if (changed)
			results->dirty_pipes |= drm_crtc_mask(crtc);

		if ((results->dirty_pipes & drm_crtc_mask(crtc)) == 0)
			/* This pipe's WM's did not change */
			continue;

		intel_cstate->update_wm_pre = true;
	}

4986 4987
	skl_print_wm_changes(state);

4988 4989 4990
	return 0;
}

4991 4992 4993 4994 4995 4996
static void skl_atomic_update_crtc_wm(struct intel_atomic_state *state,
				      struct intel_crtc_state *cstate)
{
	struct intel_crtc *crtc = to_intel_crtc(cstate->base.crtc);
	struct drm_i915_private *dev_priv = to_i915(state->base.dev);
	struct skl_pipe_wm *pipe_wm = &cstate->wm.skl.optimal;
4997
	const struct skl_ddb_allocation *ddb = &state->wm_results.ddb;
4998
	enum pipe pipe = crtc->pipe;
4999
	enum plane_id plane_id;
5000 5001 5002

	if (!(state->wm_results.dirty_pipes & drm_crtc_mask(&crtc->base)))
		return;
5003 5004

	I915_WRITE(PIPE_WM_LINETIME(pipe), pipe_wm->linetime);
5005

5006 5007 5008 5009 5010 5011 5012 5013
	for_each_plane_id_on_crtc(crtc, plane_id) {
		if (plane_id != PLANE_CURSOR)
			skl_write_plane_wm(crtc, &pipe_wm->planes[plane_id],
					   ddb, plane_id);
		else
			skl_write_cursor_wm(crtc, &pipe_wm->planes[plane_id],
					    ddb);
	}
5014 5015
}

5016 5017
static void skl_initial_wm(struct intel_atomic_state *state,
			   struct intel_crtc_state *cstate)
5018
{
5019
	struct intel_crtc *intel_crtc = to_intel_crtc(cstate->base.crtc);
5020
	struct drm_device *dev = intel_crtc->base.dev;
5021
	struct drm_i915_private *dev_priv = to_i915(dev);
5022
	struct skl_wm_values *results = &state->wm_results;
5023
	struct skl_wm_values *hw_vals = &dev_priv->wm.skl_hw;
5024
	enum pipe pipe = intel_crtc->pipe;
5025

5026
	if ((results->dirty_pipes & drm_crtc_mask(&intel_crtc->base)) == 0)
5027 5028
		return;

5029
	mutex_lock(&dev_priv->wm.wm_mutex);
5030

5031 5032
	if (cstate->base.active_changed)
		skl_atomic_update_crtc_wm(state, cstate);
5033 5034

	skl_copy_wm_for_pipe(hw_vals, results, pipe);
5035 5036

	mutex_unlock(&dev_priv->wm.wm_mutex);
5037 5038
}

5039 5040 5041 5042 5043 5044 5045 5046 5047 5048 5049 5050 5051 5052 5053 5054 5055 5056
static void ilk_compute_wm_config(struct drm_device *dev,
				  struct intel_wm_config *config)
{
	struct intel_crtc *crtc;

	/* Compute the currently _active_ config */
	for_each_intel_crtc(dev, crtc) {
		const struct intel_pipe_wm *wm = &crtc->wm.active.ilk;

		if (!wm->pipe_enabled)
			continue;

		config->sprites_enabled |= wm->sprites_enabled;
		config->sprites_scaled |= wm->sprites_scaled;
		config->num_pipes_active++;
	}
}

5057
static void ilk_program_watermarks(struct drm_i915_private *dev_priv)
5058
{
5059
	struct drm_device *dev = &dev_priv->drm;
5060
	struct intel_pipe_wm lp_wm_1_2 = {}, lp_wm_5_6 = {}, *best_lp_wm;
5061
	struct ilk_wm_maximums max;
5062
	struct intel_wm_config config = {};
5063
	struct ilk_wm_values results = {};
5064
	enum intel_ddb_partitioning partitioning;
5065

5066 5067 5068 5069
	ilk_compute_wm_config(dev, &config);

	ilk_compute_wm_maximums(dev, 1, &config, INTEL_DDB_PART_1_2, &max);
	ilk_wm_merge(dev, &config, &max, &lp_wm_1_2);
5070 5071

	/* 5/6 split only in single pipe config on IVB+ */
5072
	if (INTEL_GEN(dev_priv) >= 7 &&
5073 5074 5075
	    config.num_pipes_active == 1 && config.sprites_enabled) {
		ilk_compute_wm_maximums(dev, 1, &config, INTEL_DDB_PART_5_6, &max);
		ilk_wm_merge(dev, &config, &max, &lp_wm_5_6);
5076

5077
		best_lp_wm = ilk_find_best_result(dev, &lp_wm_1_2, &lp_wm_5_6);
5078
	} else {
5079
		best_lp_wm = &lp_wm_1_2;
5080 5081
	}

5082
	partitioning = (best_lp_wm == &lp_wm_1_2) ?
5083
		       INTEL_DDB_PART_1_2 : INTEL_DDB_PART_5_6;
5084

5085
	ilk_compute_wm_results(dev, best_lp_wm, partitioning, &results);
5086

5087
	ilk_write_wm_values(dev_priv, &results);
5088 5089
}

5090 5091
static void ilk_initial_watermarks(struct intel_atomic_state *state,
				   struct intel_crtc_state *cstate)
5092
{
5093 5094
	struct drm_i915_private *dev_priv = to_i915(cstate->base.crtc->dev);
	struct intel_crtc *intel_crtc = to_intel_crtc(cstate->base.crtc);
5095

5096
	mutex_lock(&dev_priv->wm.wm_mutex);
5097
	intel_crtc->wm.active.ilk = cstate->wm.ilk.intermediate;
5098 5099 5100
	ilk_program_watermarks(dev_priv);
	mutex_unlock(&dev_priv->wm.wm_mutex);
}
5101

5102 5103
static void ilk_optimize_watermarks(struct intel_atomic_state *state,
				    struct intel_crtc_state *cstate)
5104 5105 5106
{
	struct drm_i915_private *dev_priv = to_i915(cstate->base.crtc->dev);
	struct intel_crtc *intel_crtc = to_intel_crtc(cstate->base.crtc);
5107

5108 5109
	mutex_lock(&dev_priv->wm.wm_mutex);
	if (cstate->wm.need_postvbl_update) {
5110
		intel_crtc->wm.active.ilk = cstate->wm.ilk.optimal;
5111 5112 5113
		ilk_program_watermarks(dev_priv);
	}
	mutex_unlock(&dev_priv->wm.wm_mutex);
5114 5115
}

5116 5117
static inline void skl_wm_level_from_reg_val(uint32_t val,
					     struct skl_wm_level *level)
5118
{
5119 5120 5121 5122
	level->plane_en = val & PLANE_WM_EN;
	level->plane_res_b = val & PLANE_WM_BLOCKS_MASK;
	level->plane_res_l = (val >> PLANE_WM_LINES_SHIFT) &
		PLANE_WM_LINES_MASK;
5123 5124
}

5125 5126
void skl_pipe_wm_get_hw_state(struct drm_crtc *crtc,
			      struct skl_pipe_wm *out)
5127
{
5128
	struct drm_i915_private *dev_priv = to_i915(crtc->dev);
5129 5130
	struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
	enum pipe pipe = intel_crtc->pipe;
5131 5132
	int level, max_level;
	enum plane_id plane_id;
5133
	uint32_t val;
5134

5135
	max_level = ilk_wm_max_level(dev_priv);
5136

5137 5138
	for_each_plane_id_on_crtc(intel_crtc, plane_id) {
		struct skl_plane_wm *wm = &out->planes[plane_id];
5139

5140
		for (level = 0; level <= max_level; level++) {
5141 5142
			if (plane_id != PLANE_CURSOR)
				val = I915_READ(PLANE_WM(pipe, plane_id, level));
5143 5144
			else
				val = I915_READ(CUR_WM(pipe, level));
5145

5146
			skl_wm_level_from_reg_val(val, &wm->wm[level]);
5147 5148
		}

5149 5150
		if (plane_id != PLANE_CURSOR)
			val = I915_READ(PLANE_WM_TRANS(pipe, plane_id));
5151 5152 5153 5154
		else
			val = I915_READ(CUR_WM_TRANS(pipe));

		skl_wm_level_from_reg_val(val, &wm->trans_wm);
5155 5156
	}

5157 5158
	if (!intel_crtc->active)
		return;
5159

5160
	out->linetime = I915_READ(PIPE_WM_LINETIME(pipe));
5161 5162 5163 5164
}

void skl_wm_get_hw_state(struct drm_device *dev)
{
5165
	struct drm_i915_private *dev_priv = to_i915(dev);
5166
	struct skl_wm_values *hw = &dev_priv->wm.skl_hw;
5167
	struct skl_ddb_allocation *ddb = &dev_priv->wm.skl_hw.ddb;
5168
	struct drm_crtc *crtc;
5169 5170
	struct intel_crtc *intel_crtc;
	struct intel_crtc_state *cstate;
5171

5172
	skl_ddb_get_hw_state(dev_priv, ddb);
5173 5174 5175 5176 5177 5178
	list_for_each_entry(crtc, &dev->mode_config.crtc_list, head) {
		intel_crtc = to_intel_crtc(crtc);
		cstate = to_intel_crtc_state(crtc->state);

		skl_pipe_wm_get_hw_state(crtc, &cstate->wm.skl.optimal);

5179
		if (intel_crtc->active)
5180 5181
			hw->dirty_pipes |= drm_crtc_mask(crtc);
	}
5182

5183 5184 5185 5186 5187 5188 5189
	if (dev_priv->active_crtcs) {
		/* Fully recompute DDB on first atomic commit */
		dev_priv->wm.distrust_bios_wm = true;
	} else {
		/* Easy/common case; just sanitize DDB now if everything off */
		memset(ddb, 0, sizeof(*ddb));
	}
5190 5191
}

5192 5193 5194
static void ilk_pipe_wm_get_hw_state(struct drm_crtc *crtc)
{
	struct drm_device *dev = crtc->dev;
5195
	struct drm_i915_private *dev_priv = to_i915(dev);
5196
	struct ilk_wm_values *hw = &dev_priv->wm.hw;
5197
	struct intel_crtc *intel_crtc = to_intel_crtc(crtc);
5198
	struct intel_crtc_state *cstate = to_intel_crtc_state(crtc->state);
5199
	struct intel_pipe_wm *active = &cstate->wm.ilk.optimal;
5200
	enum pipe pipe = intel_crtc->pipe;
5201
	static const i915_reg_t wm0_pipe_reg[] = {
5202 5203 5204 5205 5206 5207
		[PIPE_A] = WM0_PIPEA_ILK,
		[PIPE_B] = WM0_PIPEB_ILK,
		[PIPE_C] = WM0_PIPEC_IVB,
	};

	hw->wm_pipe[pipe] = I915_READ(wm0_pipe_reg[pipe]);
5208
	if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
5209
		hw->wm_linetime[pipe] = I915_READ(PIPE_WM_LINETIME(pipe));
5210

5211 5212
	memset(active, 0, sizeof(*active));

5213
	active->pipe_enabled = intel_crtc->active;
5214 5215

	if (active->pipe_enabled) {
5216 5217 5218 5219 5220 5221 5222 5223 5224 5225 5226 5227 5228 5229
		u32 tmp = hw->wm_pipe[pipe];

		/*
		 * For active pipes LP0 watermark is marked as
		 * enabled, and LP1+ watermaks as disabled since
		 * we can't really reverse compute them in case
		 * multiple pipes are active.
		 */
		active->wm[0].enable = true;
		active->wm[0].pri_val = (tmp & WM0_PIPE_PLANE_MASK) >> WM0_PIPE_PLANE_SHIFT;
		active->wm[0].spr_val = (tmp & WM0_PIPE_SPRITE_MASK) >> WM0_PIPE_SPRITE_SHIFT;
		active->wm[0].cur_val = tmp & WM0_PIPE_CURSOR_MASK;
		active->linetime = hw->wm_linetime[pipe];
	} else {
5230
		int level, max_level = ilk_wm_max_level(dev_priv);
5231 5232 5233 5234 5235 5236 5237 5238 5239

		/*
		 * For inactive pipes, all watermark levels
		 * should be marked as enabled but zeroed,
		 * which is what we'd compute them to.
		 */
		for (level = 0; level <= max_level; level++)
			active->wm[level].enable = true;
	}
5240 5241

	intel_crtc->wm.active.ilk = *active;
5242 5243
}

5244 5245 5246 5247 5248
#define _FW_WM(value, plane) \
	(((value) & DSPFW_ ## plane ## _MASK) >> DSPFW_ ## plane ## _SHIFT)
#define _FW_WM_VLV(value, plane) \
	(((value) & DSPFW_ ## plane ## _MASK_VLV) >> DSPFW_ ## plane ## _SHIFT)

5249 5250 5251 5252 5253 5254 5255 5256 5257 5258 5259 5260 5261 5262 5263 5264 5265 5266 5267 5268 5269 5270 5271 5272 5273 5274
static void g4x_read_wm_values(struct drm_i915_private *dev_priv,
			       struct g4x_wm_values *wm)
{
	uint32_t tmp;

	tmp = I915_READ(DSPFW1);
	wm->sr.plane = _FW_WM(tmp, SR);
	wm->pipe[PIPE_B].plane[PLANE_CURSOR] = _FW_WM(tmp, CURSORB);
	wm->pipe[PIPE_B].plane[PLANE_PRIMARY] = _FW_WM(tmp, PLANEB);
	wm->pipe[PIPE_A].plane[PLANE_PRIMARY] = _FW_WM(tmp, PLANEA);

	tmp = I915_READ(DSPFW2);
	wm->fbc_en = tmp & DSPFW_FBC_SR_EN;
	wm->sr.fbc = _FW_WM(tmp, FBC_SR);
	wm->hpll.fbc = _FW_WM(tmp, FBC_HPLL_SR);
	wm->pipe[PIPE_B].plane[PLANE_SPRITE0] = _FW_WM(tmp, SPRITEB);
	wm->pipe[PIPE_A].plane[PLANE_CURSOR] = _FW_WM(tmp, CURSORA);
	wm->pipe[PIPE_A].plane[PLANE_SPRITE0] = _FW_WM(tmp, SPRITEA);

	tmp = I915_READ(DSPFW3);
	wm->hpll_en = tmp & DSPFW_HPLL_SR_EN;
	wm->sr.cursor = _FW_WM(tmp, CURSOR_SR);
	wm->hpll.cursor = _FW_WM(tmp, HPLL_CURSOR);
	wm->hpll.plane = _FW_WM(tmp, HPLL_SR);
}

5275 5276 5277 5278 5279 5280 5281 5282 5283
static void vlv_read_wm_values(struct drm_i915_private *dev_priv,
			       struct vlv_wm_values *wm)
{
	enum pipe pipe;
	uint32_t tmp;

	for_each_pipe(dev_priv, pipe) {
		tmp = I915_READ(VLV_DDL(pipe));

5284
		wm->ddl[pipe].plane[PLANE_PRIMARY] =
5285
			(tmp >> DDL_PLANE_SHIFT) & (DDL_PRECISION_HIGH | DRAIN_LATENCY_MASK);
5286
		wm->ddl[pipe].plane[PLANE_CURSOR] =
5287
			(tmp >> DDL_CURSOR_SHIFT) & (DDL_PRECISION_HIGH | DRAIN_LATENCY_MASK);
5288
		wm->ddl[pipe].plane[PLANE_SPRITE0] =
5289
			(tmp >> DDL_SPRITE_SHIFT(0)) & (DDL_PRECISION_HIGH | DRAIN_LATENCY_MASK);
5290
		wm->ddl[pipe].plane[PLANE_SPRITE1] =
5291 5292 5293 5294 5295
			(tmp >> DDL_SPRITE_SHIFT(1)) & (DDL_PRECISION_HIGH | DRAIN_LATENCY_MASK);
	}

	tmp = I915_READ(DSPFW1);
	wm->sr.plane = _FW_WM(tmp, SR);
5296 5297 5298
	wm->pipe[PIPE_B].plane[PLANE_CURSOR] = _FW_WM(tmp, CURSORB);
	wm->pipe[PIPE_B].plane[PLANE_PRIMARY] = _FW_WM_VLV(tmp, PLANEB);
	wm->pipe[PIPE_A].plane[PLANE_PRIMARY] = _FW_WM_VLV(tmp, PLANEA);
5299 5300

	tmp = I915_READ(DSPFW2);
5301 5302 5303
	wm->pipe[PIPE_A].plane[PLANE_SPRITE1] = _FW_WM_VLV(tmp, SPRITEB);
	wm->pipe[PIPE_A].plane[PLANE_CURSOR] = _FW_WM(tmp, CURSORA);
	wm->pipe[PIPE_A].plane[PLANE_SPRITE0] = _FW_WM_VLV(tmp, SPRITEA);
5304 5305 5306 5307 5308 5309

	tmp = I915_READ(DSPFW3);
	wm->sr.cursor = _FW_WM(tmp, CURSOR_SR);

	if (IS_CHERRYVIEW(dev_priv)) {
		tmp = I915_READ(DSPFW7_CHV);
5310 5311
		wm->pipe[PIPE_B].plane[PLANE_SPRITE1] = _FW_WM_VLV(tmp, SPRITED);
		wm->pipe[PIPE_B].plane[PLANE_SPRITE0] = _FW_WM_VLV(tmp, SPRITEC);
5312 5313

		tmp = I915_READ(DSPFW8_CHV);
5314 5315
		wm->pipe[PIPE_C].plane[PLANE_SPRITE1] = _FW_WM_VLV(tmp, SPRITEF);
		wm->pipe[PIPE_C].plane[PLANE_SPRITE0] = _FW_WM_VLV(tmp, SPRITEE);
5316 5317

		tmp = I915_READ(DSPFW9_CHV);
5318 5319
		wm->pipe[PIPE_C].plane[PLANE_PRIMARY] = _FW_WM_VLV(tmp, PLANEC);
		wm->pipe[PIPE_C].plane[PLANE_CURSOR] = _FW_WM(tmp, CURSORC);
5320 5321 5322

		tmp = I915_READ(DSPHOWM);
		wm->sr.plane |= _FW_WM(tmp, SR_HI) << 9;
5323 5324 5325 5326 5327 5328 5329 5330 5331
		wm->pipe[PIPE_C].plane[PLANE_SPRITE1] |= _FW_WM(tmp, SPRITEF_HI) << 8;
		wm->pipe[PIPE_C].plane[PLANE_SPRITE0] |= _FW_WM(tmp, SPRITEE_HI) << 8;
		wm->pipe[PIPE_C].plane[PLANE_PRIMARY] |= _FW_WM(tmp, PLANEC_HI) << 8;
		wm->pipe[PIPE_B].plane[PLANE_SPRITE1] |= _FW_WM(tmp, SPRITED_HI) << 8;
		wm->pipe[PIPE_B].plane[PLANE_SPRITE0] |= _FW_WM(tmp, SPRITEC_HI) << 8;
		wm->pipe[PIPE_B].plane[PLANE_PRIMARY] |= _FW_WM(tmp, PLANEB_HI) << 8;
		wm->pipe[PIPE_A].plane[PLANE_SPRITE1] |= _FW_WM(tmp, SPRITEB_HI) << 8;
		wm->pipe[PIPE_A].plane[PLANE_SPRITE0] |= _FW_WM(tmp, SPRITEA_HI) << 8;
		wm->pipe[PIPE_A].plane[PLANE_PRIMARY] |= _FW_WM(tmp, PLANEA_HI) << 8;
5332 5333
	} else {
		tmp = I915_READ(DSPFW7);
5334 5335
		wm->pipe[PIPE_B].plane[PLANE_SPRITE1] = _FW_WM_VLV(tmp, SPRITED);
		wm->pipe[PIPE_B].plane[PLANE_SPRITE0] = _FW_WM_VLV(tmp, SPRITEC);
5336 5337 5338

		tmp = I915_READ(DSPHOWM);
		wm->sr.plane |= _FW_WM(tmp, SR_HI) << 9;
5339 5340 5341 5342 5343 5344
		wm->pipe[PIPE_B].plane[PLANE_SPRITE1] |= _FW_WM(tmp, SPRITED_HI) << 8;
		wm->pipe[PIPE_B].plane[PLANE_SPRITE0] |= _FW_WM(tmp, SPRITEC_HI) << 8;
		wm->pipe[PIPE_B].plane[PLANE_PRIMARY] |= _FW_WM(tmp, PLANEB_HI) << 8;
		wm->pipe[PIPE_A].plane[PLANE_SPRITE1] |= _FW_WM(tmp, SPRITEB_HI) << 8;
		wm->pipe[PIPE_A].plane[PLANE_SPRITE0] |= _FW_WM(tmp, SPRITEA_HI) << 8;
		wm->pipe[PIPE_A].plane[PLANE_PRIMARY] |= _FW_WM(tmp, PLANEA_HI) << 8;
5345 5346 5347 5348 5349 5350
	}
}

#undef _FW_WM
#undef _FW_WM_VLV

5351 5352 5353 5354 5355 5356 5357 5358 5359 5360 5361 5362 5363 5364 5365 5366 5367 5368 5369 5370 5371 5372 5373 5374 5375 5376 5377 5378 5379 5380 5381 5382 5383 5384 5385 5386 5387 5388 5389 5390 5391 5392 5393 5394 5395 5396 5397 5398 5399 5400 5401 5402 5403 5404 5405 5406 5407 5408 5409 5410 5411 5412 5413 5414 5415 5416 5417 5418 5419 5420 5421 5422 5423 5424 5425 5426 5427 5428 5429 5430 5431 5432 5433 5434 5435 5436 5437 5438 5439 5440 5441 5442 5443 5444 5445 5446 5447 5448 5449 5450 5451 5452 5453 5454 5455 5456 5457 5458 5459 5460 5461 5462 5463 5464 5465 5466 5467 5468 5469 5470 5471 5472 5473 5474 5475 5476 5477 5478 5479 5480 5481 5482 5483 5484 5485 5486 5487 5488 5489 5490 5491
void g4x_wm_get_hw_state(struct drm_device *dev)
{
	struct drm_i915_private *dev_priv = to_i915(dev);
	struct g4x_wm_values *wm = &dev_priv->wm.g4x;
	struct intel_crtc *crtc;

	g4x_read_wm_values(dev_priv, wm);

	wm->cxsr = I915_READ(FW_BLC_SELF) & FW_BLC_SELF_EN;

	for_each_intel_crtc(dev, crtc) {
		struct intel_crtc_state *crtc_state =
			to_intel_crtc_state(crtc->base.state);
		struct g4x_wm_state *active = &crtc->wm.active.g4x;
		struct g4x_pipe_wm *raw;
		enum pipe pipe = crtc->pipe;
		enum plane_id plane_id;
		int level, max_level;

		active->cxsr = wm->cxsr;
		active->hpll_en = wm->hpll_en;
		active->fbc_en = wm->fbc_en;

		active->sr = wm->sr;
		active->hpll = wm->hpll;

		for_each_plane_id_on_crtc(crtc, plane_id) {
			active->wm.plane[plane_id] =
				wm->pipe[pipe].plane[plane_id];
		}

		if (wm->cxsr && wm->hpll_en)
			max_level = G4X_WM_LEVEL_HPLL;
		else if (wm->cxsr)
			max_level = G4X_WM_LEVEL_SR;
		else
			max_level = G4X_WM_LEVEL_NORMAL;

		level = G4X_WM_LEVEL_NORMAL;
		raw = &crtc_state->wm.g4x.raw[level];
		for_each_plane_id_on_crtc(crtc, plane_id)
			raw->plane[plane_id] = active->wm.plane[plane_id];

		if (++level > max_level)
			goto out;

		raw = &crtc_state->wm.g4x.raw[level];
		raw->plane[PLANE_PRIMARY] = active->sr.plane;
		raw->plane[PLANE_CURSOR] = active->sr.cursor;
		raw->plane[PLANE_SPRITE0] = 0;
		raw->fbc = active->sr.fbc;

		if (++level > max_level)
			goto out;

		raw = &crtc_state->wm.g4x.raw[level];
		raw->plane[PLANE_PRIMARY] = active->hpll.plane;
		raw->plane[PLANE_CURSOR] = active->hpll.cursor;
		raw->plane[PLANE_SPRITE0] = 0;
		raw->fbc = active->hpll.fbc;

	out:
		for_each_plane_id_on_crtc(crtc, plane_id)
			g4x_raw_plane_wm_set(crtc_state, level,
					     plane_id, USHRT_MAX);
		g4x_raw_fbc_wm_set(crtc_state, level, USHRT_MAX);

		crtc_state->wm.g4x.optimal = *active;
		crtc_state->wm.g4x.intermediate = *active;

		DRM_DEBUG_KMS("Initial watermarks: pipe %c, plane=%d, cursor=%d, sprite=%d\n",
			      pipe_name(pipe),
			      wm->pipe[pipe].plane[PLANE_PRIMARY],
			      wm->pipe[pipe].plane[PLANE_CURSOR],
			      wm->pipe[pipe].plane[PLANE_SPRITE0]);
	}

	DRM_DEBUG_KMS("Initial SR watermarks: plane=%d, cursor=%d fbc=%d\n",
		      wm->sr.plane, wm->sr.cursor, wm->sr.fbc);
	DRM_DEBUG_KMS("Initial HPLL watermarks: plane=%d, SR cursor=%d fbc=%d\n",
		      wm->hpll.plane, wm->hpll.cursor, wm->hpll.fbc);
	DRM_DEBUG_KMS("Initial SR=%s HPLL=%s FBC=%s\n",
		      yesno(wm->cxsr), yesno(wm->hpll_en), yesno(wm->fbc_en));
}

void g4x_wm_sanitize(struct drm_i915_private *dev_priv)
{
	struct intel_plane *plane;
	struct intel_crtc *crtc;

	mutex_lock(&dev_priv->wm.wm_mutex);

	for_each_intel_plane(&dev_priv->drm, plane) {
		struct intel_crtc *crtc =
			intel_get_crtc_for_pipe(dev_priv, plane->pipe);
		struct intel_crtc_state *crtc_state =
			to_intel_crtc_state(crtc->base.state);
		struct intel_plane_state *plane_state =
			to_intel_plane_state(plane->base.state);
		struct g4x_wm_state *wm_state = &crtc_state->wm.g4x.optimal;
		enum plane_id plane_id = plane->id;
		int level;

		if (plane_state->base.visible)
			continue;

		for (level = 0; level < 3; level++) {
			struct g4x_pipe_wm *raw =
				&crtc_state->wm.g4x.raw[level];

			raw->plane[plane_id] = 0;
			wm_state->wm.plane[plane_id] = 0;
		}

		if (plane_id == PLANE_PRIMARY) {
			for (level = 0; level < 3; level++) {
				struct g4x_pipe_wm *raw =
					&crtc_state->wm.g4x.raw[level];
				raw->fbc = 0;
			}

			wm_state->sr.fbc = 0;
			wm_state->hpll.fbc = 0;
			wm_state->fbc_en = false;
		}
	}

	for_each_intel_crtc(&dev_priv->drm, crtc) {
		struct intel_crtc_state *crtc_state =
			to_intel_crtc_state(crtc->base.state);

		crtc_state->wm.g4x.intermediate =
			crtc_state->wm.g4x.optimal;
		crtc->wm.active.g4x = crtc_state->wm.g4x.optimal;
	}

	g4x_program_watermarks(dev_priv);

	mutex_unlock(&dev_priv->wm.wm_mutex);
}

5492 5493 5494 5495
void vlv_wm_get_hw_state(struct drm_device *dev)
{
	struct drm_i915_private *dev_priv = to_i915(dev);
	struct vlv_wm_values *wm = &dev_priv->wm.vlv;
5496
	struct intel_crtc *crtc;
5497 5498 5499 5500 5501 5502 5503 5504 5505 5506 5507 5508 5509 5510
	u32 val;

	vlv_read_wm_values(dev_priv, wm);

	wm->cxsr = I915_READ(FW_BLC_SELF_VLV) & FW_CSPWRDWNEN;
	wm->level = VLV_WM_LEVEL_PM2;

	if (IS_CHERRYVIEW(dev_priv)) {
		mutex_lock(&dev_priv->rps.hw_lock);

		val = vlv_punit_read(dev_priv, PUNIT_REG_DSPFREQ);
		if (val & DSP_MAXFIFO_PM5_ENABLE)
			wm->level = VLV_WM_LEVEL_PM5;

5511 5512 5513 5514 5515 5516 5517 5518 5519
		/*
		 * If DDR DVFS is disabled in the BIOS, Punit
		 * will never ack the request. So if that happens
		 * assume we don't have to enable/disable DDR DVFS
		 * dynamically. To test that just set the REQ_ACK
		 * bit to poke the Punit, but don't change the
		 * HIGH/LOW bits so that we don't actually change
		 * the current state.
		 */
5520
		val = vlv_punit_read(dev_priv, PUNIT_REG_DDR_SETUP2);
5521 5522 5523 5524 5525 5526 5527 5528 5529 5530 5531 5532 5533
		val |= FORCE_DDR_FREQ_REQ_ACK;
		vlv_punit_write(dev_priv, PUNIT_REG_DDR_SETUP2, val);

		if (wait_for((vlv_punit_read(dev_priv, PUNIT_REG_DDR_SETUP2) &
			      FORCE_DDR_FREQ_REQ_ACK) == 0, 3)) {
			DRM_DEBUG_KMS("Punit not acking DDR DVFS request, "
				      "assuming DDR DVFS is disabled\n");
			dev_priv->wm.max_level = VLV_WM_LEVEL_PM5;
		} else {
			val = vlv_punit_read(dev_priv, PUNIT_REG_DDR_SETUP2);
			if ((val & FORCE_DDR_HIGH_FREQ) == 0)
				wm->level = VLV_WM_LEVEL_DDR_DVFS;
		}
5534 5535 5536 5537

		mutex_unlock(&dev_priv->rps.hw_lock);
	}

5538 5539 5540 5541 5542 5543 5544 5545 5546 5547 5548 5549 5550 5551 5552 5553
	for_each_intel_crtc(dev, crtc) {
		struct intel_crtc_state *crtc_state =
			to_intel_crtc_state(crtc->base.state);
		struct vlv_wm_state *active = &crtc->wm.active.vlv;
		const struct vlv_fifo_state *fifo_state =
			&crtc_state->wm.vlv.fifo_state;
		enum pipe pipe = crtc->pipe;
		enum plane_id plane_id;
		int level;

		vlv_get_fifo_size(crtc_state);

		active->num_levels = wm->level + 1;
		active->cxsr = wm->cxsr;

		for (level = 0; level < active->num_levels; level++) {
5554
			struct g4x_pipe_wm *raw =
5555 5556 5557 5558 5559 5560 5561 5562 5563 5564 5565 5566 5567 5568 5569 5570 5571 5572 5573 5574 5575
				&crtc_state->wm.vlv.raw[level];

			active->sr[level].plane = wm->sr.plane;
			active->sr[level].cursor = wm->sr.cursor;

			for_each_plane_id_on_crtc(crtc, plane_id) {
				active->wm[level].plane[plane_id] =
					wm->pipe[pipe].plane[plane_id];

				raw->plane[plane_id] =
					vlv_invert_wm_value(active->wm[level].plane[plane_id],
							    fifo_state->plane[plane_id]);
			}
		}

		for_each_plane_id_on_crtc(crtc, plane_id)
			vlv_raw_plane_wm_set(crtc_state, level,
					     plane_id, USHRT_MAX);
		vlv_invalidate_wms(crtc, active, level);

		crtc_state->wm.vlv.optimal = *active;
5576
		crtc_state->wm.vlv.intermediate = *active;
5577

5578
		DRM_DEBUG_KMS("Initial watermarks: pipe %c, plane=%d, cursor=%d, sprite0=%d, sprite1=%d\n",
5579 5580 5581 5582 5583
			      pipe_name(pipe),
			      wm->pipe[pipe].plane[PLANE_PRIMARY],
			      wm->pipe[pipe].plane[PLANE_CURSOR],
			      wm->pipe[pipe].plane[PLANE_SPRITE0],
			      wm->pipe[pipe].plane[PLANE_SPRITE1]);
5584
	}
5585 5586 5587 5588 5589

	DRM_DEBUG_KMS("Initial watermarks: SR plane=%d, SR cursor=%d level=%d cxsr=%d\n",
		      wm->sr.plane, wm->sr.cursor, wm->level, wm->cxsr);
}

5590 5591 5592 5593 5594 5595 5596 5597 5598 5599 5600 5601 5602 5603 5604 5605 5606 5607 5608 5609 5610 5611 5612 5613
void vlv_wm_sanitize(struct drm_i915_private *dev_priv)
{
	struct intel_plane *plane;
	struct intel_crtc *crtc;

	mutex_lock(&dev_priv->wm.wm_mutex);

	for_each_intel_plane(&dev_priv->drm, plane) {
		struct intel_crtc *crtc =
			intel_get_crtc_for_pipe(dev_priv, plane->pipe);
		struct intel_crtc_state *crtc_state =
			to_intel_crtc_state(crtc->base.state);
		struct intel_plane_state *plane_state =
			to_intel_plane_state(plane->base.state);
		struct vlv_wm_state *wm_state = &crtc_state->wm.vlv.optimal;
		const struct vlv_fifo_state *fifo_state =
			&crtc_state->wm.vlv.fifo_state;
		enum plane_id plane_id = plane->id;
		int level;

		if (plane_state->base.visible)
			continue;

		for (level = 0; level < wm_state->num_levels; level++) {
5614
			struct g4x_pipe_wm *raw =
5615 5616 5617 5618 5619 5620 5621 5622 5623 5624 5625 5626 5627 5628 5629 5630 5631 5632 5633 5634 5635 5636 5637 5638
				&crtc_state->wm.vlv.raw[level];

			raw->plane[plane_id] = 0;

			wm_state->wm[level].plane[plane_id] =
				vlv_invert_wm_value(raw->plane[plane_id],
						    fifo_state->plane[plane_id]);
		}
	}

	for_each_intel_crtc(&dev_priv->drm, crtc) {
		struct intel_crtc_state *crtc_state =
			to_intel_crtc_state(crtc->base.state);

		crtc_state->wm.vlv.intermediate =
			crtc_state->wm.vlv.optimal;
		crtc->wm.active.vlv = crtc_state->wm.vlv.optimal;
	}

	vlv_program_watermarks(dev_priv);

	mutex_unlock(&dev_priv->wm.wm_mutex);
}

5639 5640
void ilk_wm_get_hw_state(struct drm_device *dev)
{
5641
	struct drm_i915_private *dev_priv = to_i915(dev);
5642
	struct ilk_wm_values *hw = &dev_priv->wm.hw;
5643 5644
	struct drm_crtc *crtc;

5645
	for_each_crtc(dev, crtc)
5646 5647 5648 5649 5650 5651 5652
		ilk_pipe_wm_get_hw_state(crtc);

	hw->wm_lp[0] = I915_READ(WM1_LP_ILK);
	hw->wm_lp[1] = I915_READ(WM2_LP_ILK);
	hw->wm_lp[2] = I915_READ(WM3_LP_ILK);

	hw->wm_lp_spr[0] = I915_READ(WM1S_LP_ILK);
5653
	if (INTEL_GEN(dev_priv) >= 7) {
5654 5655 5656
		hw->wm_lp_spr[1] = I915_READ(WM2S_LP_IVB);
		hw->wm_lp_spr[2] = I915_READ(WM3S_LP_IVB);
	}
5657

5658
	if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
5659 5660
		hw->partitioning = (I915_READ(WM_MISC) & WM_MISC_DATA_PARTITION_5_6) ?
			INTEL_DDB_PART_5_6 : INTEL_DDB_PART_1_2;
5661
	else if (IS_IVYBRIDGE(dev_priv))
5662 5663
		hw->partitioning = (I915_READ(DISP_ARB_CTL2) & DISP_DATA_PARTITION_5_6) ?
			INTEL_DDB_PART_5_6 : INTEL_DDB_PART_1_2;
5664 5665 5666 5667 5668

	hw->enable_fbc_wm =
		!(I915_READ(DISP_ARB_CTL) & DISP_FBC_WM_DIS);
}

5669 5670 5671 5672 5673 5674 5675 5676 5677 5678 5679 5680 5681 5682 5683 5684 5685 5686 5687 5688 5689 5690 5691 5692 5693 5694 5695 5696 5697 5698 5699 5700
/**
 * intel_update_watermarks - update FIFO watermark values based on current modes
 *
 * Calculate watermark values for the various WM regs based on current mode
 * and plane configuration.
 *
 * There are several cases to deal with here:
 *   - normal (i.e. non-self-refresh)
 *   - self-refresh (SR) mode
 *   - lines are large relative to FIFO size (buffer can hold up to 2)
 *   - lines are small relative to FIFO size (buffer can hold more than 2
 *     lines), so need to account for TLB latency
 *
 *   The normal calculation is:
 *     watermark = dotclock * bytes per pixel * latency
 *   where latency is platform & configuration dependent (we assume pessimal
 *   values here).
 *
 *   The SR calculation is:
 *     watermark = (trunc(latency/line time)+1) * surface width *
 *       bytes per pixel
 *   where
 *     line time = htotal / dotclock
 *     surface width = hdisplay for normal plane and 64 for cursor
 *   and latency is assumed to be high, as above.
 *
 * The final value programmed to the register should always be rounded up,
 * and include an extra 2 entries to account for clock crossings.
 *
 * We don't use the sprite, so we can ignore that.  And on Crestline we have
 * to set the non-SR watermarks to 8.
 */
5701
void intel_update_watermarks(struct intel_crtc *crtc)
5702
{
5703
	struct drm_i915_private *dev_priv = to_i915(crtc->base.dev);
5704 5705

	if (dev_priv->display.update_wm)
5706
		dev_priv->display.update_wm(crtc);
5707 5708
}

5709
/*
5710 5711 5712 5713 5714 5715 5716 5717
 * Lock protecting IPS related data structures
 */
DEFINE_SPINLOCK(mchdev_lock);

/* Global for IPS driver to get at the current i915 device. Protected by
 * mchdev_lock. */
static struct drm_i915_private *i915_mch_dev;

5718
bool ironlake_set_drps(struct drm_i915_private *dev_priv, u8 val)
5719 5720 5721
{
	u16 rgvswctl;

5722
	lockdep_assert_held(&mchdev_lock);
5723

5724 5725 5726 5727 5728 5729 5730 5731 5732 5733 5734 5735 5736 5737 5738 5739 5740
	rgvswctl = I915_READ16(MEMSWCTL);
	if (rgvswctl & MEMCTL_CMD_STS) {
		DRM_DEBUG("gpu busy, RCS change rejected\n");
		return false; /* still busy with another command */
	}

	rgvswctl = (MEMCTL_CMD_CHFREQ << MEMCTL_CMD_SHIFT) |
		(val << MEMCTL_FREQ_SHIFT) | MEMCTL_SFCAVM;
	I915_WRITE16(MEMSWCTL, rgvswctl);
	POSTING_READ16(MEMSWCTL);

	rgvswctl |= MEMCTL_CMD_STS;
	I915_WRITE16(MEMSWCTL, rgvswctl);

	return true;
}

5741
static void ironlake_enable_drps(struct drm_i915_private *dev_priv)
5742
{
5743
	u32 rgvmodectl;
5744 5745
	u8 fmax, fmin, fstart, vstart;

5746 5747
	spin_lock_irq(&mchdev_lock);

5748 5749
	rgvmodectl = I915_READ(MEMMODECTL);

5750 5751 5752 5753 5754 5755 5756 5757 5758 5759 5760 5761 5762 5763 5764 5765 5766 5767 5768 5769
	/* Enable temp reporting */
	I915_WRITE16(PMMISC, I915_READ(PMMISC) | MCPPCE_EN);
	I915_WRITE16(TSC1, I915_READ(TSC1) | TSE);

	/* 100ms RC evaluation intervals */
	I915_WRITE(RCUPEI, 100000);
	I915_WRITE(RCDNEI, 100000);

	/* Set max/min thresholds to 90ms and 80ms respectively */
	I915_WRITE(RCBMAXAVG, 90000);
	I915_WRITE(RCBMINAVG, 80000);

	I915_WRITE(MEMIHYST, 1);

	/* Set up min, max, and cur for interrupt handling */
	fmax = (rgvmodectl & MEMMODE_FMAX_MASK) >> MEMMODE_FMAX_SHIFT;
	fmin = (rgvmodectl & MEMMODE_FMIN_MASK);
	fstart = (rgvmodectl & MEMMODE_FSTART_MASK) >>
		MEMMODE_FSTART_SHIFT;

5770
	vstart = (I915_READ(PXVFREQ(fstart)) & PXVFREQ_PX_MASK) >>
5771 5772
		PXVFREQ_PX_SHIFT;

5773 5774
	dev_priv->ips.fmax = fmax; /* IPS callback will increase this */
	dev_priv->ips.fstart = fstart;
5775

5776 5777 5778
	dev_priv->ips.max_delay = fstart;
	dev_priv->ips.min_delay = fmin;
	dev_priv->ips.cur_delay = fstart;
5779 5780 5781 5782 5783 5784 5785 5786 5787 5788 5789 5790 5791 5792 5793 5794

	DRM_DEBUG_DRIVER("fmax: %d, fmin: %d, fstart: %d\n",
			 fmax, fmin, fstart);

	I915_WRITE(MEMINTREN, MEMINT_CX_SUPR_EN | MEMINT_EVAL_CHG_EN);

	/*
	 * Interrupts will be enabled in ironlake_irq_postinstall
	 */

	I915_WRITE(VIDSTART, vstart);
	POSTING_READ(VIDSTART);

	rgvmodectl |= MEMMODE_SWMODE_EN;
	I915_WRITE(MEMMODECTL, rgvmodectl);

5795
	if (wait_for_atomic((I915_READ(MEMSWCTL) & MEMCTL_CMD_STS) == 0, 10))
5796
		DRM_ERROR("stuck trying to change perf mode\n");
5797
	mdelay(1);
5798

5799
	ironlake_set_drps(dev_priv, fstart);
5800

5801 5802
	dev_priv->ips.last_count1 = I915_READ(DMIEC) +
		I915_READ(DDREC) + I915_READ(CSIEC);
5803
	dev_priv->ips.last_time1 = jiffies_to_msecs(jiffies);
5804
	dev_priv->ips.last_count2 = I915_READ(GFXEC);
5805
	dev_priv->ips.last_time2 = ktime_get_raw_ns();
5806 5807

	spin_unlock_irq(&mchdev_lock);
5808 5809
}

5810
static void ironlake_disable_drps(struct drm_i915_private *dev_priv)
5811
{
5812 5813 5814 5815 5816
	u16 rgvswctl;

	spin_lock_irq(&mchdev_lock);

	rgvswctl = I915_READ16(MEMSWCTL);
5817 5818 5819 5820 5821 5822 5823 5824 5825

	/* Ack interrupts, disable EFC interrupt */
	I915_WRITE(MEMINTREN, I915_READ(MEMINTREN) & ~MEMINT_EVAL_CHG_EN);
	I915_WRITE(MEMINTRSTS, MEMINT_EVAL_CHG);
	I915_WRITE(DEIER, I915_READ(DEIER) & ~DE_PCU_EVENT);
	I915_WRITE(DEIIR, DE_PCU_EVENT);
	I915_WRITE(DEIMR, I915_READ(DEIMR) | DE_PCU_EVENT);

	/* Go back to the starting frequency */
5826
	ironlake_set_drps(dev_priv, dev_priv->ips.fstart);
5827
	mdelay(1);
5828 5829
	rgvswctl |= MEMCTL_CMD_STS;
	I915_WRITE(MEMSWCTL, rgvswctl);
5830
	mdelay(1);
5831

5832
	spin_unlock_irq(&mchdev_lock);
5833 5834
}

5835 5836 5837 5838 5839
/* There's a funny hw issue where the hw returns all 0 when reading from
 * GEN6_RP_INTERRUPT_LIMITS. Hence we always need to compute the desired value
 * ourselves, instead of doing a rmw cycle (which might result in us clearing
 * all limits and the gpu stuck at whatever frequency it is at atm).
 */
5840
static u32 intel_rps_limits(struct drm_i915_private *dev_priv, u8 val)
5841
{
5842
	u32 limits;
5843

5844 5845 5846 5847 5848 5849
	/* Only set the down limit when we've reached the lowest level to avoid
	 * getting more interrupts, otherwise leave this clear. This prevents a
	 * race in the hw when coming out of rc6: There's a tiny window where
	 * the hw runs at the minimal clock before selecting the desired
	 * frequency, if the down threshold expires in that window we will not
	 * receive a down interrupt. */
5850
	if (INTEL_GEN(dev_priv) >= 9) {
5851 5852 5853 5854 5855 5856 5857 5858
		limits = (dev_priv->rps.max_freq_softlimit) << 23;
		if (val <= dev_priv->rps.min_freq_softlimit)
			limits |= (dev_priv->rps.min_freq_softlimit) << 14;
	} else {
		limits = dev_priv->rps.max_freq_softlimit << 24;
		if (val <= dev_priv->rps.min_freq_softlimit)
			limits |= dev_priv->rps.min_freq_softlimit << 16;
	}
5859 5860 5861 5862

	return limits;
}

5863 5864 5865
static void gen6_set_rps_thresholds(struct drm_i915_private *dev_priv, u8 val)
{
	int new_power;
5866 5867
	u32 threshold_up = 0, threshold_down = 0; /* in % */
	u32 ei_up = 0, ei_down = 0;
5868 5869 5870 5871

	new_power = dev_priv->rps.power;
	switch (dev_priv->rps.power) {
	case LOW_POWER:
5872 5873
		if (val > dev_priv->rps.efficient_freq + 1 &&
		    val > dev_priv->rps.cur_freq)
5874 5875 5876 5877
			new_power = BETWEEN;
		break;

	case BETWEEN:
5878 5879
		if (val <= dev_priv->rps.efficient_freq &&
		    val < dev_priv->rps.cur_freq)
5880
			new_power = LOW_POWER;
5881 5882
		else if (val >= dev_priv->rps.rp0_freq &&
			 val > dev_priv->rps.cur_freq)
5883 5884 5885 5886
			new_power = HIGH_POWER;
		break;

	case HIGH_POWER:
5887 5888
		if (val < (dev_priv->rps.rp1_freq + dev_priv->rps.rp0_freq) >> 1 &&
		    val < dev_priv->rps.cur_freq)
5889 5890 5891 5892
			new_power = BETWEEN;
		break;
	}
	/* Max/min bins are special */
5893
	if (val <= dev_priv->rps.min_freq_softlimit)
5894
		new_power = LOW_POWER;
5895
	if (val >= dev_priv->rps.max_freq_softlimit)
5896 5897 5898 5899 5900 5901 5902 5903
		new_power = HIGH_POWER;
	if (new_power == dev_priv->rps.power)
		return;

	/* Note the units here are not exactly 1us, but 1280ns. */
	switch (new_power) {
	case LOW_POWER:
		/* Upclock if more than 95% busy over 16ms */
5904 5905
		ei_up = 16000;
		threshold_up = 95;
5906 5907

		/* Downclock if less than 85% busy over 32ms */
5908 5909
		ei_down = 32000;
		threshold_down = 85;
5910 5911 5912 5913
		break;

	case BETWEEN:
		/* Upclock if more than 90% busy over 13ms */
5914 5915
		ei_up = 13000;
		threshold_up = 90;
5916 5917

		/* Downclock if less than 75% busy over 32ms */
5918 5919
		ei_down = 32000;
		threshold_down = 75;
5920 5921 5922 5923
		break;

	case HIGH_POWER:
		/* Upclock if more than 85% busy over 10ms */
5924 5925
		ei_up = 10000;
		threshold_up = 85;
5926 5927

		/* Downclock if less than 60% busy over 32ms */
5928 5929
		ei_down = 32000;
		threshold_down = 60;
5930 5931 5932
		break;
	}

5933 5934 5935 5936 5937 5938
	/* When byt can survive without system hang with dynamic
	 * sw freq adjustments, this restriction can be lifted.
	 */
	if (IS_VALLEYVIEW(dev_priv))
		goto skip_hw_write;

5939
	I915_WRITE(GEN6_RP_UP_EI,
5940
		   GT_INTERVAL_FROM_US(dev_priv, ei_up));
5941
	I915_WRITE(GEN6_RP_UP_THRESHOLD,
5942 5943
		   GT_INTERVAL_FROM_US(dev_priv,
				       ei_up * threshold_up / 100));
5944 5945

	I915_WRITE(GEN6_RP_DOWN_EI,
5946
		   GT_INTERVAL_FROM_US(dev_priv, ei_down));
5947
	I915_WRITE(GEN6_RP_DOWN_THRESHOLD,
5948 5949 5950 5951 5952 5953 5954 5955 5956 5957
		   GT_INTERVAL_FROM_US(dev_priv,
				       ei_down * threshold_down / 100));

	I915_WRITE(GEN6_RP_CONTROL,
		   GEN6_RP_MEDIA_TURBO |
		   GEN6_RP_MEDIA_HW_NORMAL_MODE |
		   GEN6_RP_MEDIA_IS_GFX |
		   GEN6_RP_ENABLE |
		   GEN6_RP_UP_BUSY_AVG |
		   GEN6_RP_DOWN_IDLE_AVG);
5958

5959
skip_hw_write:
5960
	dev_priv->rps.power = new_power;
5961 5962
	dev_priv->rps.up_threshold = threshold_up;
	dev_priv->rps.down_threshold = threshold_down;
5963 5964 5965
	dev_priv->rps.last_adj = 0;
}

5966 5967 5968 5969
static u32 gen6_rps_pm_mask(struct drm_i915_private *dev_priv, u8 val)
{
	u32 mask = 0;

5970
	/* We use UP_EI_EXPIRED interupts for both up/down in manual mode */
5971
	if (val > dev_priv->rps.min_freq_softlimit)
5972
		mask |= GEN6_PM_RP_UP_EI_EXPIRED | GEN6_PM_RP_DOWN_THRESHOLD | GEN6_PM_RP_DOWN_TIMEOUT;
5973
	if (val < dev_priv->rps.max_freq_softlimit)
5974
		mask |= GEN6_PM_RP_UP_EI_EXPIRED | GEN6_PM_RP_UP_THRESHOLD;
5975

5976 5977
	mask &= dev_priv->pm_rps_events;

5978
	return gen6_sanitize_rps_pm_mask(dev_priv, ~mask);
5979 5980
}

5981 5982 5983
/* gen6_set_rps is called to update the frequency request, but should also be
 * called when the range (min_delay and max_delay) is modified so that we can
 * update the GEN6_RP_INTERRUPT_LIMITS register accordingly. */
5984
static int gen6_set_rps(struct drm_i915_private *dev_priv, u8 val)
5985
{
C
Chris Wilson 已提交
5986 5987 5988 5989 5990
	/* min/max delay may still have been modified so be sure to
	 * write the limits value.
	 */
	if (val != dev_priv->rps.cur_freq) {
		gen6_set_rps_thresholds(dev_priv, val);
5991

5992
		if (INTEL_GEN(dev_priv) >= 9)
5993 5994
			I915_WRITE(GEN6_RPNSWREQ,
				   GEN9_FREQUENCY(val));
5995
		else if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
C
Chris Wilson 已提交
5996 5997 5998 5999 6000 6001 6002
			I915_WRITE(GEN6_RPNSWREQ,
				   HSW_FREQUENCY(val));
		else
			I915_WRITE(GEN6_RPNSWREQ,
				   GEN6_FREQUENCY(val) |
				   GEN6_OFFSET(0) |
				   GEN6_AGGRESSIVE_TURBO);
6003
	}
6004 6005 6006 6007

	/* Make sure we continue to get interrupts
	 * until we hit the minimum or maximum frequencies.
	 */
6008
	I915_WRITE(GEN6_RP_INTERRUPT_LIMITS, intel_rps_limits(dev_priv, val));
6009
	I915_WRITE(GEN6_PMINTRMSK, gen6_rps_pm_mask(dev_priv, val));
6010

6011
	dev_priv->rps.cur_freq = val;
6012
	trace_intel_gpu_freq_change(intel_gpu_freq(dev_priv, val));
6013 6014

	return 0;
6015 6016
}

6017
static int valleyview_set_rps(struct drm_i915_private *dev_priv, u8 val)
6018
{
6019 6020
	int err;

6021
	if (WARN_ONCE(IS_CHERRYVIEW(dev_priv) && (val & 1),
6022 6023 6024
		      "Odd GPU freq value\n"))
		val &= ~1;

6025 6026
	I915_WRITE(GEN6_PMINTRMSK, gen6_rps_pm_mask(dev_priv, val));

6027
	if (val != dev_priv->rps.cur_freq) {
6028 6029 6030 6031
		err = vlv_punit_write(dev_priv, PUNIT_REG_GPU_FREQ_REQ, val);
		if (err)
			return err;

6032
		gen6_set_rps_thresholds(dev_priv, val);
6033
	}
6034 6035 6036

	dev_priv->rps.cur_freq = val;
	trace_intel_gpu_freq_change(intel_gpu_freq(dev_priv, val));
6037 6038

	return 0;
6039 6040
}

6041
/* vlv_set_rps_idle: Set the frequency to idle, if Gfx clocks are down
6042 6043
 *
 * * If Gfx is Idle, then
6044 6045 6046
 * 1. Forcewake Media well.
 * 2. Request idle freq.
 * 3. Release Forcewake of Media well.
6047 6048 6049
*/
static void vlv_set_rps_idle(struct drm_i915_private *dev_priv)
{
6050
	u32 val = dev_priv->rps.idle_freq;
6051
	int err;
6052

6053
	if (dev_priv->rps.cur_freq <= val)
6054 6055
		return;

6056 6057 6058 6059 6060 6061 6062 6063 6064 6065 6066 6067
	/* The punit delays the write of the frequency and voltage until it
	 * determines the GPU is awake. During normal usage we don't want to
	 * waste power changing the frequency if the GPU is sleeping (rc6).
	 * However, the GPU and driver is now idle and we do not want to delay
	 * switching to minimum voltage (reducing power whilst idle) as we do
	 * not expect to be woken in the near future and so must flush the
	 * change by waking the device.
	 *
	 * We choose to take the media powerwell (either would do to trick the
	 * punit into committing the voltage change) as that takes a lot less
	 * power than the render powerwell.
	 */
6068
	intel_uncore_forcewake_get(dev_priv, FORCEWAKE_MEDIA);
6069
	err = valleyview_set_rps(dev_priv, val);
6070
	intel_uncore_forcewake_put(dev_priv, FORCEWAKE_MEDIA);
6071 6072 6073

	if (err)
		DRM_ERROR("Failed to set RPS for idle\n");
6074 6075
}

6076 6077 6078 6079
void gen6_rps_busy(struct drm_i915_private *dev_priv)
{
	mutex_lock(&dev_priv->rps.hw_lock);
	if (dev_priv->rps.enabled) {
6080 6081
		u8 freq;

6082
		if (dev_priv->pm_rps_events & GEN6_PM_RP_UP_EI_EXPIRED)
6083 6084 6085
			gen6_rps_reset_ei(dev_priv);
		I915_WRITE(GEN6_PMINTRMSK,
			   gen6_rps_pm_mask(dev_priv, dev_priv->rps.cur_freq));
6086

6087 6088
		gen6_enable_rps_interrupts(dev_priv);

6089 6090 6091 6092 6093 6094
		/* Use the user's desired frequency as a guide, but for better
		 * performance, jump directly to RPe as our starting frequency.
		 */
		freq = max(dev_priv->rps.cur_freq,
			   dev_priv->rps.efficient_freq);

6095
		if (intel_set_rps(dev_priv,
6096
				  clamp(freq,
6097 6098 6099
					dev_priv->rps.min_freq_softlimit,
					dev_priv->rps.max_freq_softlimit)))
			DRM_DEBUG_DRIVER("Failed to set idle frequency\n");
6100 6101 6102 6103
	}
	mutex_unlock(&dev_priv->rps.hw_lock);
}

6104 6105
void gen6_rps_idle(struct drm_i915_private *dev_priv)
{
6106 6107 6108 6109 6110 6111 6112
	/* Flush our bottom-half so that it does not race with us
	 * setting the idle frequency and so that it is bounded by
	 * our rpm wakeref. And then disable the interrupts to stop any
	 * futher RPS reclocking whilst we are asleep.
	 */
	gen6_disable_rps_interrupts(dev_priv);

6113
	mutex_lock(&dev_priv->rps.hw_lock);
6114
	if (dev_priv->rps.enabled) {
6115
		if (IS_VALLEYVIEW(dev_priv) || IS_CHERRYVIEW(dev_priv))
6116
			vlv_set_rps_idle(dev_priv);
6117
		else
6118
			gen6_set_rps(dev_priv, dev_priv->rps.idle_freq);
6119
		dev_priv->rps.last_adj = 0;
6120 6121
		I915_WRITE(GEN6_PMINTRMSK,
			   gen6_sanitize_rps_pm_mask(dev_priv, ~0));
6122
	}
6123
	mutex_unlock(&dev_priv->rps.hw_lock);
6124 6125
}

6126 6127
void gen6_rps_boost(struct drm_i915_gem_request *rq,
		    struct intel_rps_client *rps)
6128
{
6129 6130 6131
	struct drm_i915_private *i915 = rq->i915;
	bool boost;

6132 6133 6134
	/* This is intentionally racy! We peek at the state here, then
	 * validate inside the RPS worker.
	 */
6135
	if (!i915->rps.enabled)
6136
		return;
6137

6138 6139 6140 6141 6142 6143
	boost = false;
	spin_lock_irq(&rq->lock);
	if (!rq->waitboost && !i915_gem_request_completed(rq)) {
		atomic_inc(&i915->rps.num_waiters);
		rq->waitboost = true;
		boost = true;
6144
	}
6145 6146 6147 6148 6149 6150 6151 6152
	spin_unlock_irq(&rq->lock);
	if (!boost)
		return;

	if (READ_ONCE(i915->rps.cur_freq) < i915->rps.boost_freq)
		schedule_work(&i915->rps.work);

	atomic_inc(rps ? &rps->boosts : &i915->rps.boosts);
6153 6154
}

6155
int intel_set_rps(struct drm_i915_private *dev_priv, u8 val)
6156
{
6157 6158
	int err;

6159 6160 6161 6162
	lockdep_assert_held(&dev_priv->rps.hw_lock);
	GEM_BUG_ON(val > dev_priv->rps.max_freq);
	GEM_BUG_ON(val < dev_priv->rps.min_freq);

6163 6164 6165 6166 6167
	if (!dev_priv->rps.enabled) {
		dev_priv->rps.cur_freq = val;
		return 0;
	}

6168
	if (IS_VALLEYVIEW(dev_priv) || IS_CHERRYVIEW(dev_priv))
6169
		err = valleyview_set_rps(dev_priv, val);
6170
	else
6171 6172 6173
		err = gen6_set_rps(dev_priv, val);

	return err;
6174 6175
}

6176
static void gen9_disable_rc6(struct drm_i915_private *dev_priv)
Z
Zhe Wang 已提交
6177 6178
{
	I915_WRITE(GEN6_RC_CONTROL, 0);
6179
	I915_WRITE(GEN9_PG_ENABLE, 0);
Z
Zhe Wang 已提交
6180 6181
}

6182
static void gen9_disable_rps(struct drm_i915_private *dev_priv)
6183 6184 6185 6186
{
	I915_WRITE(GEN6_RP_CONTROL, 0);
}

6187
static void gen6_disable_rps(struct drm_i915_private *dev_priv)
6188 6189
{
	I915_WRITE(GEN6_RC_CONTROL, 0);
6190
	I915_WRITE(GEN6_RPNSWREQ, 1 << 31);
6191
	I915_WRITE(GEN6_RP_CONTROL, 0);
6192 6193
}

6194
static void cherryview_disable_rps(struct drm_i915_private *dev_priv)
6195 6196 6197 6198
{
	I915_WRITE(GEN6_RC_CONTROL, 0);
}

6199
static void valleyview_disable_rps(struct drm_i915_private *dev_priv)
6200
{
6201 6202
	/* we're doing forcewake before Disabling RC6,
	 * This what the BIOS expects when going into suspend */
6203
	intel_uncore_forcewake_get(dev_priv, FORCEWAKE_ALL);
6204

6205
	I915_WRITE(GEN6_RC_CONTROL, 0);
6206

6207
	intel_uncore_forcewake_put(dev_priv, FORCEWAKE_ALL);
6208 6209
}

6210
static void intel_print_rc6_info(struct drm_i915_private *dev_priv, u32 mode)
B
Ben Widawsky 已提交
6211
{
6212
	if (IS_VALLEYVIEW(dev_priv) || IS_CHERRYVIEW(dev_priv)) {
6213 6214 6215 6216 6217
		if (mode & (GEN7_RC_CTL_TO_MODE | GEN6_RC_CTL_EI_MODE(1)))
			mode = GEN6_RC_CTL_RC6_ENABLE;
		else
			mode = 0;
	}
6218
	if (HAS_RC6p(dev_priv))
6219 6220 6221 6222 6223
		DRM_DEBUG_DRIVER("Enabling RC6 states: "
				 "RC6 %s RC6p %s RC6pp %s\n",
				 onoff(mode & GEN6_RC_CTL_RC6_ENABLE),
				 onoff(mode & GEN6_RC_CTL_RC6p_ENABLE),
				 onoff(mode & GEN6_RC_CTL_RC6pp_ENABLE));
6224 6225

	else
6226 6227
		DRM_DEBUG_DRIVER("Enabling RC6 states: RC6 %s\n",
				 onoff(mode & GEN6_RC_CTL_RC6_ENABLE));
B
Ben Widawsky 已提交
6228 6229
}

6230
static bool bxt_check_bios_rc6_setup(struct drm_i915_private *dev_priv)
6231
{
6232
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
6233 6234
	bool enable_rc6 = true;
	unsigned long rc6_ctx_base;
6235 6236 6237 6238 6239 6240 6241 6242 6243 6244 6245
	u32 rc_ctl;
	int rc_sw_target;

	rc_ctl = I915_READ(GEN6_RC_CONTROL);
	rc_sw_target = (I915_READ(GEN6_RC_STATE) & RC_SW_TARGET_STATE_MASK) >>
		       RC_SW_TARGET_STATE_SHIFT;
	DRM_DEBUG_DRIVER("BIOS enabled RC states: "
			 "HW_CTRL %s HW_RC6 %s SW_TARGET_STATE %x\n",
			 onoff(rc_ctl & GEN6_RC_CTL_HW_ENABLE),
			 onoff(rc_ctl & GEN6_RC_CTL_RC6_ENABLE),
			 rc_sw_target);
6246 6247

	if (!(I915_READ(RC6_LOCATION) & RC6_CTX_IN_DRAM)) {
6248
		DRM_DEBUG_DRIVER("RC6 Base location not set properly.\n");
6249 6250 6251 6252 6253 6254 6255 6256
		enable_rc6 = false;
	}

	/*
	 * The exact context size is not known for BXT, so assume a page size
	 * for this check.
	 */
	rc6_ctx_base = I915_READ(RC6_CTX_BASE) & RC6_CTX_BASE_MASK;
6257 6258 6259
	if (!((rc6_ctx_base >= ggtt->stolen_reserved_base) &&
	      (rc6_ctx_base + PAGE_SIZE <= ggtt->stolen_reserved_base +
					ggtt->stolen_reserved_size))) {
6260
		DRM_DEBUG_DRIVER("RC6 Base address not as expected.\n");
6261 6262 6263 6264 6265 6266 6267
		enable_rc6 = false;
	}

	if (!(((I915_READ(PWRCTX_MAXCNT_RCSUNIT) & IDLE_TIME_MASK) > 1) &&
	      ((I915_READ(PWRCTX_MAXCNT_VCSUNIT0) & IDLE_TIME_MASK) > 1) &&
	      ((I915_READ(PWRCTX_MAXCNT_BCSUNIT) & IDLE_TIME_MASK) > 1) &&
	      ((I915_READ(PWRCTX_MAXCNT_VECSUNIT) & IDLE_TIME_MASK) > 1))) {
6268
		DRM_DEBUG_DRIVER("Engine Idle wait time not set properly.\n");
6269 6270 6271
		enable_rc6 = false;
	}

6272 6273 6274 6275 6276 6277 6278 6279 6280 6281 6282 6283 6284 6285
	if (!I915_READ(GEN8_PUSHBUS_CONTROL) ||
	    !I915_READ(GEN8_PUSHBUS_ENABLE) ||
	    !I915_READ(GEN8_PUSHBUS_SHIFT)) {
		DRM_DEBUG_DRIVER("Pushbus not setup properly.\n");
		enable_rc6 = false;
	}

	if (!I915_READ(GEN6_GFXPAUSE)) {
		DRM_DEBUG_DRIVER("GFX pause not setup properly.\n");
		enable_rc6 = false;
	}

	if (!I915_READ(GEN8_MISC_CTRL0)) {
		DRM_DEBUG_DRIVER("GPM control not setup properly.\n");
6286 6287 6288 6289 6290 6291
		enable_rc6 = false;
	}

	return enable_rc6;
}

6292
int sanitize_rc6_option(struct drm_i915_private *dev_priv, int enable_rc6)
6293
{
6294
	/* No RC6 before Ironlake and code is gone for ilk. */
6295
	if (INTEL_INFO(dev_priv)->gen < 6)
I
Imre Deak 已提交
6296 6297
		return 0;

6298 6299 6300
	if (!enable_rc6)
		return 0;

6301
	if (IS_GEN9_LP(dev_priv) && !bxt_check_bios_rc6_setup(dev_priv)) {
6302 6303 6304 6305
		DRM_INFO("RC6 disabled by BIOS\n");
		return 0;
	}

6306
	/* Respect the kernel parameter if it is set */
I
Imre Deak 已提交
6307 6308 6309
	if (enable_rc6 >= 0) {
		int mask;

6310
		if (HAS_RC6p(dev_priv))
I
Imre Deak 已提交
6311 6312 6313 6314 6315 6316
			mask = INTEL_RC6_ENABLE | INTEL_RC6p_ENABLE |
			       INTEL_RC6pp_ENABLE;
		else
			mask = INTEL_RC6_ENABLE;

		if ((enable_rc6 & mask) != enable_rc6)
6317 6318 6319
			DRM_DEBUG_DRIVER("Adjusting RC6 mask to %d "
					 "(requested %d, valid %d)\n",
					 enable_rc6 & mask, enable_rc6, mask);
I
Imre Deak 已提交
6320 6321 6322

		return enable_rc6 & mask;
	}
6323

6324
	if (IS_IVYBRIDGE(dev_priv))
B
Ben Widawsky 已提交
6325
		return (INTEL_RC6_ENABLE | INTEL_RC6p_ENABLE);
6326 6327

	return INTEL_RC6_ENABLE;
6328 6329
}

6330
static void gen6_init_rps_frequencies(struct drm_i915_private *dev_priv)
6331 6332
{
	/* All of these values are in units of 50MHz */
6333

6334
	/* static values from HW: RP0 > RP1 > RPn (min_freq) */
6335
	if (IS_GEN9_LP(dev_priv)) {
6336
		u32 rp_state_cap = I915_READ(BXT_RP_STATE_CAP);
6337 6338 6339 6340
		dev_priv->rps.rp0_freq = (rp_state_cap >> 16) & 0xff;
		dev_priv->rps.rp1_freq = (rp_state_cap >>  8) & 0xff;
		dev_priv->rps.min_freq = (rp_state_cap >>  0) & 0xff;
	} else {
6341
		u32 rp_state_cap = I915_READ(GEN6_RP_STATE_CAP);
6342 6343 6344 6345
		dev_priv->rps.rp0_freq = (rp_state_cap >>  0) & 0xff;
		dev_priv->rps.rp1_freq = (rp_state_cap >>  8) & 0xff;
		dev_priv->rps.min_freq = (rp_state_cap >> 16) & 0xff;
	}
6346
	/* hw_max = RP0 until we check for overclocking */
6347
	dev_priv->rps.max_freq = dev_priv->rps.rp0_freq;
6348

6349
	dev_priv->rps.efficient_freq = dev_priv->rps.rp1_freq;
6350
	if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv) ||
6351
	    IS_GEN9_BC(dev_priv) || IS_CANNONLAKE(dev_priv)) {
6352 6353 6354 6355 6356
		u32 ddcc_status = 0;

		if (sandybridge_pcode_read(dev_priv,
					   HSW_PCODE_DYNAMIC_DUTY_CYCLE_CONTROL,
					   &ddcc_status) == 0)
6357
			dev_priv->rps.efficient_freq =
6358 6359 6360 6361
				clamp_t(u8,
					((ddcc_status >> 8) & 0xff),
					dev_priv->rps.min_freq,
					dev_priv->rps.max_freq);
6362 6363
	}

6364
	if (IS_GEN9_BC(dev_priv) || IS_CANNONLAKE(dev_priv)) {
6365
		/* Store the frequency values in 16.66 MHZ units, which is
6366 6367
		 * the natural hardware unit for SKL
		 */
6368 6369 6370 6371 6372 6373
		dev_priv->rps.rp0_freq *= GEN9_FREQ_SCALER;
		dev_priv->rps.rp1_freq *= GEN9_FREQ_SCALER;
		dev_priv->rps.min_freq *= GEN9_FREQ_SCALER;
		dev_priv->rps.max_freq *= GEN9_FREQ_SCALER;
		dev_priv->rps.efficient_freq *= GEN9_FREQ_SCALER;
	}
6374 6375
}

6376
static void reset_rps(struct drm_i915_private *dev_priv,
6377
		      int (*set)(struct drm_i915_private *, u8))
6378 6379 6380 6381 6382 6383 6384
{
	u8 freq = dev_priv->rps.cur_freq;

	/* force a reset */
	dev_priv->rps.power = -1;
	dev_priv->rps.cur_freq = -1;

6385 6386
	if (set(dev_priv, freq))
		DRM_ERROR("Failed to reset RPS to initial values\n");
6387 6388
}

J
Jesse Barnes 已提交
6389
/* See the Gen9_GT_PM_Programming_Guide doc for the below */
6390
static void gen9_enable_rps(struct drm_i915_private *dev_priv)
J
Jesse Barnes 已提交
6391 6392 6393
{
	intel_uncore_forcewake_get(dev_priv, FORCEWAKE_ALL);

6394 6395 6396 6397 6398 6399 6400 6401
	/* Program defaults and thresholds for RPS*/
	I915_WRITE(GEN6_RC_VIDEO_FREQ,
		GEN9_FREQUENCY(dev_priv->rps.rp1_freq));

	/* 1 second timeout*/
	I915_WRITE(GEN6_RP_DOWN_TIMEOUT,
		GT_INTERVAL_FROM_US(dev_priv, 1000000));

J
Jesse Barnes 已提交
6402 6403
	I915_WRITE(GEN6_RP_IDLE_HYSTERSIS, 0xa);

6404 6405 6406
	/* Leaning on the below call to gen6_set_rps to program/setup the
	 * Up/Down EI & threshold registers, as well as the RP_CONTROL,
	 * RP_INTERRUPT_LIMITS & RPNSWREQ registers */
6407
	reset_rps(dev_priv, gen6_set_rps);
J
Jesse Barnes 已提交
6408 6409 6410 6411

	intel_uncore_forcewake_put(dev_priv, FORCEWAKE_ALL);
}

6412
static void gen9_enable_rc6(struct drm_i915_private *dev_priv)
Z
Zhe Wang 已提交
6413
{
6414
	struct intel_engine_cs *engine;
6415
	enum intel_engine_id id;
Z
Zhe Wang 已提交
6416 6417 6418 6419 6420 6421 6422
	uint32_t rc6_mask = 0;

	/* 1a: Software RC state - RC0 */
	I915_WRITE(GEN6_RC_STATE, 0);

	/* 1b: Get forcewake during program sequence. Although the driver
	 * hasn't enabled a state yet where we need forcewake, BIOS may have.*/
6423
	intel_uncore_forcewake_get(dev_priv, FORCEWAKE_ALL);
Z
Zhe Wang 已提交
6424 6425 6426 6427 6428

	/* 2a: Disable RC states. */
	I915_WRITE(GEN6_RC_CONTROL, 0);

	/* 2b: Program RC6 thresholds.*/
6429 6430

	/* WaRsDoubleRc6WrlWithCoarsePowerGating: Doubling WRL only when CPG is enabled */
6431
	if (IS_SKYLAKE(dev_priv))
6432 6433 6434
		I915_WRITE(GEN6_RC6_WAKE_RATE_LIMIT, 108 << 16);
	else
		I915_WRITE(GEN6_RC6_WAKE_RATE_LIMIT, 54 << 16);
Z
Zhe Wang 已提交
6435 6436
	I915_WRITE(GEN6_RC_EVALUATION_INTERVAL, 125000); /* 12500 * 1280ns */
	I915_WRITE(GEN6_RC_IDLE_HYSTERSIS, 25); /* 25 * 1280ns */
6437
	for_each_engine(engine, dev_priv, id)
6438
		I915_WRITE(RING_MAX_IDLE(engine->mmio_base), 10);
6439

6440
	if (HAS_GUC(dev_priv))
6441 6442
		I915_WRITE(GUC_MAX_IDLE_COUNT, 0xA);

Z
Zhe Wang 已提交
6443 6444
	I915_WRITE(GEN6_RC_SLEEP, 0);

6445 6446 6447 6448
	/* 2c: Program Coarse Power Gating Policies. */
	I915_WRITE(GEN9_MEDIA_PG_IDLE_HYSTERESIS, 25);
	I915_WRITE(GEN9_RENDER_PG_IDLE_HYSTERESIS, 25);

Z
Zhe Wang 已提交
6449
	/* 3a: Enable RC6 */
6450
	if (intel_enable_rc6() & INTEL_RC6_ENABLE)
Z
Zhe Wang 已提交
6451
		rc6_mask = GEN6_RC_CTL_RC6_ENABLE;
6452
	DRM_INFO("RC6 %s\n", onoff(rc6_mask & GEN6_RC_CTL_RC6_ENABLE));
6453 6454 6455
	I915_WRITE(GEN6_RC6_THRESHOLD, 37500); /* 37.5/125ms per EI */
	I915_WRITE(GEN6_RC_CONTROL,
		   GEN6_RC_CTL_HW_ENABLE | GEN6_RC_CTL_EI_MODE(1) | rc6_mask);
Z
Zhe Wang 已提交
6456

6457 6458
	/*
	 * 3b: Enable Coarse Power Gating only when RC6 is enabled.
6459
	 * WaRsDisableCoarsePowerGating:skl,bxt - Render/Media PG need to be disabled with RC6.
6460
	 */
6461
	if (NEEDS_WaRsDisableCoarsePowerGating(dev_priv))
6462 6463 6464 6465
		I915_WRITE(GEN9_PG_ENABLE, 0);
	else
		I915_WRITE(GEN9_PG_ENABLE, (rc6_mask & GEN6_RC_CTL_RC6_ENABLE) ?
				(GEN9_RENDER_PG_ENABLE | GEN9_MEDIA_PG_ENABLE) : 0);
6466

6467
	intel_uncore_forcewake_put(dev_priv, FORCEWAKE_ALL);
Z
Zhe Wang 已提交
6468 6469
}

6470
static void gen8_enable_rps(struct drm_i915_private *dev_priv)
6471
{
6472
	struct intel_engine_cs *engine;
6473
	enum intel_engine_id id;
6474
	uint32_t rc6_mask = 0;
6475 6476 6477 6478 6479 6480

	/* 1a: Software RC state - RC0 */
	I915_WRITE(GEN6_RC_STATE, 0);

	/* 1c & 1d: Get forcewake during program sequence. Although the driver
	 * hasn't enabled a state yet where we need forcewake, BIOS may have.*/
6481
	intel_uncore_forcewake_get(dev_priv, FORCEWAKE_ALL);
6482 6483 6484 6485 6486 6487 6488 6489

	/* 2a: Disable RC states. */
	I915_WRITE(GEN6_RC_CONTROL, 0);

	/* 2b: Program RC6 thresholds.*/
	I915_WRITE(GEN6_RC6_WAKE_RATE_LIMIT, 40 << 16);
	I915_WRITE(GEN6_RC_EVALUATION_INTERVAL, 125000); /* 12500 * 1280ns */
	I915_WRITE(GEN6_RC_IDLE_HYSTERSIS, 25); /* 25 * 1280ns */
6490
	for_each_engine(engine, dev_priv, id)
6491
		I915_WRITE(RING_MAX_IDLE(engine->mmio_base), 10);
6492
	I915_WRITE(GEN6_RC_SLEEP, 0);
6493
	if (IS_BROADWELL(dev_priv))
6494 6495 6496
		I915_WRITE(GEN6_RC6_THRESHOLD, 625); /* 800us/1.28 for TO */
	else
		I915_WRITE(GEN6_RC6_THRESHOLD, 50000); /* 50/125ms per EI */
6497 6498

	/* 3: Enable RC6 */
6499
	if (intel_enable_rc6() & INTEL_RC6_ENABLE)
6500
		rc6_mask = GEN6_RC_CTL_RC6_ENABLE;
6501 6502
	intel_print_rc6_info(dev_priv, rc6_mask);
	if (IS_BROADWELL(dev_priv))
6503 6504 6505 6506 6507 6508 6509
		I915_WRITE(GEN6_RC_CONTROL, GEN6_RC_CTL_HW_ENABLE |
				GEN7_RC_CTL_TO_MODE |
				rc6_mask);
	else
		I915_WRITE(GEN6_RC_CONTROL, GEN6_RC_CTL_HW_ENABLE |
				GEN6_RC_CTL_EI_MODE(1) |
				rc6_mask);
6510 6511

	/* 4 Program defaults and thresholds for RPS*/
6512 6513 6514 6515
	I915_WRITE(GEN6_RPNSWREQ,
		   HSW_FREQUENCY(dev_priv->rps.rp1_freq));
	I915_WRITE(GEN6_RC_VIDEO_FREQ,
		   HSW_FREQUENCY(dev_priv->rps.rp1_freq));
6516 6517 6518 6519 6520 6521 6522 6523 6524 6525 6526 6527 6528 6529
	/* NB: Docs say 1s, and 1000000 - which aren't equivalent */
	I915_WRITE(GEN6_RP_DOWN_TIMEOUT, 100000000 / 128); /* 1 second timeout */

	/* Docs recommend 900MHz, and 300 MHz respectively */
	I915_WRITE(GEN6_RP_INTERRUPT_LIMITS,
		   dev_priv->rps.max_freq_softlimit << 24 |
		   dev_priv->rps.min_freq_softlimit << 16);

	I915_WRITE(GEN6_RP_UP_THRESHOLD, 7600000 / 128); /* 76ms busyness per EI, 90% */
	I915_WRITE(GEN6_RP_DOWN_THRESHOLD, 31300000 / 128); /* 313ms busyness per EI, 70%*/
	I915_WRITE(GEN6_RP_UP_EI, 66000); /* 84.48ms, XXX: random? */
	I915_WRITE(GEN6_RP_DOWN_EI, 350000); /* 448ms, XXX: random? */

	I915_WRITE(GEN6_RP_IDLE_HYSTERSIS, 10);
6530 6531

	/* 5: Enable RPS */
6532 6533 6534 6535 6536 6537 6538 6539 6540 6541
	I915_WRITE(GEN6_RP_CONTROL,
		   GEN6_RP_MEDIA_TURBO |
		   GEN6_RP_MEDIA_HW_NORMAL_MODE |
		   GEN6_RP_MEDIA_IS_GFX |
		   GEN6_RP_ENABLE |
		   GEN6_RP_UP_BUSY_AVG |
		   GEN6_RP_DOWN_IDLE_AVG);

	/* 6: Ring frequency + overclocking (our driver does this later */

6542
	reset_rps(dev_priv, gen6_set_rps);
6543

6544
	intel_uncore_forcewake_put(dev_priv, FORCEWAKE_ALL);
6545 6546
}

6547
static void gen6_enable_rps(struct drm_i915_private *dev_priv)
6548
{
6549
	struct intel_engine_cs *engine;
6550
	enum intel_engine_id id;
6551
	u32 rc6vids, rc6_mask = 0;
6552 6553
	u32 gtfifodbg;
	int rc6_mode;
6554
	int ret;
6555

6556
	WARN_ON(!mutex_is_locked(&dev_priv->rps.hw_lock));
6557

6558 6559 6560 6561 6562 6563 6564 6565 6566
	/* Here begins a magic sequence of register writes to enable
	 * auto-downclocking.
	 *
	 * Perhaps there might be some value in exposing these to
	 * userspace...
	 */
	I915_WRITE(GEN6_RC_STATE, 0);

	/* Clear the DBG now so we don't confuse earlier errors */
6567 6568
	gtfifodbg = I915_READ(GTFIFODBG);
	if (gtfifodbg) {
6569 6570 6571 6572
		DRM_ERROR("GT fifo had a previous error %x\n", gtfifodbg);
		I915_WRITE(GTFIFODBG, gtfifodbg);
	}

6573
	intel_uncore_forcewake_get(dev_priv, FORCEWAKE_ALL);
6574 6575 6576 6577 6578 6579 6580 6581 6582 6583

	/* disable the counters and set deterministic thresholds */
	I915_WRITE(GEN6_RC_CONTROL, 0);

	I915_WRITE(GEN6_RC1_WAKE_RATE_LIMIT, 1000 << 16);
	I915_WRITE(GEN6_RC6_WAKE_RATE_LIMIT, 40 << 16 | 30);
	I915_WRITE(GEN6_RC6pp_WAKE_RATE_LIMIT, 30);
	I915_WRITE(GEN6_RC_EVALUATION_INTERVAL, 125000);
	I915_WRITE(GEN6_RC_IDLE_HYSTERSIS, 25);

6584
	for_each_engine(engine, dev_priv, id)
6585
		I915_WRITE(RING_MAX_IDLE(engine->mmio_base), 10);
6586 6587 6588

	I915_WRITE(GEN6_RC_SLEEP, 0);
	I915_WRITE(GEN6_RC1e_THRESHOLD, 1000);
6589
	if (IS_IVYBRIDGE(dev_priv))
6590 6591 6592
		I915_WRITE(GEN6_RC6_THRESHOLD, 125000);
	else
		I915_WRITE(GEN6_RC6_THRESHOLD, 50000);
6593
	I915_WRITE(GEN6_RC6p_THRESHOLD, 150000);
6594 6595
	I915_WRITE(GEN6_RC6pp_THRESHOLD, 64000); /* unused */

6596
	/* Check if we are enabling RC6 */
6597
	rc6_mode = intel_enable_rc6();
6598 6599 6600
	if (rc6_mode & INTEL_RC6_ENABLE)
		rc6_mask |= GEN6_RC_CTL_RC6_ENABLE;

6601
	/* We don't use those on Haswell */
6602
	if (!IS_HASWELL(dev_priv)) {
6603 6604
		if (rc6_mode & INTEL_RC6p_ENABLE)
			rc6_mask |= GEN6_RC_CTL_RC6p_ENABLE;
6605

6606 6607 6608
		if (rc6_mode & INTEL_RC6pp_ENABLE)
			rc6_mask |= GEN6_RC_CTL_RC6pp_ENABLE;
	}
6609

6610
	intel_print_rc6_info(dev_priv, rc6_mask);
6611 6612 6613 6614 6615 6616

	I915_WRITE(GEN6_RC_CONTROL,
		   rc6_mask |
		   GEN6_RC_CTL_EI_MODE(1) |
		   GEN6_RC_CTL_HW_ENABLE);

6617 6618
	/* Power down if completely idle for over 50ms */
	I915_WRITE(GEN6_RP_DOWN_TIMEOUT, 50000);
6619 6620
	I915_WRITE(GEN6_RP_IDLE_HYSTERSIS, 10);

6621
	reset_rps(dev_priv, gen6_set_rps);
6622

6623 6624
	rc6vids = 0;
	ret = sandybridge_pcode_read(dev_priv, GEN6_PCODE_READ_RC6VIDS, &rc6vids);
6625
	if (IS_GEN6(dev_priv) && ret) {
6626
		DRM_DEBUG_DRIVER("Couldn't check for BIOS workaround\n");
6627
	} else if (IS_GEN6(dev_priv) && (GEN6_DECODE_RC6_VID(rc6vids & 0xff) < 450)) {
6628 6629 6630 6631 6632 6633 6634 6635 6636
		DRM_DEBUG_DRIVER("You should update your BIOS. Correcting minimum rc6 voltage (%dmV->%dmV)\n",
			  GEN6_DECODE_RC6_VID(rc6vids & 0xff), 450);
		rc6vids &= 0xffff00;
		rc6vids |= GEN6_ENCODE_RC6_VID(450);
		ret = sandybridge_pcode_write(dev_priv, GEN6_PCODE_WRITE_RC6VIDS, rc6vids);
		if (ret)
			DRM_ERROR("Couldn't fix incorrect rc6 voltage\n");
	}

6637
	intel_uncore_forcewake_put(dev_priv, FORCEWAKE_ALL);
6638 6639
}

6640
static void gen6_update_ring_freq(struct drm_i915_private *dev_priv)
6641 6642
{
	int min_freq = 15;
6643 6644
	unsigned int gpu_freq;
	unsigned int max_ia_freq, min_ring_freq;
6645
	unsigned int max_gpu_freq, min_gpu_freq;
6646
	int scaling_factor = 180;
6647
	struct cpufreq_policy *policy;
6648

6649
	WARN_ON(!mutex_is_locked(&dev_priv->rps.hw_lock));
6650

6651 6652 6653 6654 6655 6656 6657 6658 6659
	policy = cpufreq_cpu_get(0);
	if (policy) {
		max_ia_freq = policy->cpuinfo.max_freq;
		cpufreq_cpu_put(policy);
	} else {
		/*
		 * Default to measured freq if none found, PCU will ensure we
		 * don't go over
		 */
6660
		max_ia_freq = tsc_khz;
6661
	}
6662 6663 6664 6665

	/* Convert from kHz to MHz */
	max_ia_freq /= 1000;

6666
	min_ring_freq = I915_READ(DCLK) & 0xf;
6667 6668
	/* convert DDR frequency from units of 266.6MHz to bandwidth */
	min_ring_freq = mult_frac(min_ring_freq, 8, 3);
6669

6670
	if (IS_GEN9_BC(dev_priv) || IS_CANNONLAKE(dev_priv)) {
6671 6672 6673 6674 6675 6676 6677 6678
		/* Convert GT frequency to 50 HZ units */
		min_gpu_freq = dev_priv->rps.min_freq / GEN9_FREQ_SCALER;
		max_gpu_freq = dev_priv->rps.max_freq / GEN9_FREQ_SCALER;
	} else {
		min_gpu_freq = dev_priv->rps.min_freq;
		max_gpu_freq = dev_priv->rps.max_freq;
	}

6679 6680 6681 6682 6683
	/*
	 * For each potential GPU frequency, load a ring frequency we'd like
	 * to use for memory access.  We do this by specifying the IA frequency
	 * the PCU should use as a reference to determine the ring frequency.
	 */
6684 6685
	for (gpu_freq = max_gpu_freq; gpu_freq >= min_gpu_freq; gpu_freq--) {
		int diff = max_gpu_freq - gpu_freq;
6686 6687
		unsigned int ia_freq = 0, ring_freq = 0;

6688
		if (IS_GEN9_BC(dev_priv) || IS_CANNONLAKE(dev_priv)) {
6689 6690 6691 6692 6693
			/*
			 * ring_freq = 2 * GT. ring_freq is in 100MHz units
			 * No floor required for ring frequency on SKL.
			 */
			ring_freq = gpu_freq;
6694
		} else if (INTEL_INFO(dev_priv)->gen >= 8) {
6695 6696
			/* max(2 * GT, DDR). NB: GT is 50MHz units */
			ring_freq = max(min_ring_freq, gpu_freq);
6697
		} else if (IS_HASWELL(dev_priv)) {
6698
			ring_freq = mult_frac(gpu_freq, 5, 4);
6699 6700 6701 6702 6703 6704 6705 6706 6707 6708 6709 6710 6711 6712 6713 6714
			ring_freq = max(min_ring_freq, ring_freq);
			/* leave ia_freq as the default, chosen by cpufreq */
		} else {
			/* On older processors, there is no separate ring
			 * clock domain, so in order to boost the bandwidth
			 * of the ring, we need to upclock the CPU (ia_freq).
			 *
			 * For GPU frequencies less than 750MHz,
			 * just use the lowest ring freq.
			 */
			if (gpu_freq < min_freq)
				ia_freq = 800;
			else
				ia_freq = max_ia_freq - ((diff * scaling_factor) / 2);
			ia_freq = DIV_ROUND_CLOSEST(ia_freq, 100);
		}
6715

B
Ben Widawsky 已提交
6716 6717
		sandybridge_pcode_write(dev_priv,
					GEN6_PCODE_WRITE_MIN_FREQ_TABLE,
6718 6719 6720
					ia_freq << GEN6_PCODE_FREQ_IA_RATIO_SHIFT |
					ring_freq << GEN6_PCODE_FREQ_RING_RATIO_SHIFT |
					gpu_freq);
6721 6722 6723
	}
}

6724
static int cherryview_rps_max_freq(struct drm_i915_private *dev_priv)
6725 6726 6727
{
	u32 val, rp0;

6728
	val = vlv_punit_read(dev_priv, FB_GFX_FMAX_AT_VMAX_FUSE);
6729

6730
	switch (INTEL_INFO(dev_priv)->sseu.eu_total) {
6731 6732 6733 6734 6735 6736 6737 6738 6739 6740 6741 6742 6743 6744
	case 8:
		/* (2 * 4) config */
		rp0 = (val >> FB_GFX_FMAX_AT_VMAX_2SS4EU_FUSE_SHIFT);
		break;
	case 12:
		/* (2 * 6) config */
		rp0 = (val >> FB_GFX_FMAX_AT_VMAX_2SS6EU_FUSE_SHIFT);
		break;
	case 16:
		/* (2 * 8) config */
	default:
		/* Setting (2 * 8) Min RP0 for any other combination */
		rp0 = (val >> FB_GFX_FMAX_AT_VMAX_2SS8EU_FUSE_SHIFT);
		break;
6745
	}
6746 6747 6748

	rp0 = (rp0 & FB_GFX_FREQ_FUSE_MASK);

6749 6750 6751 6752 6753 6754 6755 6756 6757 6758 6759 6760 6761
	return rp0;
}

static int cherryview_rps_rpe_freq(struct drm_i915_private *dev_priv)
{
	u32 val, rpe;

	val = vlv_punit_read(dev_priv, PUNIT_GPU_DUTYCYCLE_REG);
	rpe = (val >> PUNIT_GPU_DUTYCYCLE_RPE_FREQ_SHIFT) & PUNIT_GPU_DUTYCYCLE_RPE_FREQ_MASK;

	return rpe;
}

6762 6763 6764 6765
static int cherryview_rps_guar_freq(struct drm_i915_private *dev_priv)
{
	u32 val, rp1;

6766 6767 6768
	val = vlv_punit_read(dev_priv, FB_GFX_FMAX_AT_VMAX_FUSE);
	rp1 = (val & FB_GFX_FREQ_FUSE_MASK);

6769 6770 6771
	return rp1;
}

6772 6773 6774 6775 6776 6777 6778 6779 6780 6781 6782
static u32 cherryview_rps_min_freq(struct drm_i915_private *dev_priv)
{
	u32 val, rpn;

	val = vlv_punit_read(dev_priv, FB_GFX_FMIN_AT_VMIN_FUSE);
	rpn = ((val >> FB_GFX_FMIN_AT_VMIN_FUSE_SHIFT) &
		       FB_GFX_FREQ_FUSE_MASK);

	return rpn;
}

6783 6784 6785 6786 6787 6788 6789 6790 6791 6792 6793
static int valleyview_rps_guar_freq(struct drm_i915_private *dev_priv)
{
	u32 val, rp1;

	val = vlv_nc_read(dev_priv, IOSF_NC_FB_GFX_FREQ_FUSE);

	rp1 = (val & FB_GFX_FGUARANTEED_FREQ_FUSE_MASK) >> FB_GFX_FGUARANTEED_FREQ_FUSE_SHIFT;

	return rp1;
}

6794
static int valleyview_rps_max_freq(struct drm_i915_private *dev_priv)
6795 6796 6797
{
	u32 val, rp0;

6798
	val = vlv_nc_read(dev_priv, IOSF_NC_FB_GFX_FREQ_FUSE);
6799 6800 6801 6802 6803 6804 6805 6806 6807 6808 6809 6810

	rp0 = (val & FB_GFX_MAX_FREQ_FUSE_MASK) >> FB_GFX_MAX_FREQ_FUSE_SHIFT;
	/* Clamp to max */
	rp0 = min_t(u32, rp0, 0xea);

	return rp0;
}

static int valleyview_rps_rpe_freq(struct drm_i915_private *dev_priv)
{
	u32 val, rpe;

6811
	val = vlv_nc_read(dev_priv, IOSF_NC_FB_GFX_FMAX_FUSE_LO);
6812
	rpe = (val & FB_FMAX_VMIN_FREQ_LO_MASK) >> FB_FMAX_VMIN_FREQ_LO_SHIFT;
6813
	val = vlv_nc_read(dev_priv, IOSF_NC_FB_GFX_FMAX_FUSE_HI);
6814 6815 6816 6817 6818
	rpe |= (val & FB_FMAX_VMIN_FREQ_HI_MASK) << 5;

	return rpe;
}

6819
static int valleyview_rps_min_freq(struct drm_i915_private *dev_priv)
6820
{
6821 6822 6823 6824 6825 6826 6827 6828 6829 6830 6831
	u32 val;

	val = vlv_punit_read(dev_priv, PUNIT_REG_GPU_LFM) & 0xff;
	/*
	 * According to the BYT Punit GPU turbo HAS 1.1.6.3 the minimum value
	 * for the minimum frequency in GPLL mode is 0xc1. Contrary to this on
	 * a BYT-M B0 the above register contains 0xbf. Moreover when setting
	 * a frequency Punit will not allow values below 0xc0. Clamp it 0xc0
	 * to make sure it matches what Punit accepts.
	 */
	return max_t(u32, val, 0xc0);
6832 6833
}

6834 6835 6836 6837 6838 6839 6840 6841 6842
/* Check that the pctx buffer wasn't move under us. */
static void valleyview_check_pctx(struct drm_i915_private *dev_priv)
{
	unsigned long pctx_addr = I915_READ(VLV_PCBR) & ~4095;

	WARN_ON(pctx_addr != dev_priv->mm.stolen_base +
			     dev_priv->vlv_pctx->stolen->start);
}

6843 6844 6845 6846 6847 6848 6849 6850 6851

/* Check that the pcbr address is not empty. */
static void cherryview_check_pctx(struct drm_i915_private *dev_priv)
{
	unsigned long pctx_addr = I915_READ(VLV_PCBR) & ~4095;

	WARN_ON((pctx_addr >> VLV_PCBR_ADDR_SHIFT) == 0);
}

6852
static void cherryview_setup_pctx(struct drm_i915_private *dev_priv)
6853
{
6854
	struct i915_ggtt *ggtt = &dev_priv->ggtt;
6855
	unsigned long pctx_paddr, paddr;
6856 6857 6858 6859 6860
	u32 pcbr;
	int pctx_size = 32*1024;

	pcbr = I915_READ(VLV_PCBR);
	if ((pcbr >> VLV_PCBR_ADDR_SHIFT) == 0) {
6861
		DRM_DEBUG_DRIVER("BIOS didn't set up PCBR, fixing up\n");
6862
		paddr = (dev_priv->mm.stolen_base +
6863
			 (ggtt->stolen_size - pctx_size));
6864 6865 6866 6867

		pctx_paddr = (paddr & (~4095));
		I915_WRITE(VLV_PCBR, pctx_paddr);
	}
6868 6869

	DRM_DEBUG_DRIVER("PCBR: 0x%08x\n", I915_READ(VLV_PCBR));
6870 6871
}

6872
static void valleyview_setup_pctx(struct drm_i915_private *dev_priv)
6873 6874 6875 6876 6877 6878 6879 6880 6881 6882 6883 6884
{
	struct drm_i915_gem_object *pctx;
	unsigned long pctx_paddr;
	u32 pcbr;
	int pctx_size = 24*1024;

	pcbr = I915_READ(VLV_PCBR);
	if (pcbr) {
		/* BIOS set it up already, grab the pre-alloc'd space */
		int pcbr_offset;

		pcbr_offset = (pcbr & (~4095)) - dev_priv->mm.stolen_base;
6885
		pctx = i915_gem_object_create_stolen_for_preallocated(dev_priv,
6886
								      pcbr_offset,
6887
								      I915_GTT_OFFSET_NONE,
6888 6889 6890 6891
								      pctx_size);
		goto out;
	}

6892 6893
	DRM_DEBUG_DRIVER("BIOS didn't set up PCBR, fixing up\n");

6894 6895 6896 6897 6898 6899 6900 6901
	/*
	 * From the Gunit register HAS:
	 * The Gfx driver is expected to program this register and ensure
	 * proper allocation within Gfx stolen memory.  For example, this
	 * register should be programmed such than the PCBR range does not
	 * overlap with other ranges, such as the frame buffer, protected
	 * memory, or any other relevant ranges.
	 */
6902
	pctx = i915_gem_object_create_stolen(dev_priv, pctx_size);
6903 6904
	if (!pctx) {
		DRM_DEBUG("not enough stolen space for PCTX, disabling\n");
6905
		goto out;
6906 6907 6908 6909 6910 6911
	}

	pctx_paddr = dev_priv->mm.stolen_base + pctx->stolen->start;
	I915_WRITE(VLV_PCBR, pctx_paddr);

out:
6912
	DRM_DEBUG_DRIVER("PCBR: 0x%08x\n", I915_READ(VLV_PCBR));
6913 6914 6915
	dev_priv->vlv_pctx = pctx;
}

6916
static void valleyview_cleanup_pctx(struct drm_i915_private *dev_priv)
6917 6918 6919 6920
{
	if (WARN_ON(!dev_priv->vlv_pctx))
		return;

C
Chris Wilson 已提交
6921
	i915_gem_object_put(dev_priv->vlv_pctx);
6922 6923 6924
	dev_priv->vlv_pctx = NULL;
}

6925 6926 6927 6928 6929 6930 6931 6932 6933 6934 6935
static void vlv_init_gpll_ref_freq(struct drm_i915_private *dev_priv)
{
	dev_priv->rps.gpll_ref_freq =
		vlv_get_cck_clock(dev_priv, "GPLL ref",
				  CCK_GPLL_CLOCK_CONTROL,
				  dev_priv->czclk_freq);

	DRM_DEBUG_DRIVER("GPLL reference freq: %d kHz\n",
			 dev_priv->rps.gpll_ref_freq);
}

6936
static void valleyview_init_gt_powersave(struct drm_i915_private *dev_priv)
6937
{
6938
	u32 val;
6939

6940
	valleyview_setup_pctx(dev_priv);
6941

6942 6943
	vlv_init_gpll_ref_freq(dev_priv);

6944 6945 6946 6947 6948 6949 6950 6951 6952 6953 6954 6955 6956
	val = vlv_punit_read(dev_priv, PUNIT_REG_GPU_FREQ_STS);
	switch ((val >> 6) & 3) {
	case 0:
	case 1:
		dev_priv->mem_freq = 800;
		break;
	case 2:
		dev_priv->mem_freq = 1066;
		break;
	case 3:
		dev_priv->mem_freq = 1333;
		break;
	}
6957
	DRM_DEBUG_DRIVER("DDR speed: %d MHz\n", dev_priv->mem_freq);
6958

6959 6960 6961
	dev_priv->rps.max_freq = valleyview_rps_max_freq(dev_priv);
	dev_priv->rps.rp0_freq = dev_priv->rps.max_freq;
	DRM_DEBUG_DRIVER("max GPU freq: %d MHz (%u)\n",
6962
			 intel_gpu_freq(dev_priv, dev_priv->rps.max_freq),
6963 6964 6965 6966
			 dev_priv->rps.max_freq);

	dev_priv->rps.efficient_freq = valleyview_rps_rpe_freq(dev_priv);
	DRM_DEBUG_DRIVER("RPe GPU freq: %d MHz (%u)\n",
6967
			 intel_gpu_freq(dev_priv, dev_priv->rps.efficient_freq),
6968 6969
			 dev_priv->rps.efficient_freq);

6970 6971
	dev_priv->rps.rp1_freq = valleyview_rps_guar_freq(dev_priv);
	DRM_DEBUG_DRIVER("RP1(Guar Freq) GPU freq: %d MHz (%u)\n",
6972
			 intel_gpu_freq(dev_priv, dev_priv->rps.rp1_freq),
6973 6974
			 dev_priv->rps.rp1_freq);

6975 6976
	dev_priv->rps.min_freq = valleyview_rps_min_freq(dev_priv);
	DRM_DEBUG_DRIVER("min GPU freq: %d MHz (%u)\n",
6977
			 intel_gpu_freq(dev_priv, dev_priv->rps.min_freq),
6978 6979 6980
			 dev_priv->rps.min_freq);
}

6981
static void cherryview_init_gt_powersave(struct drm_i915_private *dev_priv)
6982
{
6983
	u32 val;
6984

6985
	cherryview_setup_pctx(dev_priv);
6986

6987 6988
	vlv_init_gpll_ref_freq(dev_priv);

V
Ville Syrjälä 已提交
6989
	mutex_lock(&dev_priv->sb_lock);
6990
	val = vlv_cck_read(dev_priv, CCK_FUSE_REG);
V
Ville Syrjälä 已提交
6991
	mutex_unlock(&dev_priv->sb_lock);
6992

6993 6994 6995 6996
	switch ((val >> 2) & 0x7) {
	case 3:
		dev_priv->mem_freq = 2000;
		break;
6997
	default:
6998 6999 7000
		dev_priv->mem_freq = 1600;
		break;
	}
7001
	DRM_DEBUG_DRIVER("DDR speed: %d MHz\n", dev_priv->mem_freq);
7002

7003 7004 7005
	dev_priv->rps.max_freq = cherryview_rps_max_freq(dev_priv);
	dev_priv->rps.rp0_freq = dev_priv->rps.max_freq;
	DRM_DEBUG_DRIVER("max GPU freq: %d MHz (%u)\n",
7006
			 intel_gpu_freq(dev_priv, dev_priv->rps.max_freq),
7007 7008 7009 7010
			 dev_priv->rps.max_freq);

	dev_priv->rps.efficient_freq = cherryview_rps_rpe_freq(dev_priv);
	DRM_DEBUG_DRIVER("RPe GPU freq: %d MHz (%u)\n",
7011
			 intel_gpu_freq(dev_priv, dev_priv->rps.efficient_freq),
7012 7013
			 dev_priv->rps.efficient_freq);

7014 7015
	dev_priv->rps.rp1_freq = cherryview_rps_guar_freq(dev_priv);
	DRM_DEBUG_DRIVER("RP1(Guar) GPU freq: %d MHz (%u)\n",
7016
			 intel_gpu_freq(dev_priv, dev_priv->rps.rp1_freq),
7017 7018
			 dev_priv->rps.rp1_freq);

7019
	dev_priv->rps.min_freq = cherryview_rps_min_freq(dev_priv);
7020
	DRM_DEBUG_DRIVER("min GPU freq: %d MHz (%u)\n",
7021
			 intel_gpu_freq(dev_priv, dev_priv->rps.min_freq),
7022 7023
			 dev_priv->rps.min_freq);

7024 7025 7026 7027 7028
	WARN_ONCE((dev_priv->rps.max_freq |
		   dev_priv->rps.efficient_freq |
		   dev_priv->rps.rp1_freq |
		   dev_priv->rps.min_freq) & 1,
		  "Odd GPU freq values\n");
7029 7030
}

7031
static void valleyview_cleanup_gt_powersave(struct drm_i915_private *dev_priv)
7032
{
7033
	valleyview_cleanup_pctx(dev_priv);
7034 7035
}

7036
static void cherryview_enable_rps(struct drm_i915_private *dev_priv)
7037
{
7038
	struct intel_engine_cs *engine;
7039
	enum intel_engine_id id;
7040
	u32 gtfifodbg, val, rc6_mode = 0, pcbr;
7041 7042 7043

	WARN_ON(!mutex_is_locked(&dev_priv->rps.hw_lock));

7044 7045
	gtfifodbg = I915_READ(GTFIFODBG) & ~(GT_FIFO_SBDEDICATE_FREE_ENTRY_CHV |
					     GT_FIFO_FREE_ENTRIES_CHV);
7046 7047 7048 7049 7050 7051 7052 7053 7054 7055
	if (gtfifodbg) {
		DRM_DEBUG_DRIVER("GT fifo had a previous error %x\n",
				 gtfifodbg);
		I915_WRITE(GTFIFODBG, gtfifodbg);
	}

	cherryview_check_pctx(dev_priv);

	/* 1a & 1b: Get forcewake during program sequence. Although the driver
	 * hasn't enabled a state yet where we need forcewake, BIOS may have.*/
7056
	intel_uncore_forcewake_get(dev_priv, FORCEWAKE_ALL);
7057

7058 7059 7060
	/*  Disable RC states. */
	I915_WRITE(GEN6_RC_CONTROL, 0);

7061 7062 7063 7064 7065
	/* 2a: Program RC6 thresholds.*/
	I915_WRITE(GEN6_RC6_WAKE_RATE_LIMIT, 40 << 16);
	I915_WRITE(GEN6_RC_EVALUATION_INTERVAL, 125000); /* 12500 * 1280ns */
	I915_WRITE(GEN6_RC_IDLE_HYSTERSIS, 25); /* 25 * 1280ns */

7066
	for_each_engine(engine, dev_priv, id)
7067
		I915_WRITE(RING_MAX_IDLE(engine->mmio_base), 10);
7068 7069
	I915_WRITE(GEN6_RC_SLEEP, 0);

7070 7071
	/* TO threshold set to 500 us ( 0x186 * 1.28 us) */
	I915_WRITE(GEN6_RC6_THRESHOLD, 0x186);
7072 7073 7074 7075 7076 7077 7078 7079 7080 7081 7082

	/* allows RC6 residency counter to work */
	I915_WRITE(VLV_COUNTER_CONTROL,
		   _MASKED_BIT_ENABLE(VLV_COUNT_RANGE_HIGH |
				      VLV_MEDIA_RC6_COUNT_EN |
				      VLV_RENDER_RC6_COUNT_EN));

	/* For now we assume BIOS is allocating and populating the PCBR  */
	pcbr = I915_READ(VLV_PCBR);

	/* 3: Enable RC6 */
7083 7084
	if ((intel_enable_rc6() & INTEL_RC6_ENABLE) &&
	    (pcbr >> VLV_PCBR_ADDR_SHIFT))
7085
		rc6_mode = GEN7_RC_CTL_TO_MODE;
7086 7087 7088

	I915_WRITE(GEN6_RC_CONTROL, rc6_mode);

7089
	/* 4 Program defaults and thresholds for RPS*/
7090
	I915_WRITE(GEN6_RP_DOWN_TIMEOUT, 1000000);
7091 7092 7093 7094 7095 7096 7097 7098 7099 7100
	I915_WRITE(GEN6_RP_UP_THRESHOLD, 59400);
	I915_WRITE(GEN6_RP_DOWN_THRESHOLD, 245000);
	I915_WRITE(GEN6_RP_UP_EI, 66000);
	I915_WRITE(GEN6_RP_DOWN_EI, 350000);

	I915_WRITE(GEN6_RP_IDLE_HYSTERSIS, 10);

	/* 5: Enable RPS */
	I915_WRITE(GEN6_RP_CONTROL,
		   GEN6_RP_MEDIA_HW_NORMAL_MODE |
7101
		   GEN6_RP_MEDIA_IS_GFX |
7102 7103 7104 7105
		   GEN6_RP_ENABLE |
		   GEN6_RP_UP_BUSY_AVG |
		   GEN6_RP_DOWN_IDLE_AVG);

D
Deepak S 已提交
7106 7107 7108 7109 7110 7111
	/* Setting Fixed Bias */
	val = VLV_OVERRIDE_EN |
		  VLV_SOC_TDP_EN |
		  CHV_BIAS_CPU_50_SOC_50;
	vlv_punit_write(dev_priv, VLV_TURBO_SOC_OVERRIDE, val);

7112 7113
	val = vlv_punit_read(dev_priv, PUNIT_REG_GPU_FREQ_STS);

7114 7115 7116
	/* RPS code assumes GPLL is used */
	WARN_ONCE((val & GPLLENABLE) == 0, "GPLL not enabled\n");

7117
	DRM_DEBUG_DRIVER("GPLL enabled? %s\n", yesno(val & GPLLENABLE));
7118 7119
	DRM_DEBUG_DRIVER("GPU status: 0x%08x\n", val);

7120
	reset_rps(dev_priv, valleyview_set_rps);
7121

7122
	intel_uncore_forcewake_put(dev_priv, FORCEWAKE_ALL);
7123 7124
}

7125
static void valleyview_enable_rps(struct drm_i915_private *dev_priv)
7126
{
7127
	struct intel_engine_cs *engine;
7128
	enum intel_engine_id id;
7129
	u32 gtfifodbg, val, rc6_mode = 0;
7130 7131 7132

	WARN_ON(!mutex_is_locked(&dev_priv->rps.hw_lock));

7133 7134
	valleyview_check_pctx(dev_priv);

7135 7136
	gtfifodbg = I915_READ(GTFIFODBG);
	if (gtfifodbg) {
7137 7138
		DRM_DEBUG_DRIVER("GT fifo had a previous error %x\n",
				 gtfifodbg);
7139 7140 7141
		I915_WRITE(GTFIFODBG, gtfifodbg);
	}

7142
	/* If VLV, Forcewake all wells, else re-direct to regular path */
7143
	intel_uncore_forcewake_get(dev_priv, FORCEWAKE_ALL);
7144

7145 7146 7147
	/*  Disable RC states. */
	I915_WRITE(GEN6_RC_CONTROL, 0);

7148
	I915_WRITE(GEN6_RP_DOWN_TIMEOUT, 1000000);
7149 7150 7151 7152 7153 7154 7155 7156 7157 7158 7159 7160 7161 7162 7163 7164 7165 7166 7167
	I915_WRITE(GEN6_RP_UP_THRESHOLD, 59400);
	I915_WRITE(GEN6_RP_DOWN_THRESHOLD, 245000);
	I915_WRITE(GEN6_RP_UP_EI, 66000);
	I915_WRITE(GEN6_RP_DOWN_EI, 350000);

	I915_WRITE(GEN6_RP_IDLE_HYSTERSIS, 10);

	I915_WRITE(GEN6_RP_CONTROL,
		   GEN6_RP_MEDIA_TURBO |
		   GEN6_RP_MEDIA_HW_NORMAL_MODE |
		   GEN6_RP_MEDIA_IS_GFX |
		   GEN6_RP_ENABLE |
		   GEN6_RP_UP_BUSY_AVG |
		   GEN6_RP_DOWN_IDLE_CONT);

	I915_WRITE(GEN6_RC6_WAKE_RATE_LIMIT, 0x00280000);
	I915_WRITE(GEN6_RC_EVALUATION_INTERVAL, 125000);
	I915_WRITE(GEN6_RC_IDLE_HYSTERSIS, 25);

7168
	for_each_engine(engine, dev_priv, id)
7169
		I915_WRITE(RING_MAX_IDLE(engine->mmio_base), 10);
7170

7171
	I915_WRITE(GEN6_RC6_THRESHOLD, 0x557);
7172 7173

	/* allows RC6 residency counter to work */
7174
	I915_WRITE(VLV_COUNTER_CONTROL,
7175 7176
		   _MASKED_BIT_ENABLE(VLV_COUNT_RANGE_HIGH |
				      VLV_MEDIA_RC0_COUNT_EN |
7177
				      VLV_RENDER_RC0_COUNT_EN |
7178 7179
				      VLV_MEDIA_RC6_COUNT_EN |
				      VLV_RENDER_RC6_COUNT_EN));
7180

7181
	if (intel_enable_rc6() & INTEL_RC6_ENABLE)
7182
		rc6_mode = GEN7_RC_CTL_TO_MODE | VLV_RC_CTL_CTX_RST_PARALLEL;
B
Ben Widawsky 已提交
7183

7184
	intel_print_rc6_info(dev_priv, rc6_mode);
B
Ben Widawsky 已提交
7185

7186
	I915_WRITE(GEN6_RC_CONTROL, rc6_mode);
7187

D
Deepak S 已提交
7188 7189 7190 7191 7192 7193
	/* Setting Fixed Bias */
	val = VLV_OVERRIDE_EN |
		  VLV_SOC_TDP_EN |
		  VLV_BIAS_CPU_125_SOC_875;
	vlv_punit_write(dev_priv, VLV_TURBO_SOC_OVERRIDE, val);

7194
	val = vlv_punit_read(dev_priv, PUNIT_REG_GPU_FREQ_STS);
7195

7196 7197 7198
	/* RPS code assumes GPLL is used */
	WARN_ONCE((val & GPLLENABLE) == 0, "GPLL not enabled\n");

7199
	DRM_DEBUG_DRIVER("GPLL enabled? %s\n", yesno(val & GPLLENABLE));
7200 7201
	DRM_DEBUG_DRIVER("GPU status: 0x%08x\n", val);

7202
	reset_rps(dev_priv, valleyview_set_rps);
7203

7204
	intel_uncore_forcewake_put(dev_priv, FORCEWAKE_ALL);
7205 7206
}

7207 7208 7209 7210 7211 7212 7213 7214 7215 7216 7217 7218 7219 7220 7221
static unsigned long intel_pxfreq(u32 vidfreq)
{
	unsigned long freq;
	int div = (vidfreq & 0x3f0000) >> 16;
	int post = (vidfreq & 0x3000) >> 12;
	int pre = (vidfreq & 0x7);

	if (!pre)
		return 0;

	freq = ((div * 133333) / ((1<<post) * pre));

	return freq;
}

7222 7223 7224 7225 7226 7227 7228 7229 7230 7231 7232 7233 7234 7235
static const struct cparams {
	u16 i;
	u16 t;
	u16 m;
	u16 c;
} cparams[] = {
	{ 1, 1333, 301, 28664 },
	{ 1, 1066, 294, 24460 },
	{ 1, 800, 294, 25192 },
	{ 0, 1333, 276, 27605 },
	{ 0, 1066, 276, 27605 },
	{ 0, 800, 231, 23784 },
};

7236
static unsigned long __i915_chipset_val(struct drm_i915_private *dev_priv)
7237 7238 7239 7240 7241 7242
{
	u64 total_count, diff, ret;
	u32 count1, count2, count3, m = 0, c = 0;
	unsigned long now = jiffies_to_msecs(jiffies), diff1;
	int i;

7243
	lockdep_assert_held(&mchdev_lock);
7244

7245
	diff1 = now - dev_priv->ips.last_time1;
7246 7247 7248 7249 7250 7251 7252

	/* Prevent division-by-zero if we are asking too fast.
	 * Also, we don't get interesting results if we are polling
	 * faster than once in 10ms, so just return the saved value
	 * in such cases.
	 */
	if (diff1 <= 10)
7253
		return dev_priv->ips.chipset_power;
7254 7255 7256 7257 7258 7259 7260 7261

	count1 = I915_READ(DMIEC);
	count2 = I915_READ(DDREC);
	count3 = I915_READ(CSIEC);

	total_count = count1 + count2 + count3;

	/* FIXME: handle per-counter overflow */
7262 7263
	if (total_count < dev_priv->ips.last_count1) {
		diff = ~0UL - dev_priv->ips.last_count1;
7264 7265
		diff += total_count;
	} else {
7266
		diff = total_count - dev_priv->ips.last_count1;
7267 7268 7269
	}

	for (i = 0; i < ARRAY_SIZE(cparams); i++) {
7270 7271
		if (cparams[i].i == dev_priv->ips.c_m &&
		    cparams[i].t == dev_priv->ips.r_t) {
7272 7273 7274 7275 7276 7277 7278 7279 7280 7281
			m = cparams[i].m;
			c = cparams[i].c;
			break;
		}
	}

	diff = div_u64(diff, diff1);
	ret = ((m * diff) + c);
	ret = div_u64(ret, 10);

7282 7283
	dev_priv->ips.last_count1 = total_count;
	dev_priv->ips.last_time1 = now;
7284

7285
	dev_priv->ips.chipset_power = ret;
7286 7287 7288 7289

	return ret;
}

7290 7291 7292 7293
unsigned long i915_chipset_val(struct drm_i915_private *dev_priv)
{
	unsigned long val;

7294
	if (INTEL_INFO(dev_priv)->gen != 5)
7295 7296 7297 7298 7299 7300 7301 7302 7303 7304 7305
		return 0;

	spin_lock_irq(&mchdev_lock);

	val = __i915_chipset_val(dev_priv);

	spin_unlock_irq(&mchdev_lock);

	return val;
}

7306 7307 7308 7309 7310 7311 7312 7313 7314 7315 7316 7317 7318 7319 7320
unsigned long i915_mch_val(struct drm_i915_private *dev_priv)
{
	unsigned long m, x, b;
	u32 tsfs;

	tsfs = I915_READ(TSFS);

	m = ((tsfs & TSFS_SLOPE_MASK) >> TSFS_SLOPE_SHIFT);
	x = I915_READ8(TR1);

	b = tsfs & TSFS_INTR_MASK;

	return ((m * x) / 127) - b;
}

7321 7322 7323 7324 7325 7326 7327 7328 7329 7330 7331 7332
static int _pxvid_to_vd(u8 pxvid)
{
	if (pxvid == 0)
		return 0;

	if (pxvid >= 8 && pxvid < 31)
		pxvid = 31;

	return (pxvid + 2) * 125;
}

static u32 pvid_to_extvid(struct drm_i915_private *dev_priv, u8 pxvid)
7333
{
7334 7335 7336
	const int vd = _pxvid_to_vd(pxvid);
	const int vm = vd - 1125;

7337
	if (INTEL_INFO(dev_priv)->is_mobile)
7338 7339 7340
		return vm > 0 ? vm : 0;

	return vd;
7341 7342
}

7343
static void __i915_update_gfx_val(struct drm_i915_private *dev_priv)
7344
{
7345
	u64 now, diff, diffms;
7346 7347
	u32 count;

7348
	lockdep_assert_held(&mchdev_lock);
7349

7350 7351 7352
	now = ktime_get_raw_ns();
	diffms = now - dev_priv->ips.last_time2;
	do_div(diffms, NSEC_PER_MSEC);
7353 7354 7355 7356 7357 7358 7359

	/* Don't divide by 0 */
	if (!diffms)
		return;

	count = I915_READ(GFXEC);

7360 7361
	if (count < dev_priv->ips.last_count2) {
		diff = ~0UL - dev_priv->ips.last_count2;
7362 7363
		diff += count;
	} else {
7364
		diff = count - dev_priv->ips.last_count2;
7365 7366
	}

7367 7368
	dev_priv->ips.last_count2 = count;
	dev_priv->ips.last_time2 = now;
7369 7370 7371 7372

	/* More magic constants... */
	diff = diff * 1181;
	diff = div_u64(diff, diffms * 10);
7373
	dev_priv->ips.gfx_power = diff;
7374 7375
}

7376 7377
void i915_update_gfx_val(struct drm_i915_private *dev_priv)
{
7378
	if (INTEL_INFO(dev_priv)->gen != 5)
7379 7380
		return;

7381
	spin_lock_irq(&mchdev_lock);
7382 7383 7384

	__i915_update_gfx_val(dev_priv);

7385
	spin_unlock_irq(&mchdev_lock);
7386 7387
}

7388
static unsigned long __i915_gfx_val(struct drm_i915_private *dev_priv)
7389 7390 7391 7392
{
	unsigned long t, corr, state1, corr2, state2;
	u32 pxvid, ext_v;

7393
	lockdep_assert_held(&mchdev_lock);
7394

7395
	pxvid = I915_READ(PXVFREQ(dev_priv->rps.cur_freq));
7396 7397 7398 7399 7400 7401 7402 7403 7404 7405 7406 7407 7408 7409 7410 7411 7412 7413 7414
	pxvid = (pxvid >> 24) & 0x7f;
	ext_v = pvid_to_extvid(dev_priv, pxvid);

	state1 = ext_v;

	t = i915_mch_val(dev_priv);

	/* Revel in the empirically derived constants */

	/* Correction factor in 1/100000 units */
	if (t > 80)
		corr = ((t * 2349) + 135940);
	else if (t >= 50)
		corr = ((t * 964) + 29317);
	else /* < 50 */
		corr = ((t * 301) + 1004);

	corr = corr * ((150142 * state1) / 10000 - 78642);
	corr /= 100000;
7415
	corr2 = (corr * dev_priv->ips.corr);
7416 7417 7418 7419

	state2 = (corr2 * state1) / 10000;
	state2 /= 100; /* convert to mW */

7420
	__i915_update_gfx_val(dev_priv);
7421

7422
	return dev_priv->ips.gfx_power + state2;
7423 7424
}

7425 7426 7427 7428
unsigned long i915_gfx_val(struct drm_i915_private *dev_priv)
{
	unsigned long val;

7429
	if (INTEL_INFO(dev_priv)->gen != 5)
7430 7431 7432 7433 7434 7435 7436 7437 7438 7439 7440
		return 0;

	spin_lock_irq(&mchdev_lock);

	val = __i915_gfx_val(dev_priv);

	spin_unlock_irq(&mchdev_lock);

	return val;
}

7441 7442 7443 7444 7445 7446 7447 7448 7449 7450 7451
/**
 * i915_read_mch_val - return value for IPS use
 *
 * Calculate and return a value for the IPS driver to use when deciding whether
 * we have thermal and power headroom to increase CPU or GPU power budget.
 */
unsigned long i915_read_mch_val(void)
{
	struct drm_i915_private *dev_priv;
	unsigned long chipset_val, graphics_val, ret = 0;

7452
	spin_lock_irq(&mchdev_lock);
7453 7454 7455 7456
	if (!i915_mch_dev)
		goto out_unlock;
	dev_priv = i915_mch_dev;

7457 7458
	chipset_val = __i915_chipset_val(dev_priv);
	graphics_val = __i915_gfx_val(dev_priv);
7459 7460 7461 7462

	ret = chipset_val + graphics_val;

out_unlock:
7463
	spin_unlock_irq(&mchdev_lock);
7464 7465 7466 7467 7468 7469 7470 7471 7472 7473 7474 7475 7476 7477 7478

	return ret;
}
EXPORT_SYMBOL_GPL(i915_read_mch_val);

/**
 * i915_gpu_raise - raise GPU frequency limit
 *
 * Raise the limit; IPS indicates we have thermal headroom.
 */
bool i915_gpu_raise(void)
{
	struct drm_i915_private *dev_priv;
	bool ret = true;

7479
	spin_lock_irq(&mchdev_lock);
7480 7481 7482 7483 7484 7485
	if (!i915_mch_dev) {
		ret = false;
		goto out_unlock;
	}
	dev_priv = i915_mch_dev;

7486 7487
	if (dev_priv->ips.max_delay > dev_priv->ips.fmax)
		dev_priv->ips.max_delay--;
7488 7489

out_unlock:
7490
	spin_unlock_irq(&mchdev_lock);
7491 7492 7493 7494 7495 7496 7497 7498 7499 7500 7501 7502 7503 7504 7505 7506

	return ret;
}
EXPORT_SYMBOL_GPL(i915_gpu_raise);

/**
 * i915_gpu_lower - lower GPU frequency limit
 *
 * IPS indicates we're close to a thermal limit, so throttle back the GPU
 * frequency maximum.
 */
bool i915_gpu_lower(void)
{
	struct drm_i915_private *dev_priv;
	bool ret = true;

7507
	spin_lock_irq(&mchdev_lock);
7508 7509 7510 7511 7512 7513
	if (!i915_mch_dev) {
		ret = false;
		goto out_unlock;
	}
	dev_priv = i915_mch_dev;

7514 7515
	if (dev_priv->ips.max_delay < dev_priv->ips.min_delay)
		dev_priv->ips.max_delay++;
7516 7517

out_unlock:
7518
	spin_unlock_irq(&mchdev_lock);
7519 7520 7521 7522 7523 7524 7525 7526 7527 7528 7529 7530 7531 7532

	return ret;
}
EXPORT_SYMBOL_GPL(i915_gpu_lower);

/**
 * i915_gpu_busy - indicate GPU business to IPS
 *
 * Tell the IPS driver whether or not the GPU is busy.
 */
bool i915_gpu_busy(void)
{
	bool ret = false;

7533
	spin_lock_irq(&mchdev_lock);
7534 7535
	if (i915_mch_dev)
		ret = i915_mch_dev->gt.awake;
7536
	spin_unlock_irq(&mchdev_lock);
7537 7538 7539 7540 7541 7542 7543 7544 7545 7546 7547 7548 7549 7550 7551 7552

	return ret;
}
EXPORT_SYMBOL_GPL(i915_gpu_busy);

/**
 * i915_gpu_turbo_disable - disable graphics turbo
 *
 * Disable graphics turbo by resetting the max frequency and setting the
 * current frequency to the default.
 */
bool i915_gpu_turbo_disable(void)
{
	struct drm_i915_private *dev_priv;
	bool ret = true;

7553
	spin_lock_irq(&mchdev_lock);
7554 7555 7556 7557 7558 7559
	if (!i915_mch_dev) {
		ret = false;
		goto out_unlock;
	}
	dev_priv = i915_mch_dev;

7560
	dev_priv->ips.max_delay = dev_priv->ips.fstart;
7561

7562
	if (!ironlake_set_drps(dev_priv, dev_priv->ips.fstart))
7563 7564 7565
		ret = false;

out_unlock:
7566
	spin_unlock_irq(&mchdev_lock);
7567 7568 7569 7570 7571 7572 7573 7574 7575 7576 7577 7578 7579 7580 7581 7582 7583 7584 7585 7586 7587 7588 7589 7590 7591 7592 7593

	return ret;
}
EXPORT_SYMBOL_GPL(i915_gpu_turbo_disable);

/**
 * Tells the intel_ips driver that the i915 driver is now loaded, if
 * IPS got loaded first.
 *
 * This awkward dance is so that neither module has to depend on the
 * other in order for IPS to do the appropriate communication of
 * GPU turbo limits to i915.
 */
static void
ips_ping_for_i915_load(void)
{
	void (*link)(void);

	link = symbol_get(ips_link_to_i915_driver);
	if (link) {
		link();
		symbol_put(ips_link_to_i915_driver);
	}
}

void intel_gpu_ips_init(struct drm_i915_private *dev_priv)
{
7594 7595
	/* We only register the i915 ips part with intel-ips once everything is
	 * set up, to avoid intel-ips sneaking in and reading bogus values. */
7596
	spin_lock_irq(&mchdev_lock);
7597
	i915_mch_dev = dev_priv;
7598
	spin_unlock_irq(&mchdev_lock);
7599 7600 7601 7602 7603 7604

	ips_ping_for_i915_load();
}

void intel_gpu_ips_teardown(void)
{
7605
	spin_lock_irq(&mchdev_lock);
7606
	i915_mch_dev = NULL;
7607
	spin_unlock_irq(&mchdev_lock);
7608
}
7609

7610
static void intel_init_emon(struct drm_i915_private *dev_priv)
7611 7612 7613 7614 7615 7616 7617 7618 7619 7620 7621 7622 7623 7624 7625 7626
{
	u32 lcfuse;
	u8 pxw[16];
	int i;

	/* Disable to program */
	I915_WRITE(ECR, 0);
	POSTING_READ(ECR);

	/* Program energy weights for various events */
	I915_WRITE(SDEW, 0x15040d00);
	I915_WRITE(CSIEW0, 0x007f0000);
	I915_WRITE(CSIEW1, 0x1e220004);
	I915_WRITE(CSIEW2, 0x04000004);

	for (i = 0; i < 5; i++)
7627
		I915_WRITE(PEW(i), 0);
7628
	for (i = 0; i < 3; i++)
7629
		I915_WRITE(DEW(i), 0);
7630 7631 7632

	/* Program P-state weights to account for frequency power adjustment */
	for (i = 0; i < 16; i++) {
7633
		u32 pxvidfreq = I915_READ(PXVFREQ(i));
7634 7635 7636 7637 7638 7639 7640 7641 7642 7643 7644 7645 7646 7647 7648 7649 7650 7651 7652 7653
		unsigned long freq = intel_pxfreq(pxvidfreq);
		unsigned long vid = (pxvidfreq & PXVFREQ_PX_MASK) >>
			PXVFREQ_PX_SHIFT;
		unsigned long val;

		val = vid * vid;
		val *= (freq / 1000);
		val *= 255;
		val /= (127*127*900);
		if (val > 0xff)
			DRM_ERROR("bad pxval: %ld\n", val);
		pxw[i] = val;
	}
	/* Render standby states get 0 weight */
	pxw[14] = 0;
	pxw[15] = 0;

	for (i = 0; i < 4; i++) {
		u32 val = (pxw[i*4] << 24) | (pxw[(i*4)+1] << 16) |
			(pxw[(i*4)+2] << 8) | (pxw[(i*4)+3]);
7654
		I915_WRITE(PXW(i), val);
7655 7656 7657 7658 7659 7660 7661 7662 7663 7664 7665 7666 7667 7668 7669
	}

	/* Adjust magic regs to magic values (more experimental results) */
	I915_WRITE(OGW0, 0);
	I915_WRITE(OGW1, 0);
	I915_WRITE(EG0, 0x00007f00);
	I915_WRITE(EG1, 0x0000000e);
	I915_WRITE(EG2, 0x000e0000);
	I915_WRITE(EG3, 0x68000300);
	I915_WRITE(EG4, 0x42000000);
	I915_WRITE(EG5, 0x00140031);
	I915_WRITE(EG6, 0);
	I915_WRITE(EG7, 0);

	for (i = 0; i < 8; i++)
7670
		I915_WRITE(PXWL(i), 0);
7671 7672 7673 7674 7675 7676

	/* Enable PMON + select events */
	I915_WRITE(ECR, 0x80000019);

	lcfuse = I915_READ(LCFUSE02);

7677
	dev_priv->ips.corr = (lcfuse & LCFUSE_HIV_MASK);
7678 7679
}

7680
void intel_init_gt_powersave(struct drm_i915_private *dev_priv)
7681
{
7682 7683 7684 7685 7686 7687 7688 7689
	/*
	 * RPM depends on RC6 to save restore the GT HW context, so make RC6 a
	 * requirement.
	 */
	if (!i915.enable_rc6) {
		DRM_INFO("RC6 disabled, disabling runtime PM support\n");
		intel_runtime_pm_get(dev_priv);
	}
I
Imre Deak 已提交
7690

7691
	mutex_lock(&dev_priv->drm.struct_mutex);
7692 7693 7694
	mutex_lock(&dev_priv->rps.hw_lock);

	/* Initialize RPS limits (for userspace) */
7695 7696 7697 7698
	if (IS_CHERRYVIEW(dev_priv))
		cherryview_init_gt_powersave(dev_priv);
	else if (IS_VALLEYVIEW(dev_priv))
		valleyview_init_gt_powersave(dev_priv);
7699
	else if (INTEL_GEN(dev_priv) >= 6)
7700 7701 7702 7703 7704 7705 7706 7707 7708 7709 7710 7711 7712 7713 7714
		gen6_init_rps_frequencies(dev_priv);

	/* Derive initial user preferences/limits from the hardware limits */
	dev_priv->rps.idle_freq = dev_priv->rps.min_freq;
	dev_priv->rps.cur_freq = dev_priv->rps.idle_freq;

	dev_priv->rps.max_freq_softlimit = dev_priv->rps.max_freq;
	dev_priv->rps.min_freq_softlimit = dev_priv->rps.min_freq;

	if (IS_HASWELL(dev_priv) || IS_BROADWELL(dev_priv))
		dev_priv->rps.min_freq_softlimit =
			max_t(int,
			      dev_priv->rps.efficient_freq,
			      intel_freq_opcode(dev_priv, 450));

7715 7716 7717 7718 7719 7720 7721 7722 7723 7724 7725 7726 7727 7728
	/* After setting max-softlimit, find the overclock max freq */
	if (IS_GEN6(dev_priv) ||
	    IS_IVYBRIDGE(dev_priv) || IS_HASWELL(dev_priv)) {
		u32 params = 0;

		sandybridge_pcode_read(dev_priv, GEN6_READ_OC_PARAMS, &params);
		if (params & BIT(31)) { /* OC supported */
			DRM_DEBUG_DRIVER("Overclocking supported, max: %dMHz, overclock: %dMHz\n",
					 (dev_priv->rps.max_freq & 0xff) * 50,
					 (params & 0xff) * 50);
			dev_priv->rps.max_freq = params & 0xff;
		}
	}

7729 7730 7731
	/* Finally allow us to boost to max by default */
	dev_priv->rps.boost_freq = dev_priv->rps.max_freq;

7732
	mutex_unlock(&dev_priv->rps.hw_lock);
7733
	mutex_unlock(&dev_priv->drm.struct_mutex);
7734 7735

	intel_autoenable_gt_powersave(dev_priv);
7736 7737
}

7738
void intel_cleanup_gt_powersave(struct drm_i915_private *dev_priv)
7739
{
7740
	if (IS_VALLEYVIEW(dev_priv))
7741
		valleyview_cleanup_gt_powersave(dev_priv);
7742 7743 7744

	if (!i915.enable_rc6)
		intel_runtime_pm_put(dev_priv);
7745 7746
}

7747 7748 7749 7750 7751 7752 7753 7754 7755 7756 7757 7758 7759 7760 7761 7762 7763 7764 7765
/**
 * intel_suspend_gt_powersave - suspend PM work and helper threads
 * @dev_priv: i915 device
 *
 * We don't want to disable RC6 or other features here, we just want
 * to make sure any work we've queued has finished and won't bother
 * us while we're suspended.
 */
void intel_suspend_gt_powersave(struct drm_i915_private *dev_priv)
{
	if (INTEL_GEN(dev_priv) < 6)
		return;

	if (cancel_delayed_work_sync(&dev_priv->rps.autoenable_work))
		intel_runtime_pm_put(dev_priv);

	/* gen6_rps_idle() will be called later to disable interrupts */
}

7766 7767 7768 7769
void intel_sanitize_gt_powersave(struct drm_i915_private *dev_priv)
{
	dev_priv->rps.enabled = true; /* force disabling */
	intel_disable_gt_powersave(dev_priv);
7770 7771

	gen6_reset_rps_interrupts(dev_priv);
7772 7773
}

7774
void intel_disable_gt_powersave(struct drm_i915_private *dev_priv)
7775
{
7776 7777
	if (!READ_ONCE(dev_priv->rps.enabled))
		return;
7778

7779
	mutex_lock(&dev_priv->rps.hw_lock);
7780

7781 7782 7783 7784 7785 7786 7787 7788 7789 7790 7791
	if (INTEL_GEN(dev_priv) >= 9) {
		gen9_disable_rc6(dev_priv);
		gen9_disable_rps(dev_priv);
	} else if (IS_CHERRYVIEW(dev_priv)) {
		cherryview_disable_rps(dev_priv);
	} else if (IS_VALLEYVIEW(dev_priv)) {
		valleyview_disable_rps(dev_priv);
	} else if (INTEL_GEN(dev_priv) >= 6) {
		gen6_disable_rps(dev_priv);
	}  else if (IS_IRONLAKE_M(dev_priv)) {
		ironlake_disable_drps(dev_priv);
7792
	}
7793 7794 7795

	dev_priv->rps.enabled = false;
	mutex_unlock(&dev_priv->rps.hw_lock);
7796 7797
}

7798
void intel_enable_gt_powersave(struct drm_i915_private *dev_priv)
7799
{
7800 7801 7802
	/* We shouldn't be disabling as we submit, so this should be less
	 * racy than it appears!
	 */
7803 7804
	if (READ_ONCE(dev_priv->rps.enabled))
		return;
7805

7806 7807 7808
	/* Powersaving is controlled by the host when inside a VM */
	if (intel_vgpu_active(dev_priv))
		return;
7809

7810
	mutex_lock(&dev_priv->rps.hw_lock);
7811 7812 7813 7814 7815

	if (IS_CHERRYVIEW(dev_priv)) {
		cherryview_enable_rps(dev_priv);
	} else if (IS_VALLEYVIEW(dev_priv)) {
		valleyview_enable_rps(dev_priv);
7816
	} else if (INTEL_GEN(dev_priv) >= 9) {
7817 7818
		gen9_enable_rc6(dev_priv);
		gen9_enable_rps(dev_priv);
7819
		if (IS_GEN9_BC(dev_priv) || IS_CANNONLAKE(dev_priv))
7820
			gen6_update_ring_freq(dev_priv);
7821 7822
	} else if (IS_BROADWELL(dev_priv)) {
		gen8_enable_rps(dev_priv);
7823
		gen6_update_ring_freq(dev_priv);
7824
	} else if (INTEL_GEN(dev_priv) >= 6) {
7825
		gen6_enable_rps(dev_priv);
7826
		gen6_update_ring_freq(dev_priv);
7827 7828 7829
	} else if (IS_IRONLAKE_M(dev_priv)) {
		ironlake_enable_drps(dev_priv);
		intel_init_emon(dev_priv);
7830
	}
7831 7832 7833 7834 7835 7836 7837

	WARN_ON(dev_priv->rps.max_freq < dev_priv->rps.min_freq);
	WARN_ON(dev_priv->rps.idle_freq > dev_priv->rps.max_freq);

	WARN_ON(dev_priv->rps.efficient_freq < dev_priv->rps.min_freq);
	WARN_ON(dev_priv->rps.efficient_freq > dev_priv->rps.max_freq);

7838
	dev_priv->rps.enabled = true;
7839 7840
	mutex_unlock(&dev_priv->rps.hw_lock);
}
I
Imre Deak 已提交
7841

7842 7843 7844 7845 7846 7847 7848 7849 7850 7851
static void __intel_autoenable_gt_powersave(struct work_struct *work)
{
	struct drm_i915_private *dev_priv =
		container_of(work, typeof(*dev_priv), rps.autoenable_work.work);
	struct intel_engine_cs *rcs;
	struct drm_i915_gem_request *req;

	if (READ_ONCE(dev_priv->rps.enabled))
		goto out;

7852
	rcs = dev_priv->engine[RCS];
7853
	if (rcs->last_retired_context)
7854 7855 7856 7857 7858 7859 7860 7861 7862 7863 7864 7865 7866 7867 7868
		goto out;

	if (!rcs->init_context)
		goto out;

	mutex_lock(&dev_priv->drm.struct_mutex);

	req = i915_gem_request_alloc(rcs, dev_priv->kernel_context);
	if (IS_ERR(req))
		goto unlock;

	if (!i915.enable_execlists && i915_switch_context(req) == 0)
		rcs->init_context(req);

	/* Mark the device busy, calling intel_enable_gt_powersave() */
7869
	i915_add_request(req);
7870 7871 7872 7873 7874 7875 7876 7877 7878 7879 7880 7881 7882 7883 7884 7885 7886 7887 7888 7889 7890 7891 7892 7893 7894 7895 7896 7897 7898 7899 7900 7901 7902 7903 7904

unlock:
	mutex_unlock(&dev_priv->drm.struct_mutex);
out:
	intel_runtime_pm_put(dev_priv);
}

void intel_autoenable_gt_powersave(struct drm_i915_private *dev_priv)
{
	if (READ_ONCE(dev_priv->rps.enabled))
		return;

	if (IS_IRONLAKE_M(dev_priv)) {
		ironlake_enable_drps(dev_priv);
		intel_init_emon(dev_priv);
	} else if (INTEL_INFO(dev_priv)->gen >= 6) {
		/*
		 * PCU communication is slow and this doesn't need to be
		 * done at any specific time, so do this out of our fast path
		 * to make resume and init faster.
		 *
		 * We depend on the HW RC6 power context save/restore
		 * mechanism when entering D3 through runtime PM suspend. So
		 * disable RPM until RPS/RC6 is properly setup. We can only
		 * get here via the driver load/system resume/runtime resume
		 * paths, so the _noresume version is enough (and in case of
		 * runtime resume it's necessary).
		 */
		if (queue_delayed_work(dev_priv->wq,
				       &dev_priv->rps.autoenable_work,
				       round_jiffies_up_relative(HZ)))
			intel_runtime_pm_get_noresume(dev_priv);
	}
}

7905
static void ibx_init_clock_gating(struct drm_i915_private *dev_priv)
7906 7907 7908 7909 7910 7911 7912 7913 7914
{
	/*
	 * On Ibex Peak and Cougar Point, we need to disable clock
	 * gating for the panel power sequencer or it will fail to
	 * start up when no ports are active.
	 */
	I915_WRITE(SOUTH_DSPCLK_GATE_D, PCH_DPLSUNIT_CLOCK_GATE_DISABLE);
}

7915
static void g4x_disable_trickle_feed(struct drm_i915_private *dev_priv)
7916
{
7917
	enum pipe pipe;
7918

7919
	for_each_pipe(dev_priv, pipe) {
7920 7921 7922
		I915_WRITE(DSPCNTR(pipe),
			   I915_READ(DSPCNTR(pipe)) |
			   DISPPLANE_TRICKLE_FEED_DISABLE);
7923 7924 7925

		I915_WRITE(DSPSURF(pipe), I915_READ(DSPSURF(pipe)));
		POSTING_READ(DSPSURF(pipe));
7926 7927 7928
	}
}

7929
static void ilk_init_lp_watermarks(struct drm_i915_private *dev_priv)
7930 7931 7932 7933 7934 7935 7936 7937 7938 7939 7940
{
	I915_WRITE(WM3_LP_ILK, I915_READ(WM3_LP_ILK) & ~WM1_LP_SR_EN);
	I915_WRITE(WM2_LP_ILK, I915_READ(WM2_LP_ILK) & ~WM1_LP_SR_EN);
	I915_WRITE(WM1_LP_ILK, I915_READ(WM1_LP_ILK) & ~WM1_LP_SR_EN);

	/*
	 * Don't touch WM1S_LP_EN here.
	 * Doing so could cause underruns.
	 */
}

7941
static void ironlake_init_clock_gating(struct drm_i915_private *dev_priv)
7942
{
7943
	uint32_t dspclk_gate = ILK_VRHUNIT_CLOCK_GATE_DISABLE;
7944

7945 7946 7947 7948
	/*
	 * Required for FBC
	 * WaFbcDisableDpfcClockGating:ilk
	 */
7949 7950 7951
	dspclk_gate |= ILK_DPFCRUNIT_CLOCK_GATE_DISABLE |
		   ILK_DPFCUNIT_CLOCK_GATE_DISABLE |
		   ILK_DPFDUNIT_CLOCK_GATE_ENABLE;
7952 7953 7954 7955 7956 7957 7958 7959 7960 7961 7962 7963 7964 7965 7966 7967 7968

	I915_WRITE(PCH_3DCGDIS0,
		   MARIUNIT_CLOCK_GATE_DISABLE |
		   SVSMUNIT_CLOCK_GATE_DISABLE);
	I915_WRITE(PCH_3DCGDIS1,
		   VFMUNIT_CLOCK_GATE_DISABLE);

	/*
	 * According to the spec the following bits should be set in
	 * order to enable memory self-refresh
	 * The bit 22/21 of 0x42004
	 * The bit 5 of 0x42020
	 * The bit 15 of 0x45000
	 */
	I915_WRITE(ILK_DISPLAY_CHICKEN2,
		   (I915_READ(ILK_DISPLAY_CHICKEN2) |
		    ILK_DPARB_GATE | ILK_VSDPFD_FULL));
7969
	dspclk_gate |= ILK_DPARBUNIT_CLOCK_GATE_ENABLE;
7970 7971 7972
	I915_WRITE(DISP_ARB_CTL,
		   (I915_READ(DISP_ARB_CTL) |
		    DISP_FBC_WM_DIS));
7973

7974
	ilk_init_lp_watermarks(dev_priv);
7975 7976 7977 7978 7979 7980 7981 7982

	/*
	 * Based on the document from hardware guys the following bits
	 * should be set unconditionally in order to enable FBC.
	 * The bit 22 of 0x42000
	 * The bit 22 of 0x42004
	 * The bit 7,8,9 of 0x42020.
	 */
7983
	if (IS_IRONLAKE_M(dev_priv)) {
7984
		/* WaFbcAsynchFlipDisableFbcQueue:ilk */
7985 7986 7987 7988 7989 7990 7991 7992
		I915_WRITE(ILK_DISPLAY_CHICKEN1,
			   I915_READ(ILK_DISPLAY_CHICKEN1) |
			   ILK_FBCQ_DIS);
		I915_WRITE(ILK_DISPLAY_CHICKEN2,
			   I915_READ(ILK_DISPLAY_CHICKEN2) |
			   ILK_DPARB_GATE);
	}

7993 7994
	I915_WRITE(ILK_DSPCLK_GATE_D, dspclk_gate);

7995 7996 7997 7998 7999 8000
	I915_WRITE(ILK_DISPLAY_CHICKEN2,
		   I915_READ(ILK_DISPLAY_CHICKEN2) |
		   ILK_ELPIN_409_SELECT);
	I915_WRITE(_3D_CHICKEN2,
		   _3D_CHICKEN2_WM_READ_PIPELINED << 16 |
		   _3D_CHICKEN2_WM_READ_PIPELINED);
8001

8002
	/* WaDisableRenderCachePipelinedFlush:ilk */
8003 8004
	I915_WRITE(CACHE_MODE_0,
		   _MASKED_BIT_ENABLE(CM0_PIPELINED_RENDER_FLUSH_DISABLE));
8005

8006 8007 8008
	/* WaDisable_RenderCache_OperationalFlush:ilk */
	I915_WRITE(CACHE_MODE_0, _MASKED_BIT_DISABLE(RC_OP_FLUSH_ENABLE));

8009
	g4x_disable_trickle_feed(dev_priv);
8010

8011
	ibx_init_clock_gating(dev_priv);
8012 8013
}

8014
static void cpt_init_clock_gating(struct drm_i915_private *dev_priv)
8015 8016
{
	int pipe;
8017
	uint32_t val;
8018 8019 8020 8021 8022 8023

	/*
	 * On Ibex Peak and Cougar Point, we need to disable clock
	 * gating for the panel power sequencer or it will fail to
	 * start up when no ports are active.
	 */
8024 8025 8026
	I915_WRITE(SOUTH_DSPCLK_GATE_D, PCH_DPLSUNIT_CLOCK_GATE_DISABLE |
		   PCH_DPLUNIT_CLOCK_GATE_DISABLE |
		   PCH_CPUNIT_CLOCK_GATE_DISABLE);
8027 8028
	I915_WRITE(SOUTH_CHICKEN2, I915_READ(SOUTH_CHICKEN2) |
		   DPLS_EDP_PPS_FIX_DIS);
8029 8030 8031
	/* The below fixes the weird display corruption, a few pixels shifted
	 * downward, on (only) LVDS of some HP laptops with IVY.
	 */
8032
	for_each_pipe(dev_priv, pipe) {
8033 8034 8035
		val = I915_READ(TRANS_CHICKEN2(pipe));
		val |= TRANS_CHICKEN2_TIMING_OVERRIDE;
		val &= ~TRANS_CHICKEN2_FDI_POLARITY_REVERSED;
8036
		if (dev_priv->vbt.fdi_rx_polarity_inverted)
8037
			val |= TRANS_CHICKEN2_FDI_POLARITY_REVERSED;
8038 8039 8040
		val &= ~TRANS_CHICKEN2_FRAME_START_DELAY_MASK;
		val &= ~TRANS_CHICKEN2_DISABLE_DEEP_COLOR_COUNTER;
		val &= ~TRANS_CHICKEN2_DISABLE_DEEP_COLOR_MODESWITCH;
8041 8042
		I915_WRITE(TRANS_CHICKEN2(pipe), val);
	}
8043
	/* WADP0ClockGatingDisable */
8044
	for_each_pipe(dev_priv, pipe) {
8045 8046 8047
		I915_WRITE(TRANS_CHICKEN1(pipe),
			   TRANS_CHICKEN1_DP0UNIT_GC_DISABLE);
	}
8048 8049
}

8050
static void gen6_check_mch_setup(struct drm_i915_private *dev_priv)
8051 8052 8053 8054
{
	uint32_t tmp;

	tmp = I915_READ(MCH_SSKPD);
8055 8056 8057
	if ((tmp & MCH_SSKPD_WM0_MASK) != MCH_SSKPD_WM0_VAL)
		DRM_DEBUG_KMS("Wrong MCH_SSKPD value: 0x%08x This can cause underruns.\n",
			      tmp);
8058 8059
}

8060
static void gen6_init_clock_gating(struct drm_i915_private *dev_priv)
8061
{
8062
	uint32_t dspclk_gate = ILK_VRHUNIT_CLOCK_GATE_DISABLE;
8063

8064
	I915_WRITE(ILK_DSPCLK_GATE_D, dspclk_gate);
8065 8066 8067 8068 8069

	I915_WRITE(ILK_DISPLAY_CHICKEN2,
		   I915_READ(ILK_DISPLAY_CHICKEN2) |
		   ILK_ELPIN_409_SELECT);

8070
	/* WaDisableHiZPlanesWhenMSAAEnabled:snb */
8071 8072 8073
	I915_WRITE(_3D_CHICKEN,
		   _MASKED_BIT_ENABLE(_3D_CHICKEN_HIZ_PLANE_DISABLE_MSAA_4X_SNB));

8074 8075 8076
	/* WaDisable_RenderCache_OperationalFlush:snb */
	I915_WRITE(CACHE_MODE_0, _MASKED_BIT_DISABLE(RC_OP_FLUSH_ENABLE));

8077 8078 8079
	/*
	 * BSpec recoomends 8x4 when MSAA is used,
	 * however in practice 16x4 seems fastest.
8080 8081 8082 8083
	 *
	 * Note that PS/WM thread counts depend on the WIZ hashing
	 * disable bit, which we don't touch here, but it's good
	 * to keep in mind (see 3DSTATE_PS and 3DSTATE_WM).
8084 8085
	 */
	I915_WRITE(GEN6_GT_MODE,
8086
		   _MASKED_FIELD(GEN6_WIZ_HASHING_MASK, GEN6_WIZ_HASHING_16x4));
8087

8088
	ilk_init_lp_watermarks(dev_priv);
8089 8090

	I915_WRITE(CACHE_MODE_0,
8091
		   _MASKED_BIT_DISABLE(CM0_STC_EVICT_DISABLE_LRA_SNB));
8092 8093 8094 8095 8096 8097 8098 8099 8100 8101 8102 8103 8104 8105 8106

	I915_WRITE(GEN6_UCGCTL1,
		   I915_READ(GEN6_UCGCTL1) |
		   GEN6_BLBUNIT_CLOCK_GATE_DISABLE |
		   GEN6_CSUNIT_CLOCK_GATE_DISABLE);

	/* According to the BSpec vol1g, bit 12 (RCPBUNIT) clock
	 * gating disable must be set.  Failure to set it results in
	 * flickering pixels due to Z write ordering failures after
	 * some amount of runtime in the Mesa "fire" demo, and Unigine
	 * Sanctuary and Tropics, and apparently anything else with
	 * alpha test or pixel discard.
	 *
	 * According to the spec, bit 11 (RCCUNIT) must also be set,
	 * but we didn't debug actual testcases to find it out.
8107
	 *
8108 8109
	 * WaDisableRCCUnitClockGating:snb
	 * WaDisableRCPBUnitClockGating:snb
8110 8111 8112 8113 8114
	 */
	I915_WRITE(GEN6_UCGCTL2,
		   GEN6_RCPBUNIT_CLOCK_GATE_DISABLE |
		   GEN6_RCCUNIT_CLOCK_GATE_DISABLE);

8115
	/* WaStripsFansDisableFastClipPerformanceFix:snb */
8116 8117
	I915_WRITE(_3D_CHICKEN3,
		   _MASKED_BIT_ENABLE(_3D_CHICKEN3_SF_DISABLE_FASTCLIP_CULL));
8118

8119 8120 8121 8122 8123 8124 8125 8126
	/*
	 * Bspec says:
	 * "This bit must be set if 3DSTATE_CLIP clip mode is set to normal and
	 * 3DSTATE_SF number of SF output attributes is more than 16."
	 */
	I915_WRITE(_3D_CHICKEN3,
		   _MASKED_BIT_ENABLE(_3D_CHICKEN3_SF_DISABLE_PIPELINED_ATTR_FETCH));

8127 8128 8129 8130 8131 8132 8133 8134
	/*
	 * According to the spec the following bits should be
	 * set in order to enable memory self-refresh and fbc:
	 * The bit21 and bit22 of 0x42000
	 * The bit21 and bit22 of 0x42004
	 * The bit5 and bit7 of 0x42020
	 * The bit14 of 0x70180
	 * The bit14 of 0x71180
8135 8136
	 *
	 * WaFbcAsynchFlipDisableFbcQueue:snb
8137 8138 8139 8140 8141 8142 8143
	 */
	I915_WRITE(ILK_DISPLAY_CHICKEN1,
		   I915_READ(ILK_DISPLAY_CHICKEN1) |
		   ILK_FBCQ_DIS | ILK_PABSTRETCH_DIS);
	I915_WRITE(ILK_DISPLAY_CHICKEN2,
		   I915_READ(ILK_DISPLAY_CHICKEN2) |
		   ILK_DPARB_GATE | ILK_VSDPFD_FULL);
8144 8145 8146 8147
	I915_WRITE(ILK_DSPCLK_GATE_D,
		   I915_READ(ILK_DSPCLK_GATE_D) |
		   ILK_DPARBUNIT_CLOCK_GATE_ENABLE  |
		   ILK_DPFDUNIT_CLOCK_GATE_ENABLE);
8148

8149
	g4x_disable_trickle_feed(dev_priv);
B
Ben Widawsky 已提交
8150

8151
	cpt_init_clock_gating(dev_priv);
8152

8153
	gen6_check_mch_setup(dev_priv);
8154 8155 8156 8157 8158 8159
}

static void gen7_setup_fixed_func_scheduler(struct drm_i915_private *dev_priv)
{
	uint32_t reg = I915_READ(GEN7_FF_THREAD_MODE);

8160
	/*
8161
	 * WaVSThreadDispatchOverride:ivb,vlv
8162 8163 8164 8165
	 *
	 * This actually overrides the dispatch
	 * mode for all thread types.
	 */
8166 8167 8168 8169 8170 8171 8172 8173
	reg &= ~GEN7_FF_SCHED_MASK;
	reg |= GEN7_FF_TS_SCHED_HW;
	reg |= GEN7_FF_VS_SCHED_HW;
	reg |= GEN7_FF_DS_SCHED_HW;

	I915_WRITE(GEN7_FF_THREAD_MODE, reg);
}

8174
static void lpt_init_clock_gating(struct drm_i915_private *dev_priv)
8175 8176 8177 8178 8179
{
	/*
	 * TODO: this bit should only be enabled when really needed, then
	 * disabled when not needed anymore in order to save power.
	 */
8180
	if (HAS_PCH_LPT_LP(dev_priv))
8181 8182 8183
		I915_WRITE(SOUTH_DSPCLK_GATE_D,
			   I915_READ(SOUTH_DSPCLK_GATE_D) |
			   PCH_LP_PARTITION_LEVEL_DISABLE);
8184 8185

	/* WADPOClockGatingDisable:hsw */
8186 8187
	I915_WRITE(TRANS_CHICKEN1(PIPE_A),
		   I915_READ(TRANS_CHICKEN1(PIPE_A)) |
8188
		   TRANS_CHICKEN1_DP0UNIT_GC_DISABLE);
8189 8190
}

8191
static void lpt_suspend_hw(struct drm_i915_private *dev_priv)
8192
{
8193
	if (HAS_PCH_LPT_LP(dev_priv)) {
8194 8195 8196 8197 8198 8199 8200
		uint32_t val = I915_READ(SOUTH_DSPCLK_GATE_D);

		val &= ~PCH_LP_PARTITION_LEVEL_DISABLE;
		I915_WRITE(SOUTH_DSPCLK_GATE_D, val);
	}
}

8201 8202 8203 8204 8205 8206 8207 8208 8209 8210 8211 8212 8213 8214 8215 8216 8217 8218 8219 8220 8221 8222 8223
static void gen8_set_l3sqc_credits(struct drm_i915_private *dev_priv,
				   int general_prio_credits,
				   int high_prio_credits)
{
	u32 misccpctl;

	/* WaTempDisableDOPClkGating:bdw */
	misccpctl = I915_READ(GEN7_MISCCPCTL);
	I915_WRITE(GEN7_MISCCPCTL, misccpctl & ~GEN7_DOP_CLOCK_GATE_ENABLE);

	I915_WRITE(GEN8_L3SQCREG1,
		   L3_GENERAL_PRIO_CREDITS(general_prio_credits) |
		   L3_HIGH_PRIO_CREDITS(high_prio_credits));

	/*
	 * Wait at least 100 clocks before re-enabling clock gating.
	 * See the definition of L3SQCREG1 in BSpec.
	 */
	POSTING_READ(GEN8_L3SQCREG1);
	udelay(1);
	I915_WRITE(GEN7_MISCCPCTL, misccpctl);
}

8224
static void kabylake_init_clock_gating(struct drm_i915_private *dev_priv)
8225
{
8226
	gen9_init_clock_gating(dev_priv);
8227 8228 8229 8230 8231

	/* WaDisableSDEUnitClockGating:kbl */
	if (IS_KBL_REVID(dev_priv, 0, KBL_REVID_B0))
		I915_WRITE(GEN8_UCGCTL6, I915_READ(GEN8_UCGCTL6) |
			   GEN8_SDEUNIT_CLOCK_GATE_DISABLE);
8232 8233 8234 8235 8236

	/* WaDisableGamClockGating:kbl */
	if (IS_KBL_REVID(dev_priv, 0, KBL_REVID_B0))
		I915_WRITE(GEN6_UCGCTL1, I915_READ(GEN6_UCGCTL1) |
			   GEN6_GAMUNIT_CLOCK_GATE_DISABLE);
8237

8238
	/* WaFbcNukeOnHostModify:kbl,cfl */
8239 8240
	I915_WRITE(ILK_DPFC_CHICKEN, I915_READ(ILK_DPFC_CHICKEN) |
		   ILK_DPFC_NUKE_ON_ANY_MODIFICATION);
8241 8242
}

8243
static void skylake_init_clock_gating(struct drm_i915_private *dev_priv)
8244
{
8245
	gen9_init_clock_gating(dev_priv);
8246 8247 8248 8249

	/* WAC6entrylatency:skl */
	I915_WRITE(FBC_LLC_READ_CTRL, I915_READ(FBC_LLC_READ_CTRL) |
		   FBC_LLC_FULLY_OPEN);
8250 8251 8252 8253

	/* WaFbcNukeOnHostModify:skl */
	I915_WRITE(ILK_DPFC_CHICKEN, I915_READ(ILK_DPFC_CHICKEN) |
		   ILK_DPFC_NUKE_ON_ANY_MODIFICATION);
8254 8255
}

8256
static void broadwell_init_clock_gating(struct drm_i915_private *dev_priv)
B
Ben Widawsky 已提交
8257
{
8258
	enum pipe pipe;
B
Ben Widawsky 已提交
8259

8260
	ilk_init_lp_watermarks(dev_priv);
8261

8262
	/* WaSwitchSolVfFArbitrationPriority:bdw */
8263
	I915_WRITE(GAM_ECOCHK, I915_READ(GAM_ECOCHK) | HSW_ECOCHK_ARB_PRIO_SOL);
8264

8265
	/* WaPsrDPAMaskVBlankInSRD:bdw */
8266 8267 8268
	I915_WRITE(CHICKEN_PAR1_1,
		   I915_READ(CHICKEN_PAR1_1) | DPA_MASK_VBLANK_SRD);

8269
	/* WaPsrDPRSUnmaskVBlankInSRD:bdw */
8270
	for_each_pipe(dev_priv, pipe) {
8271
		I915_WRITE(CHICKEN_PIPESL_1(pipe),
8272
			   I915_READ(CHICKEN_PIPESL_1(pipe)) |
8273
			   BDW_DPRS_MASK_VBLANK_SRD);
8274
	}
8275

8276 8277 8278 8279 8280
	/* WaVSRefCountFullforceMissDisable:bdw */
	/* WaDSRefCountFullforceMissDisable:bdw */
	I915_WRITE(GEN7_FF_THREAD_MODE,
		   I915_READ(GEN7_FF_THREAD_MODE) &
		   ~(GEN8_FF_DS_REF_CNT_FFME | GEN7_FF_VS_REF_CNT_FFME));
8281

8282 8283
	I915_WRITE(GEN6_RC_SLEEP_PSMI_CONTROL,
		   _MASKED_BIT_ENABLE(GEN8_RC_SEMA_IDLE_MSG_DISABLE));
8284 8285 8286 8287

	/* WaDisableSDEUnitClockGating:bdw */
	I915_WRITE(GEN8_UCGCTL6, I915_READ(GEN8_UCGCTL6) |
		   GEN8_SDEUNIT_CLOCK_GATE_DISABLE);
8288

8289 8290
	/* WaProgramL3SqcReg1Default:bdw */
	gen8_set_l3sqc_credits(dev_priv, 30, 2);
8291

8292 8293 8294 8295 8296 8297 8298
	/*
	 * WaGttCachingOffByDefault:bdw
	 * GTT cache may not work with big pages, so if those
	 * are ever enabled GTT cache may need to be disabled.
	 */
	I915_WRITE(HSW_GTT_CACHE_EN, GTT_CACHE_EN_ALL);

8299 8300 8301 8302
	/* WaKVMNotificationOnConfigChange:bdw */
	I915_WRITE(CHICKEN_PAR2_1, I915_READ(CHICKEN_PAR2_1)
		   | KVM_CONFIG_CHANGE_NOTIFICATION_SELECT);

8303
	lpt_init_clock_gating(dev_priv);
8304 8305 8306 8307 8308 8309 8310 8311

	/* WaDisableDopClockGating:bdw
	 *
	 * Also see the CHICKEN2 write in bdw_init_workarounds() to disable DOP
	 * clock gating.
	 */
	I915_WRITE(GEN6_UCGCTL1,
		   I915_READ(GEN6_UCGCTL1) | GEN6_EU_TCUNIT_CLOCK_GATE_DISABLE);
B
Ben Widawsky 已提交
8312 8313
}

8314
static void haswell_init_clock_gating(struct drm_i915_private *dev_priv)
8315
{
8316
	ilk_init_lp_watermarks(dev_priv);
8317

8318 8319 8320 8321 8322
	/* L3 caching of data atomics doesn't work -- disable it. */
	I915_WRITE(HSW_SCRATCH1, HSW_SCRATCH1_L3_DATA_ATOMICS_DISABLE);
	I915_WRITE(HSW_ROW_CHICKEN3,
		   _MASKED_BIT_ENABLE(HSW_ROW_CHICKEN3_L3_GLOBAL_ATOMICS_DISABLE));

8323
	/* This is required by WaCatErrorRejectionIssue:hsw */
8324 8325 8326 8327
	I915_WRITE(GEN7_SQ_CHICKEN_MBCUNIT_CONFIG,
			I915_READ(GEN7_SQ_CHICKEN_MBCUNIT_CONFIG) |
			GEN7_SQ_CHICKEN_MBCUNIT_SQINTMOB);

8328 8329 8330
	/* WaVSRefCountFullforceMissDisable:hsw */
	I915_WRITE(GEN7_FF_THREAD_MODE,
		   I915_READ(GEN7_FF_THREAD_MODE) & ~GEN7_FF_VS_REF_CNT_FFME);
8331

8332 8333 8334
	/* WaDisable_RenderCache_OperationalFlush:hsw */
	I915_WRITE(CACHE_MODE_0_GEN7, _MASKED_BIT_DISABLE(RC_OP_FLUSH_ENABLE));

8335 8336 8337 8338
	/* enable HiZ Raw Stall Optimization */
	I915_WRITE(CACHE_MODE_0_GEN7,
		   _MASKED_BIT_DISABLE(HIZ_RAW_STALL_OPT_DISABLE));

8339
	/* WaDisable4x2SubspanOptimization:hsw */
8340 8341
	I915_WRITE(CACHE_MODE_1,
		   _MASKED_BIT_ENABLE(PIXEL_SUBSPAN_COLLECT_OPT_DISABLE));
8342

8343 8344 8345
	/*
	 * BSpec recommends 8x4 when MSAA is used,
	 * however in practice 16x4 seems fastest.
8346 8347 8348 8349
	 *
	 * Note that PS/WM thread counts depend on the WIZ hashing
	 * disable bit, which we don't touch here, but it's good
	 * to keep in mind (see 3DSTATE_PS and 3DSTATE_WM).
8350 8351
	 */
	I915_WRITE(GEN7_GT_MODE,
8352
		   _MASKED_FIELD(GEN6_WIZ_HASHING_MASK, GEN6_WIZ_HASHING_16x4));
8353

8354 8355 8356 8357
	/* WaSampleCChickenBitEnable:hsw */
	I915_WRITE(HALF_SLICE_CHICKEN3,
		   _MASKED_BIT_ENABLE(HSW_SAMPLE_C_PERFORMANCE));

8358
	/* WaSwitchSolVfFArbitrationPriority:hsw */
8359 8360
	I915_WRITE(GAM_ECOCHK, I915_READ(GAM_ECOCHK) | HSW_ECOCHK_ARB_PRIO_SOL);

8361 8362 8363
	/* WaRsPkgCStateDisplayPMReq:hsw */
	I915_WRITE(CHICKEN_PAR1_1,
		   I915_READ(CHICKEN_PAR1_1) | FORCE_ARB_IDLE_PLANES);
8364

8365
	lpt_init_clock_gating(dev_priv);
8366 8367
}

8368
static void ivybridge_init_clock_gating(struct drm_i915_private *dev_priv)
8369
{
8370
	uint32_t snpcr;
8371

8372
	ilk_init_lp_watermarks(dev_priv);
8373

8374
	I915_WRITE(ILK_DSPCLK_GATE_D, ILK_VRHUNIT_CLOCK_GATE_DISABLE);
8375

8376
	/* WaDisableEarlyCull:ivb */
8377 8378 8379
	I915_WRITE(_3D_CHICKEN3,
		   _MASKED_BIT_ENABLE(_3D_CHICKEN_SF_DISABLE_OBJEND_CULL));

8380
	/* WaDisableBackToBackFlipFix:ivb */
8381 8382 8383 8384
	I915_WRITE(IVB_CHICKEN3,
		   CHICKEN3_DGMG_REQ_OUT_FIX_DISABLE |
		   CHICKEN3_DGMG_DONE_FIX_DISABLE);

8385
	/* WaDisablePSDDualDispatchEnable:ivb */
8386
	if (IS_IVB_GT1(dev_priv))
8387 8388 8389
		I915_WRITE(GEN7_HALF_SLICE_CHICKEN1,
			   _MASKED_BIT_ENABLE(GEN7_PSD_SINGLE_PORT_DISPATCH_ENABLE));

8390 8391 8392
	/* WaDisable_RenderCache_OperationalFlush:ivb */
	I915_WRITE(CACHE_MODE_0_GEN7, _MASKED_BIT_DISABLE(RC_OP_FLUSH_ENABLE));

8393
	/* Apply the WaDisableRHWOOptimizationForRenderHang:ivb workaround. */
8394 8395 8396
	I915_WRITE(GEN7_COMMON_SLICE_CHICKEN1,
		   GEN7_CSC1_RHWO_OPT_DISABLE_IN_RCC);

8397
	/* WaApplyL3ControlAndL3ChickenMode:ivb */
8398 8399 8400
	I915_WRITE(GEN7_L3CNTLREG1,
			GEN7_WA_FOR_GEN7_L3_CONTROL);
	I915_WRITE(GEN7_L3_CHICKEN_MODE_REGISTER,
8401
		   GEN7_WA_L3_CHICKEN_MODE);
8402
	if (IS_IVB_GT1(dev_priv))
8403 8404
		I915_WRITE(GEN7_ROW_CHICKEN2,
			   _MASKED_BIT_ENABLE(DOP_CLOCK_GATING_DISABLE));
8405 8406 8407 8408
	else {
		/* must write both registers */
		I915_WRITE(GEN7_ROW_CHICKEN2,
			   _MASKED_BIT_ENABLE(DOP_CLOCK_GATING_DISABLE));
8409 8410
		I915_WRITE(GEN7_ROW_CHICKEN2_GT2,
			   _MASKED_BIT_ENABLE(DOP_CLOCK_GATING_DISABLE));
8411
	}
8412

8413
	/* WaForceL3Serialization:ivb */
8414 8415 8416
	I915_WRITE(GEN7_L3SQCREG4, I915_READ(GEN7_L3SQCREG4) &
		   ~L3SQ_URB_READ_CAM_MATCH_DISABLE);

8417
	/*
8418
	 * According to the spec, bit 13 (RCZUNIT) must be set on IVB.
8419
	 * This implements the WaDisableRCZUnitClockGating:ivb workaround.
8420 8421
	 */
	I915_WRITE(GEN6_UCGCTL2,
8422
		   GEN6_RCZUNIT_CLOCK_GATE_DISABLE);
8423

8424
	/* This is required by WaCatErrorRejectionIssue:ivb */
8425 8426 8427 8428
	I915_WRITE(GEN7_SQ_CHICKEN_MBCUNIT_CONFIG,
			I915_READ(GEN7_SQ_CHICKEN_MBCUNIT_CONFIG) |
			GEN7_SQ_CHICKEN_MBCUNIT_SQINTMOB);

8429
	g4x_disable_trickle_feed(dev_priv);
8430 8431

	gen7_setup_fixed_func_scheduler(dev_priv);
8432

8433 8434 8435 8436 8437
	if (0) { /* causes HiZ corruption on ivb:gt1 */
		/* enable HiZ Raw Stall Optimization */
		I915_WRITE(CACHE_MODE_0_GEN7,
			   _MASKED_BIT_DISABLE(HIZ_RAW_STALL_OPT_DISABLE));
	}
8438

8439
	/* WaDisable4x2SubspanOptimization:ivb */
8440 8441
	I915_WRITE(CACHE_MODE_1,
		   _MASKED_BIT_ENABLE(PIXEL_SUBSPAN_COLLECT_OPT_DISABLE));
8442

8443 8444 8445
	/*
	 * BSpec recommends 8x4 when MSAA is used,
	 * however in practice 16x4 seems fastest.
8446 8447 8448 8449
	 *
	 * Note that PS/WM thread counts depend on the WIZ hashing
	 * disable bit, which we don't touch here, but it's good
	 * to keep in mind (see 3DSTATE_PS and 3DSTATE_WM).
8450 8451
	 */
	I915_WRITE(GEN7_GT_MODE,
8452
		   _MASKED_FIELD(GEN6_WIZ_HASHING_MASK, GEN6_WIZ_HASHING_16x4));
8453

8454 8455 8456 8457
	snpcr = I915_READ(GEN6_MBCUNIT_SNPCR);
	snpcr &= ~GEN6_MBC_SNPCR_MASK;
	snpcr |= GEN6_MBC_SNPCR_MED;
	I915_WRITE(GEN6_MBCUNIT_SNPCR, snpcr);
8458

8459
	if (!HAS_PCH_NOP(dev_priv))
8460
		cpt_init_clock_gating(dev_priv);
8461

8462
	gen6_check_mch_setup(dev_priv);
8463 8464
}

8465
static void valleyview_init_clock_gating(struct drm_i915_private *dev_priv)
8466
{
8467
	/* WaDisableEarlyCull:vlv */
8468 8469 8470
	I915_WRITE(_3D_CHICKEN3,
		   _MASKED_BIT_ENABLE(_3D_CHICKEN_SF_DISABLE_OBJEND_CULL));

8471
	/* WaDisableBackToBackFlipFix:vlv */
8472 8473 8474 8475
	I915_WRITE(IVB_CHICKEN3,
		   CHICKEN3_DGMG_REQ_OUT_FIX_DISABLE |
		   CHICKEN3_DGMG_DONE_FIX_DISABLE);

8476
	/* WaPsdDispatchEnable:vlv */
8477
	/* WaDisablePSDDualDispatchEnable:vlv */
8478
	I915_WRITE(GEN7_HALF_SLICE_CHICKEN1,
8479 8480
		   _MASKED_BIT_ENABLE(GEN7_MAX_PS_THREAD_DEP |
				      GEN7_PSD_SINGLE_PORT_DISPATCH_ENABLE));
8481

8482 8483 8484
	/* WaDisable_RenderCache_OperationalFlush:vlv */
	I915_WRITE(CACHE_MODE_0_GEN7, _MASKED_BIT_DISABLE(RC_OP_FLUSH_ENABLE));

8485
	/* WaForceL3Serialization:vlv */
8486 8487 8488
	I915_WRITE(GEN7_L3SQCREG4, I915_READ(GEN7_L3SQCREG4) &
		   ~L3SQ_URB_READ_CAM_MATCH_DISABLE);

8489
	/* WaDisableDopClockGating:vlv */
8490 8491 8492
	I915_WRITE(GEN7_ROW_CHICKEN2,
		   _MASKED_BIT_ENABLE(DOP_CLOCK_GATING_DISABLE));

8493
	/* This is required by WaCatErrorRejectionIssue:vlv */
8494 8495 8496 8497
	I915_WRITE(GEN7_SQ_CHICKEN_MBCUNIT_CONFIG,
		   I915_READ(GEN7_SQ_CHICKEN_MBCUNIT_CONFIG) |
		   GEN7_SQ_CHICKEN_MBCUNIT_SQINTMOB);

8498 8499
	gen7_setup_fixed_func_scheduler(dev_priv);

8500
	/*
8501
	 * According to the spec, bit 13 (RCZUNIT) must be set on IVB.
8502
	 * This implements the WaDisableRCZUnitClockGating:vlv workaround.
8503 8504
	 */
	I915_WRITE(GEN6_UCGCTL2,
8505
		   GEN6_RCZUNIT_CLOCK_GATE_DISABLE);
8506

8507 8508 8509 8510 8511
	/* WaDisableL3Bank2xClockGate:vlv
	 * Disabling L3 clock gating- MMIO 940c[25] = 1
	 * Set bit 25, to disable L3_BANK_2x_CLK_GATING */
	I915_WRITE(GEN7_UCGCTL4,
		   I915_READ(GEN7_UCGCTL4) | GEN7_L3BANK2X_CLOCK_GATE_DISABLE);
8512

8513 8514 8515 8516
	/*
	 * BSpec says this must be set, even though
	 * WaDisable4x2SubspanOptimization isn't listed for VLV.
	 */
8517 8518
	I915_WRITE(CACHE_MODE_1,
		   _MASKED_BIT_ENABLE(PIXEL_SUBSPAN_COLLECT_OPT_DISABLE));
8519

8520 8521 8522 8523 8524 8525 8526 8527 8528 8529 8530
	/*
	 * BSpec recommends 8x4 when MSAA is used,
	 * however in practice 16x4 seems fastest.
	 *
	 * Note that PS/WM thread counts depend on the WIZ hashing
	 * disable bit, which we don't touch here, but it's good
	 * to keep in mind (see 3DSTATE_PS and 3DSTATE_WM).
	 */
	I915_WRITE(GEN7_GT_MODE,
		   _MASKED_FIELD(GEN6_WIZ_HASHING_MASK, GEN6_WIZ_HASHING_16x4));

8531 8532 8533 8534 8535 8536
	/*
	 * WaIncreaseL3CreditsForVLVB0:vlv
	 * This is the hardware default actually.
	 */
	I915_WRITE(GEN7_L3SQCREG1, VLV_B0_WA_L3SQCREG1_VALUE);

8537
	/*
8538
	 * WaDisableVLVClockGating_VBIIssue:vlv
8539 8540 8541
	 * Disable clock gating on th GCFG unit to prevent a delay
	 * in the reporting of vblank events.
	 */
8542
	I915_WRITE(VLV_GUNIT_CLOCK_GATE, GCFG_DIS);
8543 8544
}

8545
static void cherryview_init_clock_gating(struct drm_i915_private *dev_priv)
8546
{
8547 8548 8549 8550 8551
	/* WaVSRefCountFullforceMissDisable:chv */
	/* WaDSRefCountFullforceMissDisable:chv */
	I915_WRITE(GEN7_FF_THREAD_MODE,
		   I915_READ(GEN7_FF_THREAD_MODE) &
		   ~(GEN8_FF_DS_REF_CNT_FFME | GEN7_FF_VS_REF_CNT_FFME));
8552 8553 8554 8555

	/* WaDisableSemaphoreAndSyncFlipWait:chv */
	I915_WRITE(GEN6_RC_SLEEP_PSMI_CONTROL,
		   _MASKED_BIT_ENABLE(GEN8_RC_SEMA_IDLE_MSG_DISABLE));
8556 8557 8558 8559

	/* WaDisableCSUnitClockGating:chv */
	I915_WRITE(GEN6_UCGCTL1, I915_READ(GEN6_UCGCTL1) |
		   GEN6_CSUNIT_CLOCK_GATE_DISABLE);
8560 8561 8562 8563

	/* WaDisableSDEUnitClockGating:chv */
	I915_WRITE(GEN8_UCGCTL6, I915_READ(GEN8_UCGCTL6) |
		   GEN8_SDEUNIT_CLOCK_GATE_DISABLE);
8564

8565 8566 8567 8568 8569 8570 8571
	/*
	 * WaProgramL3SqcReg1Default:chv
	 * See gfxspecs/Related Documents/Performance Guide/
	 * LSQC Setting Recommendations.
	 */
	gen8_set_l3sqc_credits(dev_priv, 38, 2);

8572 8573 8574 8575 8576
	/*
	 * GTT cache may not work with big pages, so if those
	 * are ever enabled GTT cache may need to be disabled.
	 */
	I915_WRITE(HSW_GTT_CACHE_EN, GTT_CACHE_EN_ALL);
8577 8578
}

8579
static void g4x_init_clock_gating(struct drm_i915_private *dev_priv)
8580 8581 8582 8583 8584 8585 8586 8587 8588 8589 8590
{
	uint32_t dspclk_gate;

	I915_WRITE(RENCLK_GATE_D1, 0);
	I915_WRITE(RENCLK_GATE_D2, VF_UNIT_CLOCK_GATE_DISABLE |
		   GS_UNIT_CLOCK_GATE_DISABLE |
		   CL_UNIT_CLOCK_GATE_DISABLE);
	I915_WRITE(RAMCLK_GATE_D, 0);
	dspclk_gate = VRHUNIT_CLOCK_GATE_DISABLE |
		OVRUNIT_CLOCK_GATE_DISABLE |
		OVCUNIT_CLOCK_GATE_DISABLE;
8591
	if (IS_GM45(dev_priv))
8592 8593
		dspclk_gate |= DSSUNIT_CLOCK_GATE_DISABLE;
	I915_WRITE(DSPCLK_GATE_D, dspclk_gate);
8594 8595 8596 8597

	/* WaDisableRenderCachePipelinedFlush */
	I915_WRITE(CACHE_MODE_0,
		   _MASKED_BIT_ENABLE(CM0_PIPELINED_RENDER_FLUSH_DISABLE));
8598

8599 8600 8601
	/* WaDisable_RenderCache_OperationalFlush:g4x */
	I915_WRITE(CACHE_MODE_0, _MASKED_BIT_DISABLE(RC_OP_FLUSH_ENABLE));

8602
	g4x_disable_trickle_feed(dev_priv);
8603 8604
}

8605
static void crestline_init_clock_gating(struct drm_i915_private *dev_priv)
8606 8607 8608 8609 8610 8611
{
	I915_WRITE(RENCLK_GATE_D1, I965_RCC_CLOCK_GATE_DISABLE);
	I915_WRITE(RENCLK_GATE_D2, 0);
	I915_WRITE(DSPCLK_GATE_D, 0);
	I915_WRITE(RAMCLK_GATE_D, 0);
	I915_WRITE16(DEUC, 0);
8612 8613
	I915_WRITE(MI_ARB_STATE,
		   _MASKED_BIT_ENABLE(MI_ARB_DISPLAY_TRICKLE_FEED_DISABLE));
8614 8615 8616

	/* WaDisable_RenderCache_OperationalFlush:gen4 */
	I915_WRITE(CACHE_MODE_0, _MASKED_BIT_DISABLE(RC_OP_FLUSH_ENABLE));
8617 8618
}

8619
static void broadwater_init_clock_gating(struct drm_i915_private *dev_priv)
8620 8621 8622 8623 8624 8625 8626
{
	I915_WRITE(RENCLK_GATE_D1, I965_RCZ_CLOCK_GATE_DISABLE |
		   I965_RCC_CLOCK_GATE_DISABLE |
		   I965_RCPB_CLOCK_GATE_DISABLE |
		   I965_ISC_CLOCK_GATE_DISABLE |
		   I965_FBC_CLOCK_GATE_DISABLE);
	I915_WRITE(RENCLK_GATE_D2, 0);
8627 8628
	I915_WRITE(MI_ARB_STATE,
		   _MASKED_BIT_ENABLE(MI_ARB_DISPLAY_TRICKLE_FEED_DISABLE));
8629 8630 8631

	/* WaDisable_RenderCache_OperationalFlush:gen4 */
	I915_WRITE(CACHE_MODE_0, _MASKED_BIT_DISABLE(RC_OP_FLUSH_ENABLE));
8632 8633
}

8634
static void gen3_init_clock_gating(struct drm_i915_private *dev_priv)
8635 8636 8637 8638 8639 8640
{
	u32 dstate = I915_READ(D_STATE);

	dstate |= DSTATE_PLL_D3_OFF | DSTATE_GFX_CLOCK_GATING |
		DSTATE_DOT_CLOCK_GATING;
	I915_WRITE(D_STATE, dstate);
8641

8642
	if (IS_PINEVIEW(dev_priv))
8643
		I915_WRITE(ECOSKPD, _MASKED_BIT_ENABLE(ECO_GATING_CX_ONLY));
8644 8645 8646

	/* IIR "flip pending" means done if this bit is set */
	I915_WRITE(ECOSKPD, _MASKED_BIT_DISABLE(ECO_FLIP_DONE));
8647 8648

	/* interrupts should cause a wake up from C3 */
8649
	I915_WRITE(INSTPM, _MASKED_BIT_ENABLE(INSTPM_AGPBUSY_INT_EN));
8650 8651 8652

	/* On GEN3 we really need to make sure the ARB C3 LP bit is set */
	I915_WRITE(MI_ARB_STATE, _MASKED_BIT_ENABLE(MI_ARB_C3_LP_WRITE_ENABLE));
8653 8654 8655

	I915_WRITE(MI_ARB_STATE,
		   _MASKED_BIT_ENABLE(MI_ARB_DISPLAY_TRICKLE_FEED_DISABLE));
8656 8657
}

8658
static void i85x_init_clock_gating(struct drm_i915_private *dev_priv)
8659 8660
{
	I915_WRITE(RENCLK_GATE_D1, SV_CLOCK_GATE_DISABLE);
8661 8662 8663 8664

	/* interrupts should cause a wake up from C3 */
	I915_WRITE(MI_STATE, _MASKED_BIT_ENABLE(MI_AGPBUSY_INT_EN) |
		   _MASKED_BIT_DISABLE(MI_AGPBUSY_830_MODE));
8665 8666 8667

	I915_WRITE(MEM_MODE,
		   _MASKED_BIT_ENABLE(MEM_DISPLAY_TRICKLE_FEED_DISABLE));
8668 8669
}

8670
static void i830_init_clock_gating(struct drm_i915_private *dev_priv)
8671
{
8672 8673 8674
	I915_WRITE(MEM_MODE,
		   _MASKED_BIT_ENABLE(MEM_DISPLAY_A_TRICKLE_FEED_DISABLE) |
		   _MASKED_BIT_ENABLE(MEM_DISPLAY_B_TRICKLE_FEED_DISABLE));
8675 8676
}

8677
void intel_init_clock_gating(struct drm_i915_private *dev_priv)
8678
{
8679
	dev_priv->display.init_clock_gating(dev_priv);
8680 8681
}

8682
void intel_suspend_hw(struct drm_i915_private *dev_priv)
8683
{
8684 8685
	if (HAS_PCH_LPT(dev_priv))
		lpt_suspend_hw(dev_priv);
8686 8687
}

8688
static void nop_init_clock_gating(struct drm_i915_private *dev_priv)
8689 8690 8691 8692 8693 8694 8695 8696 8697 8698 8699 8700 8701 8702 8703 8704
{
	DRM_DEBUG_KMS("No clock gating settings or workarounds applied.\n");
}

/**
 * intel_init_clock_gating_hooks - setup the clock gating hooks
 * @dev_priv: device private
 *
 * Setup the hooks that configure which clocks of a given platform can be
 * gated and also apply various GT and display specific workarounds for these
 * platforms. Note that some GT specific workarounds are applied separately
 * when GPU contexts or batchbuffers start their execution.
 */
void intel_init_clock_gating_hooks(struct drm_i915_private *dev_priv)
{
	if (IS_SKYLAKE(dev_priv))
8705
		dev_priv->display.init_clock_gating = skylake_init_clock_gating;
8706
	else if (IS_KABYLAKE(dev_priv) || IS_COFFEELAKE(dev_priv))
8707
		dev_priv->display.init_clock_gating = kabylake_init_clock_gating;
8708
	else if (IS_BROXTON(dev_priv))
8709
		dev_priv->display.init_clock_gating = bxt_init_clock_gating;
8710 8711
	else if (IS_GEMINILAKE(dev_priv))
		dev_priv->display.init_clock_gating = glk_init_clock_gating;
8712 8713 8714 8715 8716 8717 8718 8719 8720 8721 8722 8723 8724 8725 8726 8727
	else if (IS_BROADWELL(dev_priv))
		dev_priv->display.init_clock_gating = broadwell_init_clock_gating;
	else if (IS_CHERRYVIEW(dev_priv))
		dev_priv->display.init_clock_gating = cherryview_init_clock_gating;
	else if (IS_HASWELL(dev_priv))
		dev_priv->display.init_clock_gating = haswell_init_clock_gating;
	else if (IS_IVYBRIDGE(dev_priv))
		dev_priv->display.init_clock_gating = ivybridge_init_clock_gating;
	else if (IS_VALLEYVIEW(dev_priv))
		dev_priv->display.init_clock_gating = valleyview_init_clock_gating;
	else if (IS_GEN6(dev_priv))
		dev_priv->display.init_clock_gating = gen6_init_clock_gating;
	else if (IS_GEN5(dev_priv))
		dev_priv->display.init_clock_gating = ironlake_init_clock_gating;
	else if (IS_G4X(dev_priv))
		dev_priv->display.init_clock_gating = g4x_init_clock_gating;
8728
	else if (IS_I965GM(dev_priv))
8729
		dev_priv->display.init_clock_gating = crestline_init_clock_gating;
8730
	else if (IS_I965G(dev_priv))
8731 8732 8733 8734 8735 8736 8737 8738 8739 8740 8741 8742 8743
		dev_priv->display.init_clock_gating = broadwater_init_clock_gating;
	else if (IS_GEN3(dev_priv))
		dev_priv->display.init_clock_gating = gen3_init_clock_gating;
	else if (IS_I85X(dev_priv) || IS_I865G(dev_priv))
		dev_priv->display.init_clock_gating = i85x_init_clock_gating;
	else if (IS_GEN2(dev_priv))
		dev_priv->display.init_clock_gating = i830_init_clock_gating;
	else {
		MISSING_CASE(INTEL_DEVID(dev_priv));
		dev_priv->display.init_clock_gating = nop_init_clock_gating;
	}
}

8744
/* Set up chip specific power management-related functions */
8745
void intel_init_pm(struct drm_i915_private *dev_priv)
8746
{
8747
	intel_fbc_init(dev_priv);
8748

8749
	/* For cxsr */
8750
	if (IS_PINEVIEW(dev_priv))
8751
		i915_pineview_get_mem_freq(dev_priv);
8752
	else if (IS_GEN5(dev_priv))
8753
		i915_ironlake_get_mem_freq(dev_priv);
8754

8755
	/* For FIFO watermark updates */
8756
	if (INTEL_GEN(dev_priv) >= 9) {
8757
		skl_setup_wm_latency(dev_priv);
8758
		dev_priv->display.initial_watermarks = skl_initial_wm;
8759
		dev_priv->display.atomic_update_watermarks = skl_atomic_update_crtc_wm;
8760
		dev_priv->display.compute_global_watermarks = skl_compute_wm;
8761
	} else if (HAS_PCH_SPLIT(dev_priv)) {
8762
		ilk_setup_wm_latency(dev_priv);
8763

8764
		if ((IS_GEN5(dev_priv) && dev_priv->wm.pri_latency[1] &&
8765
		     dev_priv->wm.spr_latency[1] && dev_priv->wm.cur_latency[1]) ||
8766
		    (!IS_GEN5(dev_priv) && dev_priv->wm.pri_latency[0] &&
8767
		     dev_priv->wm.spr_latency[0] && dev_priv->wm.cur_latency[0])) {
8768
			dev_priv->display.compute_pipe_wm = ilk_compute_pipe_wm;
8769 8770 8771 8772 8773 8774
			dev_priv->display.compute_intermediate_wm =
				ilk_compute_intermediate_wm;
			dev_priv->display.initial_watermarks =
				ilk_initial_watermarks;
			dev_priv->display.optimize_watermarks =
				ilk_optimize_watermarks;
8775 8776 8777 8778
		} else {
			DRM_DEBUG_KMS("Failed to read display plane latency. "
				      "Disable CxSR\n");
		}
8779
	} else if (IS_VALLEYVIEW(dev_priv) || IS_CHERRYVIEW(dev_priv)) {
8780
		vlv_setup_wm_latency(dev_priv);
8781
		dev_priv->display.compute_pipe_wm = vlv_compute_pipe_wm;
8782
		dev_priv->display.compute_intermediate_wm = vlv_compute_intermediate_wm;
8783
		dev_priv->display.initial_watermarks = vlv_initial_watermarks;
8784
		dev_priv->display.optimize_watermarks = vlv_optimize_watermarks;
8785
		dev_priv->display.atomic_update_watermarks = vlv_atomic_update_fifo;
8786 8787 8788 8789 8790 8791
	} else if (IS_G4X(dev_priv)) {
		g4x_setup_wm_latency(dev_priv);
		dev_priv->display.compute_pipe_wm = g4x_compute_pipe_wm;
		dev_priv->display.compute_intermediate_wm = g4x_compute_intermediate_wm;
		dev_priv->display.initial_watermarks = g4x_initial_watermarks;
		dev_priv->display.optimize_watermarks = g4x_optimize_watermarks;
8792
	} else if (IS_PINEVIEW(dev_priv)) {
8793
		if (!intel_get_cxsr_latency(IS_PINEVIEW_G(dev_priv),
8794 8795 8796 8797 8798 8799 8800 8801 8802
					    dev_priv->is_ddr3,
					    dev_priv->fsb_freq,
					    dev_priv->mem_freq)) {
			DRM_INFO("failed to find known CxSR latency "
				 "(found ddr%s fsb freq %d, mem freq %d), "
				 "disabling CxSR\n",
				 (dev_priv->is_ddr3 == 1) ? "3" : "2",
				 dev_priv->fsb_freq, dev_priv->mem_freq);
			/* Disable CxSR and never update its watermark again */
8803
			intel_set_memory_cxsr(dev_priv, false);
8804 8805 8806
			dev_priv->display.update_wm = NULL;
		} else
			dev_priv->display.update_wm = pineview_update_wm;
8807
	} else if (IS_GEN4(dev_priv)) {
8808
		dev_priv->display.update_wm = i965_update_wm;
8809
	} else if (IS_GEN3(dev_priv)) {
8810 8811
		dev_priv->display.update_wm = i9xx_update_wm;
		dev_priv->display.get_fifo_size = i9xx_get_fifo_size;
8812
	} else if (IS_GEN2(dev_priv)) {
8813
		if (INTEL_INFO(dev_priv)->num_pipes == 1) {
8814
			dev_priv->display.update_wm = i845_update_wm;
8815
			dev_priv->display.get_fifo_size = i845_get_fifo_size;
8816 8817
		} else {
			dev_priv->display.update_wm = i9xx_update_wm;
8818
			dev_priv->display.get_fifo_size = i830_get_fifo_size;
8819 8820 8821
		}
	} else {
		DRM_ERROR("unexpected fall-through in intel_init_pm\n");
8822 8823 8824
	}
}

8825 8826 8827 8828 8829 8830 8831 8832 8833
static inline int gen6_check_mailbox_status(struct drm_i915_private *dev_priv)
{
	uint32_t flags =
		I915_READ_FW(GEN6_PCODE_MAILBOX) & GEN6_PCODE_ERROR_MASK;

	switch (flags) {
	case GEN6_PCODE_SUCCESS:
		return 0;
	case GEN6_PCODE_UNIMPLEMENTED_CMD:
8834
		return -ENODEV;
8835 8836 8837
	case GEN6_PCODE_ILLEGAL_CMD:
		return -ENXIO;
	case GEN6_PCODE_MIN_FREQ_TABLE_GT_RATIO_OUT_OF_RANGE:
8838
	case GEN7_PCODE_MIN_FREQ_TABLE_GT_RATIO_OUT_OF_RANGE:
8839 8840 8841 8842
		return -EOVERFLOW;
	case GEN6_PCODE_TIMEOUT:
		return -ETIMEDOUT;
	default:
8843
		MISSING_CASE(flags);
8844 8845 8846 8847 8848 8849 8850 8851 8852 8853 8854 8855 8856 8857 8858 8859 8860 8861 8862 8863 8864 8865 8866 8867 8868 8869
		return 0;
	}
}

static inline int gen7_check_mailbox_status(struct drm_i915_private *dev_priv)
{
	uint32_t flags =
		I915_READ_FW(GEN6_PCODE_MAILBOX) & GEN6_PCODE_ERROR_MASK;

	switch (flags) {
	case GEN6_PCODE_SUCCESS:
		return 0;
	case GEN6_PCODE_ILLEGAL_CMD:
		return -ENXIO;
	case GEN7_PCODE_TIMEOUT:
		return -ETIMEDOUT;
	case GEN7_PCODE_ILLEGAL_DATA:
		return -EINVAL;
	case GEN7_PCODE_MIN_FREQ_TABLE_GT_RATIO_OUT_OF_RANGE:
		return -EOVERFLOW;
	default:
		MISSING_CASE(flags);
		return 0;
	}
}

8870
int sandybridge_pcode_read(struct drm_i915_private *dev_priv, u32 mbox, u32 *val)
B
Ben Widawsky 已提交
8871
{
8872 8873
	int status;

8874
	WARN_ON(!mutex_is_locked(&dev_priv->rps.hw_lock));
B
Ben Widawsky 已提交
8875

8876 8877 8878 8879 8880 8881
	/* GEN6_PCODE_* are outside of the forcewake domain, we can
	 * use te fw I915_READ variants to reduce the amount of work
	 * required when reading/writing.
	 */

	if (I915_READ_FW(GEN6_PCODE_MAILBOX) & GEN6_PCODE_READY) {
8882 8883
		DRM_DEBUG_DRIVER("warning: pcode (read from mbox %x) mailbox access failed for %ps\n",
				 mbox, __builtin_return_address(0));
B
Ben Widawsky 已提交
8884 8885 8886
		return -EAGAIN;
	}

8887 8888 8889
	I915_WRITE_FW(GEN6_PCODE_DATA, *val);
	I915_WRITE_FW(GEN6_PCODE_DATA1, 0);
	I915_WRITE_FW(GEN6_PCODE_MAILBOX, GEN6_PCODE_READY | mbox);
B
Ben Widawsky 已提交
8890

8891 8892 8893
	if (__intel_wait_for_register_fw(dev_priv,
					 GEN6_PCODE_MAILBOX, GEN6_PCODE_READY, 0,
					 500, 0, NULL)) {
8894 8895
		DRM_ERROR("timeout waiting for pcode read (from mbox %x) to finish for %ps\n",
			  mbox, __builtin_return_address(0));
B
Ben Widawsky 已提交
8896 8897 8898
		return -ETIMEDOUT;
	}

8899 8900
	*val = I915_READ_FW(GEN6_PCODE_DATA);
	I915_WRITE_FW(GEN6_PCODE_DATA, 0);
B
Ben Widawsky 已提交
8901

8902 8903 8904 8905 8906 8907
	if (INTEL_GEN(dev_priv) > 6)
		status = gen7_check_mailbox_status(dev_priv);
	else
		status = gen6_check_mailbox_status(dev_priv);

	if (status) {
8908 8909
		DRM_DEBUG_DRIVER("warning: pcode (read from mbox %x) mailbox access failed for %ps: %d\n",
				 mbox, __builtin_return_address(0), status);
8910 8911 8912
		return status;
	}

B
Ben Widawsky 已提交
8913 8914 8915
	return 0;
}

8916
int sandybridge_pcode_write(struct drm_i915_private *dev_priv,
8917
			    u32 mbox, u32 val)
B
Ben Widawsky 已提交
8918
{
8919 8920
	int status;

8921
	WARN_ON(!mutex_is_locked(&dev_priv->rps.hw_lock));
B
Ben Widawsky 已提交
8922

8923 8924 8925 8926 8927 8928
	/* GEN6_PCODE_* are outside of the forcewake domain, we can
	 * use te fw I915_READ variants to reduce the amount of work
	 * required when reading/writing.
	 */

	if (I915_READ_FW(GEN6_PCODE_MAILBOX) & GEN6_PCODE_READY) {
8929 8930
		DRM_DEBUG_DRIVER("warning: pcode (write of 0x%08x to mbox %x) mailbox access failed for %ps\n",
				 val, mbox, __builtin_return_address(0));
B
Ben Widawsky 已提交
8931 8932 8933
		return -EAGAIN;
	}

8934
	I915_WRITE_FW(GEN6_PCODE_DATA, val);
8935
	I915_WRITE_FW(GEN6_PCODE_DATA1, 0);
8936
	I915_WRITE_FW(GEN6_PCODE_MAILBOX, GEN6_PCODE_READY | mbox);
B
Ben Widawsky 已提交
8937

8938 8939 8940
	if (__intel_wait_for_register_fw(dev_priv,
					 GEN6_PCODE_MAILBOX, GEN6_PCODE_READY, 0,
					 500, 0, NULL)) {
8941 8942
		DRM_ERROR("timeout waiting for pcode write of 0x%08x to mbox %x to finish for %ps\n",
			  val, mbox, __builtin_return_address(0));
B
Ben Widawsky 已提交
8943 8944 8945
		return -ETIMEDOUT;
	}

8946
	I915_WRITE_FW(GEN6_PCODE_DATA, 0);
B
Ben Widawsky 已提交
8947

8948 8949 8950 8951 8952 8953
	if (INTEL_GEN(dev_priv) > 6)
		status = gen7_check_mailbox_status(dev_priv);
	else
		status = gen6_check_mailbox_status(dev_priv);

	if (status) {
8954 8955
		DRM_DEBUG_DRIVER("warning: pcode (write of 0x%08x to mbox %x) mailbox access failed for %ps: %d\n",
				 val, mbox, __builtin_return_address(0), status);
8956 8957 8958
		return status;
	}

B
Ben Widawsky 已提交
8959 8960
	return 0;
}
8961

8962 8963 8964 8965 8966 8967 8968 8969 8970 8971 8972 8973 8974 8975 8976 8977 8978 8979 8980 8981 8982
static bool skl_pcode_try_request(struct drm_i915_private *dev_priv, u32 mbox,
				  u32 request, u32 reply_mask, u32 reply,
				  u32 *status)
{
	u32 val = request;

	*status = sandybridge_pcode_read(dev_priv, mbox, &val);

	return *status || ((val & reply_mask) == reply);
}

/**
 * skl_pcode_request - send PCODE request until acknowledgment
 * @dev_priv: device private
 * @mbox: PCODE mailbox ID the request is targeted for
 * @request: request ID
 * @reply_mask: mask used to check for request acknowledgment
 * @reply: value used to check for request acknowledgment
 * @timeout_base_ms: timeout for polling with preemption enabled
 *
 * Keep resending the @request to @mbox until PCODE acknowledges it, PCODE
8983
 * reports an error or an overall timeout of @timeout_base_ms+50 ms expires.
8984 8985
 * The request is acknowledged once the PCODE reply dword equals @reply after
 * applying @reply_mask. Polling is first attempted with preemption enabled
8986
 * for @timeout_base_ms and if this times out for another 50 ms with
8987 8988 8989 8990 8991 8992 8993 8994 8995 8996 8997 8998 8999 9000 9001 9002 9003 9004 9005 9006 9007 9008 9009 9010 9011 9012 9013 9014 9015 9016 9017 9018 9019 9020 9021
 * preemption disabled.
 *
 * Returns 0 on success, %-ETIMEDOUT in case of a timeout, <0 in case of some
 * other error as reported by PCODE.
 */
int skl_pcode_request(struct drm_i915_private *dev_priv, u32 mbox, u32 request,
		      u32 reply_mask, u32 reply, int timeout_base_ms)
{
	u32 status;
	int ret;

	WARN_ON(!mutex_is_locked(&dev_priv->rps.hw_lock));

#define COND skl_pcode_try_request(dev_priv, mbox, request, reply_mask, reply, \
				   &status)

	/*
	 * Prime the PCODE by doing a request first. Normally it guarantees
	 * that a subsequent request, at most @timeout_base_ms later, succeeds.
	 * _wait_for() doesn't guarantee when its passed condition is evaluated
	 * first, so send the first request explicitly.
	 */
	if (COND) {
		ret = 0;
		goto out;
	}
	ret = _wait_for(COND, timeout_base_ms * 1000, 10);
	if (!ret)
		goto out;

	/*
	 * The above can time out if the number of requests was low (2 in the
	 * worst case) _and_ PCODE was busy for some reason even after a
	 * (queued) request and @timeout_base_ms delay. As a workaround retry
	 * the poll with preemption disabled to maximize the number of
9022
	 * requests. Increase the timeout from @timeout_base_ms to 50ms to
9023
	 * account for interrupts that could reduce the number of these
9024 9025
	 * requests, and for any quirks of the PCODE firmware that delays
	 * the request completion.
9026 9027 9028 9029
	 */
	DRM_DEBUG_KMS("PCODE timeout, retrying with preemption disabled\n");
	WARN_ON_ONCE(timeout_base_ms > 3);
	preempt_disable();
9030
	ret = wait_for_atomic(COND, 50);
9031 9032 9033 9034 9035 9036 9037
	preempt_enable();

out:
	return ret ? ret : status;
#undef COND
}

9038 9039
static int byt_gpu_freq(struct drm_i915_private *dev_priv, int val)
{
9040 9041 9042 9043 9044
	/*
	 * N = val - 0xb7
	 * Slow = Fast = GPLL ref * N
	 */
	return DIV_ROUND_CLOSEST(dev_priv->rps.gpll_ref_freq * (val - 0xb7), 1000);
9045 9046
}

9047
static int byt_freq_opcode(struct drm_i915_private *dev_priv, int val)
9048
{
9049
	return DIV_ROUND_CLOSEST(1000 * val, dev_priv->rps.gpll_ref_freq) + 0xb7;
9050 9051
}

9052
static int chv_gpu_freq(struct drm_i915_private *dev_priv, int val)
9053
{
9054 9055 9056 9057 9058
	/*
	 * N = val / 2
	 * CU (slow) = CU2x (fast) / 2 = GPLL ref * N / 2
	 */
	return DIV_ROUND_CLOSEST(dev_priv->rps.gpll_ref_freq * val, 2 * 2 * 1000);
9059 9060
}

9061
static int chv_freq_opcode(struct drm_i915_private *dev_priv, int val)
9062
{
9063
	/* CHV needs even values */
9064
	return DIV_ROUND_CLOSEST(2 * 1000 * val, dev_priv->rps.gpll_ref_freq) * 2;
9065 9066
}

9067
int intel_gpu_freq(struct drm_i915_private *dev_priv, int val)
9068
{
9069
	if (INTEL_GEN(dev_priv) >= 9)
9070 9071
		return DIV_ROUND_CLOSEST(val * GT_FREQUENCY_MULTIPLIER,
					 GEN9_FREQ_SCALER);
9072
	else if (IS_CHERRYVIEW(dev_priv))
9073
		return chv_gpu_freq(dev_priv, val);
9074
	else if (IS_VALLEYVIEW(dev_priv))
9075 9076 9077
		return byt_gpu_freq(dev_priv, val);
	else
		return val * GT_FREQUENCY_MULTIPLIER;
9078 9079
}

9080 9081
int intel_freq_opcode(struct drm_i915_private *dev_priv, int val)
{
9082
	if (INTEL_GEN(dev_priv) >= 9)
9083 9084
		return DIV_ROUND_CLOSEST(val * GEN9_FREQ_SCALER,
					 GT_FREQUENCY_MULTIPLIER);
9085
	else if (IS_CHERRYVIEW(dev_priv))
9086
		return chv_freq_opcode(dev_priv, val);
9087
	else if (IS_VALLEYVIEW(dev_priv))
9088 9089
		return byt_freq_opcode(dev_priv, val);
	else
9090
		return DIV_ROUND_CLOSEST(val, GT_FREQUENCY_MULTIPLIER);
9091
}
9092

9093 9094
struct request_boost {
	struct work_struct work;
D
Daniel Vetter 已提交
9095
	struct drm_i915_gem_request *req;
9096 9097 9098 9099 9100
};

static void __intel_rps_boost_work(struct work_struct *work)
{
	struct request_boost *boost = container_of(work, struct request_boost, work);
9101
	struct drm_i915_gem_request *req = boost->req;
9102

9103
	if (!i915_gem_request_completed(req))
9104
		gen6_rps_boost(req, NULL);
9105

9106
	i915_gem_request_put(req);
9107 9108 9109
	kfree(boost);
}

9110
void intel_queue_rps_boost_for_request(struct drm_i915_gem_request *req)
9111 9112 9113
{
	struct request_boost *boost;

9114
	if (req == NULL || INTEL_GEN(req->i915) < 6)
9115 9116
		return;

9117
	if (i915_gem_request_completed(req))
9118 9119
		return;

9120 9121 9122 9123
	boost = kmalloc(sizeof(*boost), GFP_ATOMIC);
	if (boost == NULL)
		return;

9124
	boost->req = i915_gem_request_get(req);
9125 9126

	INIT_WORK(&boost->work, __intel_rps_boost_work);
9127
	queue_work(req->i915->wq, &boost->work);
9128 9129
}

9130
void intel_pm_setup(struct drm_i915_private *dev_priv)
9131
{
D
Daniel Vetter 已提交
9132 9133
	mutex_init(&dev_priv->rps.hw_lock);

9134 9135
	INIT_DELAYED_WORK(&dev_priv->rps.autoenable_work,
			  __intel_autoenable_gt_powersave);
9136
	atomic_set(&dev_priv->rps.num_waiters, 0);
9137

9138
	dev_priv->pm.suspended = false;
9139
	atomic_set(&dev_priv->pm.wakeref_count, 0);
9140
}
9141

9142 9143 9144
static u64 vlv_residency_raw(struct drm_i915_private *dev_priv,
			     const i915_reg_t reg)
{
9145
	u32 lower, upper, tmp;
9146
	int loop = 2;
9147 9148 9149 9150 9151 9152 9153 9154 9155

	/* The register accessed do not need forcewake. We borrow
	 * uncore lock to prevent concurrent access to range reg.
	 */
	spin_lock_irq(&dev_priv->uncore.lock);

	/* vlv and chv residency counters are 40 bits in width.
	 * With a control bit, we can choose between upper or lower
	 * 32bit window into this counter.
9156 9157 9158 9159 9160
	 *
	 * Although we always use the counter in high-range mode elsewhere,
	 * userspace may attempt to read the value before rc6 is initialised,
	 * before we have set the default VLV_COUNTER_CONTROL value. So always
	 * set the high bit to be safe.
9161
	 */
9162 9163
	I915_WRITE_FW(VLV_COUNTER_CONTROL,
		      _MASKED_BIT_ENABLE(VLV_COUNT_RANGE_HIGH));
9164 9165 9166 9167 9168 9169 9170 9171 9172 9173 9174
	upper = I915_READ_FW(reg);
	do {
		tmp = upper;

		I915_WRITE_FW(VLV_COUNTER_CONTROL,
			      _MASKED_BIT_DISABLE(VLV_COUNT_RANGE_HIGH));
		lower = I915_READ_FW(reg);

		I915_WRITE_FW(VLV_COUNTER_CONTROL,
			      _MASKED_BIT_ENABLE(VLV_COUNT_RANGE_HIGH));
		upper = I915_READ_FW(reg);
9175
	} while (upper != tmp && --loop);
9176

9177 9178 9179 9180 9181
	/* Everywhere else we always use VLV_COUNTER_CONTROL with the
	 * VLV_COUNT_RANGE_HIGH bit set - so it is safe to leave it set
	 * now.
	 */

9182 9183 9184 9185 9186
	spin_unlock_irq(&dev_priv->uncore.lock);

	return lower | (u64)upper << 8;
}

9187 9188
u64 intel_rc6_residency_us(struct drm_i915_private *dev_priv,
			   const i915_reg_t reg)
9189
{
9190
	u64 time_hw, units, div;
9191 9192 9193 9194 9195 9196 9197 9198

	if (!intel_enable_rc6())
		return 0;

	intel_runtime_pm_get(dev_priv);

	/* On VLV and CHV, residency time is in CZ units rather than 1.28us */
	if (IS_VALLEYVIEW(dev_priv) || IS_CHERRYVIEW(dev_priv)) {
9199
		units = 1000;
9200 9201
		div = dev_priv->czclk_freq;

9202
		time_hw = vlv_residency_raw(dev_priv, reg);
9203
	} else if (IS_GEN9_LP(dev_priv)) {
9204
		units = 1000;
9205 9206
		div = 1200;		/* 833.33ns */

9207 9208 9209 9210 9211 9212 9213
		time_hw = I915_READ(reg);
	} else {
		units = 128000; /* 1.28us */
		div = 100000;

		time_hw = I915_READ(reg);
	}
9214 9215

	intel_runtime_pm_put(dev_priv);
9216
	return DIV_ROUND_UP_ULL(time_hw * units, div);
9217
}