sdma_v4_0.c 65.3 KB
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/*
 * Copyright 2016 Advanced Micro Devices, Inc.
 *
 * Permission is hereby granted, free of charge, to any person obtaining a
 * copy of this software and associated documentation files (the "Software"),
 * to deal in the Software without restriction, including without limitation
 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
 * and/or sell copies of the Software, and to permit persons to whom the
 * Software is furnished to do so, subject to the following conditions:
 *
 * The above copyright notice and this permission notice shall be included in
 * all copies or substantial portions of the Software.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
 * OTHER DEALINGS IN THE SOFTWARE.
 *
 */

#include <linux/firmware.h>
#include <drm/drmP.h>
#include "amdgpu.h"
#include "amdgpu_ucode.h"
#include "amdgpu_trace.h"

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#include "sdma0/sdma0_4_2_offset.h"
#include "sdma0/sdma0_4_2_sh_mask.h"
#include "sdma1/sdma1_4_2_offset.h"
#include "sdma1/sdma1_4_2_sh_mask.h"
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#include "hdp/hdp_4_0_offset.h"
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#include "sdma0/sdma0_4_1_default.h"
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#include "soc15_common.h"
#include "soc15.h"
#include "vega10_sdma_pkt_open.h"

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#include "ivsrcid/sdma0/irqsrcs_sdma0_4_0.h"
#include "ivsrcid/sdma1/irqsrcs_sdma1_4_0.h"

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MODULE_FIRMWARE("amdgpu/vega10_sdma.bin");
MODULE_FIRMWARE("amdgpu/vega10_sdma1.bin");
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MODULE_FIRMWARE("amdgpu/vega12_sdma.bin");
MODULE_FIRMWARE("amdgpu/vega12_sdma1.bin");
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MODULE_FIRMWARE("amdgpu/vega20_sdma.bin");
MODULE_FIRMWARE("amdgpu/vega20_sdma1.bin");
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MODULE_FIRMWARE("amdgpu/raven_sdma.bin");
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MODULE_FIRMWARE("amdgpu/picasso_sdma.bin");
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MODULE_FIRMWARE("amdgpu/raven2_sdma.bin");
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#define SDMA0_POWER_CNTL__ON_OFF_CONDITION_HOLD_TIME_MASK  0x000000F8L
#define SDMA0_POWER_CNTL__ON_OFF_STATUS_DURATION_TIME_MASK 0xFC000000L

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#define WREG32_SDMA(instance, offset, value) \
	WREG32(sdma_v4_0_get_reg_offset(adev, (instance), (offset)), value)
#define RREG32_SDMA(instance, offset) \
	RREG32(sdma_v4_0_get_reg_offset(adev, (instance), (offset)))

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static void sdma_v4_0_set_ring_funcs(struct amdgpu_device *adev);
static void sdma_v4_0_set_buffer_funcs(struct amdgpu_device *adev);
static void sdma_v4_0_set_vm_pte_funcs(struct amdgpu_device *adev);
static void sdma_v4_0_set_irq_funcs(struct amdgpu_device *adev);

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static const struct soc15_reg_golden golden_settings_sdma_4[] = {
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_CHICKEN_BITS, 0xfe931f07, 0x02831d07),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_CLK_CTRL, 0xff000ff0, 0x3f000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GFX_IB_CNTL, 0x800f0100, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GFX_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_PAGE_IB_CNTL, 0x800f0100, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_PAGE_RB_WPTR_POLL_CNTL, 0x0000fff0, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_POWER_CNTL, 0x003ff006, 0x0003c000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC0_IB_CNTL, 0x800f0100, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC0_RB_WPTR_POLL_CNTL, 0x0000fff0, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC1_IB_CNTL, 0x800f0100, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC1_RB_WPTR_POLL_CNTL, 0x0000fff0, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_UTCL1_PAGE, 0x000003ff, 0x000003c0),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_UTCL1_WATERMK, 0xfc000000, 0x00000000),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_CHICKEN_BITS, 0xfe931f07, 0x02831f07),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_CLK_CTRL, 0xffffffff, 0x3f000100),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GFX_IB_CNTL, 0x800f0100, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GFX_RB_WPTR_POLL_CNTL, 0x0000fff0, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_PAGE_IB_CNTL, 0x800f0100, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_PAGE_RB_WPTR_POLL_CNTL, 0x0000fff0, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_POWER_CNTL, 0x003ff000, 0x0003c000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC0_IB_CNTL, 0x800f0100, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC0_RB_WPTR_POLL_CNTL, 0x0000fff0, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC1_IB_CNTL, 0x800f0100, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC1_RB_WPTR_POLL_CNTL, 0x0000fff0, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_UTCL1_PAGE, 0x000003ff, 0x000003c0),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_UTCL1_WATERMK, 0xfc000000, 0x00000000)
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};

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static const struct soc15_reg_golden golden_settings_sdma_vg10[] = {
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG, 0x0018773f, 0x00104002),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG_READ, 0x0018773f, 0x00104002),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GB_ADDR_CONFIG, 0x0018773f, 0x00104002),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GB_ADDR_CONFIG_READ, 0x0018773f, 0x00104002)
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};

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static const struct soc15_reg_golden golden_settings_sdma_vg12[] = {
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG, 0x0018773f, 0x00104001),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG_READ, 0x0018773f, 0x00104001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GB_ADDR_CONFIG, 0x0018773f, 0x00104001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GB_ADDR_CONFIG_READ, 0x0018773f, 0x00104001)
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};

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static const struct soc15_reg_golden golden_settings_sdma_4_1[] = {
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_CHICKEN_BITS, 0xfe931f07, 0x02831d07),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_CLK_CTRL, 0xffffffff, 0x3f000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GFX_IB_CNTL, 0x800f0111, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GFX_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_POWER_CNTL, 0xfc3fffff, 0x40000051),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC0_IB_CNTL, 0x800f0111, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC0_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC1_IB_CNTL, 0x800f0111, 0x00000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC1_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_UTCL1_PAGE, 0x000003ff, 0x000003c0),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_UTCL1_WATERMK, 0xfc000000, 0x00000000)
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};

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static const struct soc15_reg_golden golden_settings_sdma0_4_2_init[] = {
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC0_RB_WPTR_POLL_CNTL, 0xfffffff0, 0x00403000),
};

static const struct soc15_reg_golden golden_settings_sdma0_4_2[] =
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{
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_CHICKEN_BITS, 0xfe931f07, 0x02831d07),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_CLK_CTRL, 0xffffffff, 0x3f000100),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG, 0x0000773f, 0x00004002),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG_READ, 0x0000773f, 0x00004002),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GFX_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GFX_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_PAGE_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_PAGE_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RD_BURST_CNTL, 0x0000000f, 0x00000003),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC0_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC0_RB_WPTR_POLL_CNTL, 0xfffffff0, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC1_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC1_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC2_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC2_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC3_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC3_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC4_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC4_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC5_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC5_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC6_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC6_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC7_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_RLC7_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_UTCL1_PAGE, 0x000003ff, 0x000003c0),
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_UTCL1_WATERMK, 0xFE000000, 0x00000000),
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};

static const struct soc15_reg_golden golden_settings_sdma1_4_2[] = {
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_CHICKEN_BITS, 0xfe931f07, 0x02831d07),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_CLK_CTRL, 0xffffffff, 0x3f000100),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GB_ADDR_CONFIG, 0x0000773f, 0x00004002),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GB_ADDR_CONFIG_READ, 0x0000773f, 0x00004002),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GFX_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_GFX_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_PAGE_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_PAGE_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RD_BURST_CNTL, 0x0000000f, 0x00000003),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC0_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC0_RB_WPTR_POLL_CNTL, 0xfffffff0, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC1_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC1_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC2_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC2_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC3_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC3_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC4_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC4_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC5_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC5_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC6_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC6_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC7_RB_RPTR_ADDR_LO, 0xfffffffd, 0x00000001),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_RLC7_RB_WPTR_POLL_CNTL, 0xfffffff7, 0x00403000),
	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_UTCL1_PAGE, 0x000003ff, 0x000003c0),
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	SOC15_REG_GOLDEN_VALUE(SDMA1, 0, mmSDMA1_UTCL1_WATERMK, 0xFE000000, 0x00000000),
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};

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static const struct soc15_reg_golden golden_settings_sdma_rv1[] =
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{
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	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG, 0x0018773f, 0x00000002),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG_READ, 0x0018773f, 0x00000002)
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};

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static const struct soc15_reg_golden golden_settings_sdma_rv2[] =
{
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG, 0x0018773f, 0x00003001),
	SOC15_REG_GOLDEN_VALUE(SDMA0, 0, mmSDMA0_GB_ADDR_CONFIG_READ, 0x0018773f, 0x00003001)
};

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static u32 sdma_v4_0_get_reg_offset(struct amdgpu_device *adev,
		u32 instance, u32 offset)
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{
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	return ( 0 == instance ? (adev->reg_offset[SDMA0_HWIP][0][0] + offset) :
			(adev->reg_offset[SDMA1_HWIP][0][0] + offset));
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}

static void sdma_v4_0_init_golden_registers(struct amdgpu_device *adev)
{
	switch (adev->asic_type) {
	case CHIP_VEGA10:
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		soc15_program_register_sequence(adev,
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						 golden_settings_sdma_4,
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						 ARRAY_SIZE(golden_settings_sdma_4));
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		soc15_program_register_sequence(adev,
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						 golden_settings_sdma_vg10,
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						 ARRAY_SIZE(golden_settings_sdma_vg10));
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		break;
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	case CHIP_VEGA12:
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		soc15_program_register_sequence(adev,
						golden_settings_sdma_4,
						ARRAY_SIZE(golden_settings_sdma_4));
		soc15_program_register_sequence(adev,
						golden_settings_sdma_vg12,
						ARRAY_SIZE(golden_settings_sdma_vg12));
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		break;
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	case CHIP_VEGA20:
		soc15_program_register_sequence(adev,
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						golden_settings_sdma0_4_2_init,
						ARRAY_SIZE(golden_settings_sdma0_4_2_init));
		soc15_program_register_sequence(adev,
						golden_settings_sdma0_4_2,
						ARRAY_SIZE(golden_settings_sdma0_4_2));
		soc15_program_register_sequence(adev,
						golden_settings_sdma1_4_2,
						ARRAY_SIZE(golden_settings_sdma1_4_2));
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		break;
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	case CHIP_RAVEN:
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		soc15_program_register_sequence(adev,
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						golden_settings_sdma_4_1,
						ARRAY_SIZE(golden_settings_sdma_4_1));
		if (adev->rev_id >= 8)
			soc15_program_register_sequence(adev,
							golden_settings_sdma_rv2,
							ARRAY_SIZE(golden_settings_sdma_rv2));
		else
			soc15_program_register_sequence(adev,
							golden_settings_sdma_rv1,
							ARRAY_SIZE(golden_settings_sdma_rv1));
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		break;
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	default:
		break;
	}
}

/**
 * sdma_v4_0_init_microcode - load ucode images from disk
 *
 * @adev: amdgpu_device pointer
 *
 * Use the firmware interface to load the ucode images into
 * the driver (not loaded into hw).
 * Returns 0 on success, error on failure.
 */

// emulation only, won't work on real chip
// vega10 real chip need to use PSP to load firmware
static int sdma_v4_0_init_microcode(struct amdgpu_device *adev)
{
	const char *chip_name;
	char fw_name[30];
	int err = 0, i;
	struct amdgpu_firmware_info *info = NULL;
	const struct common_firmware_header *header = NULL;
	const struct sdma_firmware_header_v1_0 *hdr;

	DRM_DEBUG("\n");

	switch (adev->asic_type) {
	case CHIP_VEGA10:
		chip_name = "vega10";
		break;
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	case CHIP_VEGA12:
		chip_name = "vega12";
		break;
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	case CHIP_VEGA20:
		chip_name = "vega20";
		break;
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	case CHIP_RAVEN:
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		if (adev->rev_id >= 8)
			chip_name = "raven2";
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		else if (adev->pdev->device == 0x15d8)
			chip_name = "picasso";
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		else
			chip_name = "raven";
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		break;
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	default:
		BUG();
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	}

	for (i = 0; i < adev->sdma.num_instances; i++) {
		if (i == 0)
			snprintf(fw_name, sizeof(fw_name), "amdgpu/%s_sdma.bin", chip_name);
		else
			snprintf(fw_name, sizeof(fw_name), "amdgpu/%s_sdma1.bin", chip_name);
		err = request_firmware(&adev->sdma.instance[i].fw, fw_name, adev->dev);
		if (err)
			goto out;
		err = amdgpu_ucode_validate(adev->sdma.instance[i].fw);
		if (err)
			goto out;
		hdr = (const struct sdma_firmware_header_v1_0 *)adev->sdma.instance[i].fw->data;
		adev->sdma.instance[i].fw_version = le32_to_cpu(hdr->header.ucode_version);
		adev->sdma.instance[i].feature_version = le32_to_cpu(hdr->ucode_feature_version);
		if (adev->sdma.instance[i].feature_version >= 20)
			adev->sdma.instance[i].burst_nop = true;
		DRM_DEBUG("psp_load == '%s'\n",
318
				adev->firmware.load_type == AMDGPU_FW_LOAD_PSP ? "true" : "false");
319 320 321 322 323 324 325 326 327 328 329 330

		if (adev->firmware.load_type == AMDGPU_FW_LOAD_PSP) {
			info = &adev->firmware.ucode[AMDGPU_UCODE_ID_SDMA0 + i];
			info->ucode_id = AMDGPU_UCODE_ID_SDMA0 + i;
			info->fw = adev->sdma.instance[i].fw;
			header = (const struct common_firmware_header *)info->fw->data;
			adev->firmware.fw_size +=
				ALIGN(le32_to_cpu(header->ucode_size_bytes), PAGE_SIZE);
		}
	}
out:
	if (err) {
331
		DRM_ERROR("sdma_v4_0: Failed to load firmware \"%s\"\n", fw_name);
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		for (i = 0; i < adev->sdma.num_instances; i++) {
			release_firmware(adev->sdma.instance[i].fw);
			adev->sdma.instance[i].fw = NULL;
		}
	}
	return err;
}

/**
 * sdma_v4_0_ring_get_rptr - get the current read pointer
 *
 * @ring: amdgpu ring pointer
 *
 * Get the current rptr from the hardware (VEGA10+).
 */
static uint64_t sdma_v4_0_ring_get_rptr(struct amdgpu_ring *ring)
{
349
	u64 *rptr;
350 351

	/* XXX check if swapping is necessary on BE */
352
	rptr = ((u64 *)&ring->adev->wb.wb[ring->rptr_offs]);
353 354 355 356 357 358 359 360 361 362 363 364 365 366 367

	DRM_DEBUG("rptr before shift == 0x%016llx\n", *rptr);
	return ((*rptr) >> 2);
}

/**
 * sdma_v4_0_ring_get_wptr - get the current write pointer
 *
 * @ring: amdgpu ring pointer
 *
 * Get the current wptr from the hardware (VEGA10+).
 */
static uint64_t sdma_v4_0_ring_get_wptr(struct amdgpu_ring *ring)
{
	struct amdgpu_device *adev = ring->adev;
368
	u64 wptr;
369 370 371

	if (ring->use_doorbell) {
		/* XXX check if swapping is necessary on BE */
372 373
		wptr = READ_ONCE(*((u64 *)&adev->wb.wb[ring->wptr_offs]));
		DRM_DEBUG("wptr/doorbell before shift == 0x%016llx\n", wptr);
374
	} else {
375
		wptr = RREG32_SDMA(ring->me, mmSDMA0_GFX_RB_WPTR_HI);
376
		wptr = wptr << 32;
377 378 379
		wptr |= RREG32_SDMA(ring->me, mmSDMA0_GFX_RB_WPTR);
		DRM_DEBUG("wptr before shift [%i] wptr == 0x%016llx\n",
				ring->me, wptr);
380 381
	}

382
	return wptr >> 2;
383 384 385 386 387 388 389 390 391 392 393 394 395 396 397
}

/**
 * sdma_v4_0_ring_set_wptr - commit the write pointer
 *
 * @ring: amdgpu ring pointer
 *
 * Write the wptr back to the hardware (VEGA10+).
 */
static void sdma_v4_0_ring_set_wptr(struct amdgpu_ring *ring)
{
	struct amdgpu_device *adev = ring->adev;

	DRM_DEBUG("Setting write pointer\n");
	if (ring->use_doorbell) {
398 399
		u64 *wb = (u64 *)&adev->wb.wb[ring->wptr_offs];

400 401 402 403 404 405 406 407
		DRM_DEBUG("Using doorbell -- "
				"wptr_offs == 0x%08x "
				"lower_32_bits(ring->wptr) << 2 == 0x%08x "
				"upper_32_bits(ring->wptr) << 2 == 0x%08x\n",
				ring->wptr_offs,
				lower_32_bits(ring->wptr << 2),
				upper_32_bits(ring->wptr << 2));
		/* XXX check if swapping is necessary on BE */
408
		WRITE_ONCE(*wb, (ring->wptr << 2));
409 410 411 412 413 414
		DRM_DEBUG("calling WDOORBELL64(0x%08x, 0x%016llx)\n",
				ring->doorbell_index, ring->wptr << 2);
		WDOORBELL64(ring->doorbell_index, ring->wptr << 2);
	} else {
		DRM_DEBUG("Not using doorbell -- "
				"mmSDMA%i_GFX_RB_WPTR == 0x%08x "
415
				"mmSDMA%i_GFX_RB_WPTR_HI == 0x%08x\n",
416
				ring->me,
417
				lower_32_bits(ring->wptr << 2),
418
				ring->me,
419
				upper_32_bits(ring->wptr << 2));
420 421 422 423
		WREG32_SDMA(ring->me, mmSDMA0_GFX_RB_WPTR,
			    lower_32_bits(ring->wptr << 2));
		WREG32_SDMA(ring->me, mmSDMA0_GFX_RB_WPTR_HI,
			    upper_32_bits(ring->wptr << 2));
424 425 426
	}
}

427 428 429 430 431 432 433 434 435 436 437 438 439 440 441 442 443 444 445 446 447 448 449 450 451 452 453 454 455 456 457 458 459 460 461 462 463 464 465 466 467 468 469 470 471 472 473 474 475 476 477
/**
 * sdma_v4_0_page_ring_get_wptr - get the current write pointer
 *
 * @ring: amdgpu ring pointer
 *
 * Get the current wptr from the hardware (VEGA10+).
 */
static uint64_t sdma_v4_0_page_ring_get_wptr(struct amdgpu_ring *ring)
{
	struct amdgpu_device *adev = ring->adev;
	u64 wptr;

	if (ring->use_doorbell) {
		/* XXX check if swapping is necessary on BE */
		wptr = READ_ONCE(*((u64 *)&adev->wb.wb[ring->wptr_offs]));
	} else {
		wptr = RREG32_SDMA(ring->me, mmSDMA0_PAGE_RB_WPTR_HI);
		wptr = wptr << 32;
		wptr |= RREG32_SDMA(ring->me, mmSDMA0_PAGE_RB_WPTR);
	}

	return wptr >> 2;
}

/**
 * sdma_v4_0_ring_set_wptr - commit the write pointer
 *
 * @ring: amdgpu ring pointer
 *
 * Write the wptr back to the hardware (VEGA10+).
 */
static void sdma_v4_0_page_ring_set_wptr(struct amdgpu_ring *ring)
{
	struct amdgpu_device *adev = ring->adev;

	if (ring->use_doorbell) {
		u64 *wb = (u64 *)&adev->wb.wb[ring->wptr_offs];

		/* XXX check if swapping is necessary on BE */
		WRITE_ONCE(*wb, (ring->wptr << 2));
		WDOORBELL64(ring->doorbell_index, ring->wptr << 2);
	} else {
		uint64_t wptr = ring->wptr << 2;

		WREG32_SDMA(ring->me, mmSDMA0_PAGE_RB_WPTR,
			    lower_32_bits(wptr));
		WREG32_SDMA(ring->me, mmSDMA0_PAGE_RB_WPTR_HI,
			    upper_32_bits(wptr));
	}
}

478 479 480 481 482 483 484 485 486 487 488 489 490 491 492 493 494 495 496 497 498 499
static void sdma_v4_0_ring_insert_nop(struct amdgpu_ring *ring, uint32_t count)
{
	struct amdgpu_sdma_instance *sdma = amdgpu_get_sdma_instance(ring);
	int i;

	for (i = 0; i < count; i++)
		if (sdma && sdma->burst_nop && (i == 0))
			amdgpu_ring_write(ring, ring->funcs->nop |
				SDMA_PKT_NOP_HEADER_COUNT(count - 1));
		else
			amdgpu_ring_write(ring, ring->funcs->nop);
}

/**
 * sdma_v4_0_ring_emit_ib - Schedule an IB on the DMA engine
 *
 * @ring: amdgpu ring pointer
 * @ib: IB object to schedule
 *
 * Schedule an IB in the DMA ring (VEGA10).
 */
static void sdma_v4_0_ring_emit_ib(struct amdgpu_ring *ring,
500
					struct amdgpu_ib *ib,
501
					unsigned vmid, bool ctx_switch)
502
{
503 504
	/* IB packet must end on a 8 DW boundary */
	sdma_v4_0_ring_insert_nop(ring, (10 - (lower_32_bits(ring->wptr) & 7)) % 8);
505

506
	amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_INDIRECT) |
507
			  SDMA_PKT_INDIRECT_HEADER_VMID(vmid & 0xf));
508 509 510 511 512 513
	/* base must be 32 byte aligned */
	amdgpu_ring_write(ring, lower_32_bits(ib->gpu_addr) & 0xffffffe0);
	amdgpu_ring_write(ring, upper_32_bits(ib->gpu_addr));
	amdgpu_ring_write(ring, ib->length_dw);
	amdgpu_ring_write(ring, 0);
	amdgpu_ring_write(ring, 0);
514 515 516

}

517 518 519 520 521 522 523 524 525 526 527 528 529 530 531 532 533 534 535 536 537 538 539 540 541
static void sdma_v4_0_wait_reg_mem(struct amdgpu_ring *ring,
				   int mem_space, int hdp,
				   uint32_t addr0, uint32_t addr1,
				   uint32_t ref, uint32_t mask,
				   uint32_t inv)
{
	amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_POLL_REGMEM) |
			  SDMA_PKT_POLL_REGMEM_HEADER_HDP_FLUSH(hdp) |
			  SDMA_PKT_POLL_REGMEM_HEADER_MEM_POLL(mem_space) |
			  SDMA_PKT_POLL_REGMEM_HEADER_FUNC(3)); /* == */
	if (mem_space) {
		/* memory */
		amdgpu_ring_write(ring, addr0);
		amdgpu_ring_write(ring, addr1);
	} else {
		/* registers */
		amdgpu_ring_write(ring, addr0 << 2);
		amdgpu_ring_write(ring, addr1 << 2);
	}
	amdgpu_ring_write(ring, ref); /* reference */
	amdgpu_ring_write(ring, mask); /* mask */
	amdgpu_ring_write(ring, SDMA_PKT_POLL_REGMEM_DW5_RETRY_COUNT(0xfff) |
			  SDMA_PKT_POLL_REGMEM_DW5_INTERVAL(inv)); /* retry count, poll interval */
}

542 543 544 545 546 547 548 549 550
/**
 * sdma_v4_0_ring_emit_hdp_flush - emit an hdp flush on the DMA ring
 *
 * @ring: amdgpu ring pointer
 *
 * Emit an hdp flush packet on the requested DMA ring.
 */
static void sdma_v4_0_ring_emit_hdp_flush(struct amdgpu_ring *ring)
{
551
	struct amdgpu_device *adev = ring->adev;
552
	u32 ref_and_mask = 0;
553
	const struct nbio_hdp_flush_reg *nbio_hf_reg = adev->nbio_funcs->hdp_flush_reg;
554

555
	if (ring->me == 0)
556 557 558 559
		ref_and_mask = nbio_hf_reg->ref_and_mask_sdma0;
	else
		ref_and_mask = nbio_hf_reg->ref_and_mask_sdma1;

560 561 562 563
	sdma_v4_0_wait_reg_mem(ring, 0, 1,
			       adev->nbio_funcs->get_hdp_flush_done_offset(adev),
			       adev->nbio_funcs->get_hdp_flush_req_offset(adev),
			       ref_and_mask, ref_and_mask, 10);
564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620
}

/**
 * sdma_v4_0_ring_emit_fence - emit a fence on the DMA ring
 *
 * @ring: amdgpu ring pointer
 * @fence: amdgpu fence object
 *
 * Add a DMA fence packet to the ring to write
 * the fence seq number and DMA trap packet to generate
 * an interrupt if needed (VEGA10).
 */
static void sdma_v4_0_ring_emit_fence(struct amdgpu_ring *ring, u64 addr, u64 seq,
				      unsigned flags)
{
	bool write64bit = flags & AMDGPU_FENCE_FLAG_64BIT;
	/* write the fence */
	amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_FENCE));
	/* zero in first two bits */
	BUG_ON(addr & 0x3);
	amdgpu_ring_write(ring, lower_32_bits(addr));
	amdgpu_ring_write(ring, upper_32_bits(addr));
	amdgpu_ring_write(ring, lower_32_bits(seq));

	/* optionally write high bits as well */
	if (write64bit) {
		addr += 4;
		amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_FENCE));
		/* zero in first two bits */
		BUG_ON(addr & 0x3);
		amdgpu_ring_write(ring, lower_32_bits(addr));
		amdgpu_ring_write(ring, upper_32_bits(addr));
		amdgpu_ring_write(ring, upper_32_bits(seq));
	}

	/* generate an interrupt */
	amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_TRAP));
	amdgpu_ring_write(ring, SDMA_PKT_TRAP_INT_CONTEXT_INT_CONTEXT(0));
}


/**
 * sdma_v4_0_gfx_stop - stop the gfx async dma engines
 *
 * @adev: amdgpu_device pointer
 *
 * Stop the gfx async dma ring buffers (VEGA10).
 */
static void sdma_v4_0_gfx_stop(struct amdgpu_device *adev)
{
	struct amdgpu_ring *sdma0 = &adev->sdma.instance[0].ring;
	struct amdgpu_ring *sdma1 = &adev->sdma.instance[1].ring;
	u32 rb_cntl, ib_cntl;
	int i;

	if ((adev->mman.buffer_funcs_ring == sdma0) ||
	    (adev->mman.buffer_funcs_ring == sdma1))
621
			amdgpu_ttm_set_buffer_funcs_status(adev, false);
622 623

	for (i = 0; i < adev->sdma.num_instances; i++) {
624
		rb_cntl = RREG32_SDMA(i, mmSDMA0_GFX_RB_CNTL);
625
		rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_GFX_RB_CNTL, RB_ENABLE, 0);
626 627
		WREG32_SDMA(i, mmSDMA0_GFX_RB_CNTL, rb_cntl);
		ib_cntl = RREG32_SDMA(i, mmSDMA0_GFX_IB_CNTL);
628
		ib_cntl = REG_SET_FIELD(ib_cntl, SDMA0_GFX_IB_CNTL, IB_ENABLE, 0);
629
		WREG32_SDMA(i, mmSDMA0_GFX_IB_CNTL, ib_cntl);
630 631
	}

632 633
	sdma0->sched.ready = false;
	sdma1->sched.ready = false;
634 635 636 637 638 639 640 641 642 643 644 645 646 647
}

/**
 * sdma_v4_0_rlc_stop - stop the compute async dma engines
 *
 * @adev: amdgpu_device pointer
 *
 * Stop the compute async dma queues (VEGA10).
 */
static void sdma_v4_0_rlc_stop(struct amdgpu_device *adev)
{
	/* XXX todo */
}

648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672
/**
 * sdma_v4_0_page_stop - stop the page async dma engines
 *
 * @adev: amdgpu_device pointer
 *
 * Stop the page async dma ring buffers (VEGA10).
 */
static void sdma_v4_0_page_stop(struct amdgpu_device *adev)
{
	struct amdgpu_ring *sdma0 = &adev->sdma.instance[0].page;
	struct amdgpu_ring *sdma1 = &adev->sdma.instance[1].page;
	u32 rb_cntl, ib_cntl;
	int i;

	for (i = 0; i < adev->sdma.num_instances; i++) {
		rb_cntl = RREG32_SDMA(i, mmSDMA0_PAGE_RB_CNTL);
		rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_PAGE_RB_CNTL,
					RB_ENABLE, 0);
		WREG32_SDMA(i, mmSDMA0_PAGE_RB_CNTL, rb_cntl);
		ib_cntl = RREG32_SDMA(i, mmSDMA0_PAGE_IB_CNTL);
		ib_cntl = REG_SET_FIELD(ib_cntl, SDMA0_PAGE_IB_CNTL,
					IB_ENABLE, 0);
		WREG32_SDMA(i, mmSDMA0_PAGE_IB_CNTL, ib_cntl);
	}

673 674
	sdma0->sched.ready = false;
	sdma1->sched.ready = false;
675 676
}

677 678 679 680 681 682 683 684 685 686
/**
 * sdma_v_0_ctx_switch_enable - stop the async dma engines context switch
 *
 * @adev: amdgpu_device pointer
 * @enable: enable/disable the DMA MEs context switch.
 *
 * Halt or unhalt the async dma engines context switch (VEGA10).
 */
static void sdma_v4_0_ctx_switch_enable(struct amdgpu_device *adev, bool enable)
{
687
	u32 f32_cntl, phase_quantum = 0;
688 689
	int i;

690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713
	if (amdgpu_sdma_phase_quantum) {
		unsigned value = amdgpu_sdma_phase_quantum;
		unsigned unit = 0;

		while (value > (SDMA0_PHASE0_QUANTUM__VALUE_MASK >>
				SDMA0_PHASE0_QUANTUM__VALUE__SHIFT)) {
			value = (value + 1) >> 1;
			unit++;
		}
		if (unit > (SDMA0_PHASE0_QUANTUM__UNIT_MASK >>
			    SDMA0_PHASE0_QUANTUM__UNIT__SHIFT)) {
			value = (SDMA0_PHASE0_QUANTUM__VALUE_MASK >>
				 SDMA0_PHASE0_QUANTUM__VALUE__SHIFT);
			unit = (SDMA0_PHASE0_QUANTUM__UNIT_MASK >>
				SDMA0_PHASE0_QUANTUM__UNIT__SHIFT);
			WARN_ONCE(1,
			"clamping sdma_phase_quantum to %uK clock cycles\n",
				  value << unit);
		}
		phase_quantum =
			value << SDMA0_PHASE0_QUANTUM__VALUE__SHIFT |
			unit  << SDMA0_PHASE0_QUANTUM__UNIT__SHIFT;
	}

714
	for (i = 0; i < adev->sdma.num_instances; i++) {
715
		f32_cntl = RREG32_SDMA(i, mmSDMA0_CNTL);
716 717
		f32_cntl = REG_SET_FIELD(f32_cntl, SDMA0_CNTL,
				AUTO_CTXSW_ENABLE, enable ? 1 : 0);
718
		if (enable && amdgpu_sdma_phase_quantum) {
719 720 721
			WREG32_SDMA(i, mmSDMA0_PHASE0_QUANTUM, phase_quantum);
			WREG32_SDMA(i, mmSDMA0_PHASE1_QUANTUM, phase_quantum);
			WREG32_SDMA(i, mmSDMA0_PHASE2_QUANTUM, phase_quantum);
722
		}
723
		WREG32_SDMA(i, mmSDMA0_CNTL, f32_cntl);
724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743
	}

}

/**
 * sdma_v4_0_enable - stop the async dma engines
 *
 * @adev: amdgpu_device pointer
 * @enable: enable/disable the DMA MEs.
 *
 * Halt or unhalt the async dma engines (VEGA10).
 */
static void sdma_v4_0_enable(struct amdgpu_device *adev, bool enable)
{
	u32 f32_cntl;
	int i;

	if (enable == false) {
		sdma_v4_0_gfx_stop(adev);
		sdma_v4_0_rlc_stop(adev);
744 745
		if (adev->sdma.has_page_queue)
			sdma_v4_0_page_stop(adev);
746 747 748
	}

	for (i = 0; i < adev->sdma.num_instances; i++) {
749
		f32_cntl = RREG32_SDMA(i, mmSDMA0_F32_CNTL);
750
		f32_cntl = REG_SET_FIELD(f32_cntl, SDMA0_F32_CNTL, HALT, enable ? 0 : 1);
751
		WREG32_SDMA(i, mmSDMA0_F32_CNTL, f32_cntl);
752 753 754
	}
}

755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771
/**
 * sdma_v4_0_rb_cntl - get parameters for rb_cntl
 */
static uint32_t sdma_v4_0_rb_cntl(struct amdgpu_ring *ring, uint32_t rb_cntl)
{
	/* Set ring buffer size in dwords */
	uint32_t rb_bufsz = order_base_2(ring->ring_size / 4);

	rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_GFX_RB_CNTL, RB_SIZE, rb_bufsz);
#ifdef __BIG_ENDIAN
	rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_GFX_RB_CNTL, RB_SWAP_ENABLE, 1);
	rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_GFX_RB_CNTL,
				RPTR_WRITEBACK_SWAP_ENABLE, 1);
#endif
	return rb_cntl;
}

772 773 774 775
/**
 * sdma_v4_0_gfx_resume - setup and start the async dma engines
 *
 * @adev: amdgpu_device pointer
776
 * @i: instance to resume
777 778 779 780
 *
 * Set up the gfx DMA ring buffers and enable them (VEGA10).
 * Returns 0 for success, error for failure.
 */
781
static void sdma_v4_0_gfx_resume(struct amdgpu_device *adev, unsigned int i)
782
{
783
	struct amdgpu_ring *ring = &adev->sdma.instance[i].ring;
784 785
	u32 rb_cntl, ib_cntl, wptr_poll_cntl;
	u32 wb_offset;
786 787
	u32 doorbell;
	u32 doorbell_offset;
788
	u64 wptr_gpu_addr;
789

790
	wb_offset = (ring->rptr_offs * 4);
791

792
	rb_cntl = RREG32_SDMA(i, mmSDMA0_GFX_RB_CNTL);
793
	rb_cntl = sdma_v4_0_rb_cntl(ring, rb_cntl);
794
	WREG32_SDMA(i, mmSDMA0_GFX_RB_CNTL, rb_cntl);
795

796
	/* Initialize the ring buffer's read and write pointers */
797 798 799 800
	WREG32_SDMA(i, mmSDMA0_GFX_RB_RPTR, 0);
	WREG32_SDMA(i, mmSDMA0_GFX_RB_RPTR_HI, 0);
	WREG32_SDMA(i, mmSDMA0_GFX_RB_WPTR, 0);
	WREG32_SDMA(i, mmSDMA0_GFX_RB_WPTR_HI, 0);
801

802
	/* set the wb address whether it's enabled or not */
803
	WREG32_SDMA(i, mmSDMA0_GFX_RB_RPTR_ADDR_HI,
804
	       upper_32_bits(adev->wb.gpu_addr + wb_offset) & 0xFFFFFFFF);
805
	WREG32_SDMA(i, mmSDMA0_GFX_RB_RPTR_ADDR_LO,
806
	       lower_32_bits(adev->wb.gpu_addr + wb_offset) & 0xFFFFFFFC);
807

808 809
	rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_GFX_RB_CNTL,
				RPTR_WRITEBACK_ENABLE, 1);
810

811 812
	WREG32_SDMA(i, mmSDMA0_GFX_RB_BASE, ring->gpu_addr >> 8);
	WREG32_SDMA(i, mmSDMA0_GFX_RB_BASE_HI, ring->gpu_addr >> 40);
813

814
	ring->wptr = 0;
815

816
	/* before programing wptr to a less value, need set minor_ptr_update first */
817
	WREG32_SDMA(i, mmSDMA0_GFX_MINOR_PTR_UPDATE, 1);
818

819 820
	doorbell = RREG32_SDMA(i, mmSDMA0_GFX_DOORBELL);
	doorbell_offset = RREG32_SDMA(i, mmSDMA0_GFX_DOORBELL_OFFSET);
821

822 823 824 825 826
	doorbell = REG_SET_FIELD(doorbell, SDMA0_GFX_DOORBELL, ENABLE,
				 ring->use_doorbell);
	doorbell_offset = REG_SET_FIELD(doorbell_offset,
					SDMA0_GFX_DOORBELL_OFFSET,
					OFFSET, ring->doorbell_index);
827 828
	WREG32_SDMA(i, mmSDMA0_GFX_DOORBELL, doorbell);
	WREG32_SDMA(i, mmSDMA0_GFX_DOORBELL_OFFSET, doorbell_offset);
829 830 831
	adev->nbio_funcs->sdma_doorbell_range(adev, i, ring->use_doorbell,
					      ring->doorbell_index);

832
	sdma_v4_0_ring_set_wptr(ring);
833 834

	/* set minor_ptr_update to 0 after wptr programed */
835
	WREG32_SDMA(i, mmSDMA0_GFX_MINOR_PTR_UPDATE, 0);
836 837 838

	/* setup the wptr shadow polling */
	wptr_gpu_addr = adev->wb.gpu_addr + (ring->wptr_offs * 4);
839 840 841 842 843
	WREG32_SDMA(i, mmSDMA0_GFX_RB_WPTR_POLL_ADDR_LO,
		    lower_32_bits(wptr_gpu_addr));
	WREG32_SDMA(i, mmSDMA0_GFX_RB_WPTR_POLL_ADDR_HI,
		    upper_32_bits(wptr_gpu_addr));
	wptr_poll_cntl = RREG32_SDMA(i, mmSDMA0_GFX_RB_WPTR_POLL_CNTL);
844 845 846
	wptr_poll_cntl = REG_SET_FIELD(wptr_poll_cntl,
				       SDMA0_GFX_RB_WPTR_POLL_CNTL,
				       F32_POLL_ENABLE, amdgpu_sriov_vf(adev));
847
	WREG32_SDMA(i, mmSDMA0_GFX_RB_WPTR_POLL_CNTL, wptr_poll_cntl);
848

849 850
	/* enable DMA RB */
	rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_GFX_RB_CNTL, RB_ENABLE, 1);
851
	WREG32_SDMA(i, mmSDMA0_GFX_RB_CNTL, rb_cntl);
852

853
	ib_cntl = RREG32_SDMA(i, mmSDMA0_GFX_IB_CNTL);
854
	ib_cntl = REG_SET_FIELD(ib_cntl, SDMA0_GFX_IB_CNTL, IB_ENABLE, 1);
855
#ifdef __BIG_ENDIAN
856
	ib_cntl = REG_SET_FIELD(ib_cntl, SDMA0_GFX_IB_CNTL, IB_SWAP_ENABLE, 1);
857
#endif
858
	/* enable DMA IBs */
859
	WREG32_SDMA(i, mmSDMA0_GFX_IB_CNTL, ib_cntl);
860

861
	ring->sched.ready = true;
862 863
}

864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953
/**
 * sdma_v4_0_page_resume - setup and start the async dma engines
 *
 * @adev: amdgpu_device pointer
 * @i: instance to resume
 *
 * Set up the page DMA ring buffers and enable them (VEGA10).
 * Returns 0 for success, error for failure.
 */
static void sdma_v4_0_page_resume(struct amdgpu_device *adev, unsigned int i)
{
	struct amdgpu_ring *ring = &adev->sdma.instance[i].page;
	u32 rb_cntl, ib_cntl, wptr_poll_cntl;
	u32 wb_offset;
	u32 doorbell;
	u32 doorbell_offset;
	u64 wptr_gpu_addr;

	wb_offset = (ring->rptr_offs * 4);

	rb_cntl = RREG32_SDMA(i, mmSDMA0_PAGE_RB_CNTL);
	rb_cntl = sdma_v4_0_rb_cntl(ring, rb_cntl);
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_CNTL, rb_cntl);

	/* Initialize the ring buffer's read and write pointers */
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_RPTR, 0);
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_RPTR_HI, 0);
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_WPTR, 0);
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_WPTR_HI, 0);

	/* set the wb address whether it's enabled or not */
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_RPTR_ADDR_HI,
	       upper_32_bits(adev->wb.gpu_addr + wb_offset) & 0xFFFFFFFF);
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_RPTR_ADDR_LO,
	       lower_32_bits(adev->wb.gpu_addr + wb_offset) & 0xFFFFFFFC);

	rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_PAGE_RB_CNTL,
				RPTR_WRITEBACK_ENABLE, 1);

	WREG32_SDMA(i, mmSDMA0_PAGE_RB_BASE, ring->gpu_addr >> 8);
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_BASE_HI, ring->gpu_addr >> 40);

	ring->wptr = 0;

	/* before programing wptr to a less value, need set minor_ptr_update first */
	WREG32_SDMA(i, mmSDMA0_PAGE_MINOR_PTR_UPDATE, 1);

	doorbell = RREG32_SDMA(i, mmSDMA0_PAGE_DOORBELL);
	doorbell_offset = RREG32_SDMA(i, mmSDMA0_PAGE_DOORBELL_OFFSET);

	doorbell = REG_SET_FIELD(doorbell, SDMA0_PAGE_DOORBELL, ENABLE,
				 ring->use_doorbell);
	doorbell_offset = REG_SET_FIELD(doorbell_offset,
					SDMA0_PAGE_DOORBELL_OFFSET,
					OFFSET, ring->doorbell_index);
	WREG32_SDMA(i, mmSDMA0_PAGE_DOORBELL, doorbell);
	WREG32_SDMA(i, mmSDMA0_PAGE_DOORBELL_OFFSET, doorbell_offset);
	/* TODO: enable doorbell support */
	/*adev->nbio_funcs->sdma_doorbell_range(adev, i, ring->use_doorbell,
					      ring->doorbell_index);*/

	sdma_v4_0_ring_set_wptr(ring);

	/* set minor_ptr_update to 0 after wptr programed */
	WREG32_SDMA(i, mmSDMA0_PAGE_MINOR_PTR_UPDATE, 0);

	/* setup the wptr shadow polling */
	wptr_gpu_addr = adev->wb.gpu_addr + (ring->wptr_offs * 4);
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_WPTR_POLL_ADDR_LO,
		    lower_32_bits(wptr_gpu_addr));
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_WPTR_POLL_ADDR_HI,
		    upper_32_bits(wptr_gpu_addr));
	wptr_poll_cntl = RREG32_SDMA(i, mmSDMA0_PAGE_RB_WPTR_POLL_CNTL);
	wptr_poll_cntl = REG_SET_FIELD(wptr_poll_cntl,
				       SDMA0_PAGE_RB_WPTR_POLL_CNTL,
				       F32_POLL_ENABLE, amdgpu_sriov_vf(adev));
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_WPTR_POLL_CNTL, wptr_poll_cntl);

	/* enable DMA RB */
	rb_cntl = REG_SET_FIELD(rb_cntl, SDMA0_PAGE_RB_CNTL, RB_ENABLE, 1);
	WREG32_SDMA(i, mmSDMA0_PAGE_RB_CNTL, rb_cntl);

	ib_cntl = RREG32_SDMA(i, mmSDMA0_PAGE_IB_CNTL);
	ib_cntl = REG_SET_FIELD(ib_cntl, SDMA0_PAGE_IB_CNTL, IB_ENABLE, 1);
#ifdef __BIG_ENDIAN
	ib_cntl = REG_SET_FIELD(ib_cntl, SDMA0_PAGE_IB_CNTL, IB_SWAP_ENABLE, 1);
#endif
	/* enable DMA IBs */
	WREG32_SDMA(i, mmSDMA0_PAGE_IB_CNTL, ib_cntl);

954
	ring->sched.ready = true;
955 956
}

957 958 959 960 961 962
static void
sdma_v4_1_update_power_gating(struct amdgpu_device *adev, bool enable)
{
	uint32_t def, data;

	if (enable && (adev->pg_flags & AMD_PG_SUPPORT_SDMA)) {
963
		/* enable idle interrupt */
964 965 966 967 968 969 970 971 972 973 974 975 976 977
		def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CNTL));
		data |= SDMA0_CNTL__CTXEMPTY_INT_ENABLE_MASK;

		if (data != def)
			WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CNTL), data);
	} else {
		/* disable idle interrupt */
		def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CNTL));
		data &= ~SDMA0_CNTL__CTXEMPTY_INT_ENABLE_MASK;
		if (data != def)
			WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CNTL), data);
	}
}

978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012
static void sdma_v4_1_init_power_gating(struct amdgpu_device *adev)
{
	uint32_t def, data;

	/* Enable HW based PG. */
	def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL));
	data |= SDMA0_POWER_CNTL__PG_CNTL_ENABLE_MASK;
	if (data != def)
		WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL), data);

	/* enable interrupt */
	def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CNTL));
	data |= SDMA0_CNTL__CTXEMPTY_INT_ENABLE_MASK;
	if (data != def)
		WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CNTL), data);

	/* Configure hold time to filter in-valid power on/off request. Use default right now */
	def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL));
	data &= ~SDMA0_POWER_CNTL__ON_OFF_CONDITION_HOLD_TIME_MASK;
	data |= (mmSDMA0_POWER_CNTL_DEFAULT & SDMA0_POWER_CNTL__ON_OFF_CONDITION_HOLD_TIME_MASK);
	/* Configure switch time for hysteresis purpose. Use default right now */
	data &= ~SDMA0_POWER_CNTL__ON_OFF_STATUS_DURATION_TIME_MASK;
	data |= (mmSDMA0_POWER_CNTL_DEFAULT & SDMA0_POWER_CNTL__ON_OFF_STATUS_DURATION_TIME_MASK);
	if(data != def)
		WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL), data);
}

static void sdma_v4_0_init_pg(struct amdgpu_device *adev)
{
	if (!(adev->pg_flags & AMD_PG_SUPPORT_SDMA))
		return;

	switch (adev->asic_type) {
	case CHIP_RAVEN:
		sdma_v4_1_init_power_gating(adev);
1013
		sdma_v4_1_update_power_gating(adev, true);
1014 1015 1016 1017 1018 1019
		break;
	default:
		break;
	}
}

1020 1021 1022 1023 1024 1025 1026 1027 1028 1029
/**
 * sdma_v4_0_rlc_resume - setup and start the async dma engines
 *
 * @adev: amdgpu_device pointer
 *
 * Set up the compute DMA queues and enable them (VEGA10).
 * Returns 0 for success, error for failure.
 */
static int sdma_v4_0_rlc_resume(struct amdgpu_device *adev)
{
1030 1031
	sdma_v4_0_init_pg(adev);

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
	return 0;
}

/**
 * sdma_v4_0_load_microcode - load the sDMA ME ucode
 *
 * @adev: amdgpu_device pointer
 *
 * Loads the sDMA0/1 ucode.
 * Returns 0 for success, -EINVAL if the ucode is not available.
 */
static int sdma_v4_0_load_microcode(struct amdgpu_device *adev)
{
	const struct sdma_firmware_header_v1_0 *hdr;
	const __le32 *fw_data;
	u32 fw_size;
	int i, j;

	/* halt the MEs */
	sdma_v4_0_enable(adev, false);

	for (i = 0; i < adev->sdma.num_instances; i++) {
		if (!adev->sdma.instance[i].fw)
			return -EINVAL;

		hdr = (const struct sdma_firmware_header_v1_0 *)adev->sdma.instance[i].fw->data;
		amdgpu_ucode_print_sdma_hdr(&hdr->header);
		fw_size = le32_to_cpu(hdr->header.ucode_size_bytes) / 4;

		fw_data = (const __le32 *)
			(adev->sdma.instance[i].fw->data +
				le32_to_cpu(hdr->header.ucode_array_offset_bytes));

1065
		WREG32_SDMA(i, mmSDMA0_UCODE_ADDR, 0);
1066 1067

		for (j = 0; j < fw_size; j++)
1068 1069
			WREG32_SDMA(i, mmSDMA0_UCODE_DATA,
				    le32_to_cpup(fw_data++));
1070

1071 1072
		WREG32_SDMA(i, mmSDMA0_UCODE_ADDR,
			    adev->sdma.instance[i].fw_version);
1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087
	}

	return 0;
}

/**
 * sdma_v4_0_start - setup and start the async dma engines
 *
 * @adev: amdgpu_device pointer
 *
 * Set up the DMA engines and enable them (VEGA10).
 * Returns 0 for success, error for failure.
 */
static int sdma_v4_0_start(struct amdgpu_device *adev)
{
1088 1089
	struct amdgpu_ring *ring;
	int i, r;
1090

1091
	if (amdgpu_sriov_vf(adev)) {
1092
		sdma_v4_0_ctx_switch_enable(adev, false);
1093
		sdma_v4_0_enable(adev, false);
1094 1095 1096 1097 1098 1099 1100
	} else {

		if (adev->firmware.load_type != AMDGPU_FW_LOAD_PSP) {
			r = sdma_v4_0_load_microcode(adev);
			if (r)
				return r;
		}
1101

1102 1103 1104 1105
		/* unhalt the MEs */
		sdma_v4_0_enable(adev, true);
		/* enable sdma ring preemption */
		sdma_v4_0_ctx_switch_enable(adev, true);
1106 1107
	}

1108
	/* start the gfx rings and rlc compute queues */
1109 1110 1111
	for (i = 0; i < adev->sdma.num_instances; i++) {
		uint32_t temp;

1112
		WREG32_SDMA(i, mmSDMA0_SEM_WAIT_FAIL_TIMER_CNTL, 0);
1113
		sdma_v4_0_gfx_resume(adev, i);
1114 1115
		if (adev->sdma.has_page_queue)
			sdma_v4_0_page_resume(adev, i);
1116

1117
		/* set utc l1 enable flag always to 1 */
1118
		temp = RREG32_SDMA(i, mmSDMA0_CNTL);
1119
		temp = REG_SET_FIELD(temp, SDMA0_CNTL, UTC_L1_ENABLE, 1);
1120
		WREG32_SDMA(i, mmSDMA0_CNTL, temp);
1121 1122 1123

		if (!amdgpu_sriov_vf(adev)) {
			/* unhalt engine */
1124
			temp = RREG32_SDMA(i, mmSDMA0_F32_CNTL);
1125
			temp = REG_SET_FIELD(temp, SDMA0_F32_CNTL, HALT, 0);
1126
			WREG32_SDMA(i, mmSDMA0_F32_CNTL, temp);
1127 1128 1129
		}
	}

1130 1131 1132 1133 1134
	if (amdgpu_sriov_vf(adev)) {
		sdma_v4_0_ctx_switch_enable(adev, true);
		sdma_v4_0_enable(adev, true);
	} else {
		r = sdma_v4_0_rlc_resume(adev);
1135 1136 1137 1138
		if (r)
			return r;
	}

1139 1140
	for (i = 0; i < adev->sdma.num_instances; i++) {
		ring = &adev->sdma.instance[i].ring;
1141

1142 1143
		r = amdgpu_ring_test_helper(ring);
		if (r)
1144 1145
			return r;

1146
		if (adev->sdma.has_page_queue) {
1147 1148
			struct amdgpu_ring *page = &adev->sdma.instance[i].page;

1149 1150
			r = amdgpu_ring_test_helper(page);
			if (r)
1151 1152 1153
				return r;
		}

1154 1155 1156
		if (adev->mman.buffer_funcs_ring == ring)
			amdgpu_ttm_set_buffer_funcs_status(adev, true);
	}
1157

1158
	return r;
1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178
}

/**
 * sdma_v4_0_ring_test_ring - simple async dma engine test
 *
 * @ring: amdgpu_ring structure holding ring information
 *
 * Test the DMA engine by writing using it to write an
 * value to memory. (VEGA10).
 * Returns 0 for success, error for failure.
 */
static int sdma_v4_0_ring_test_ring(struct amdgpu_ring *ring)
{
	struct amdgpu_device *adev = ring->adev;
	unsigned i;
	unsigned index;
	int r;
	u32 tmp;
	u64 gpu_addr;

1179
	r = amdgpu_device_wb_get(adev, &index);
1180
	if (r)
1181 1182 1183 1184 1185 1186 1187
		return r;

	gpu_addr = adev->wb.gpu_addr + (index * 4);
	tmp = 0xCAFEDEAD;
	adev->wb.wb[index] = cpu_to_le32(tmp);

	r = amdgpu_ring_alloc(ring, 5);
1188 1189
	if (r)
		goto error_free_wb;
1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200

	amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_WRITE) |
			  SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_WRITE_LINEAR));
	amdgpu_ring_write(ring, lower_32_bits(gpu_addr));
	amdgpu_ring_write(ring, upper_32_bits(gpu_addr));
	amdgpu_ring_write(ring, SDMA_PKT_WRITE_UNTILED_DW_3_COUNT(0));
	amdgpu_ring_write(ring, 0xDEADBEEF);
	amdgpu_ring_commit(ring);

	for (i = 0; i < adev->usec_timeout; i++) {
		tmp = le32_to_cpu(adev->wb.wb[index]);
1201
		if (tmp == 0xDEADBEEF)
1202 1203 1204 1205
			break;
		DRM_UDELAY(1);
	}

1206 1207
	if (i >= adev->usec_timeout)
		r = -ETIMEDOUT;
1208

1209 1210
error_free_wb:
	amdgpu_device_wb_free(adev, index);
1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231
	return r;
}

/**
 * sdma_v4_0_ring_test_ib - test an IB on the DMA engine
 *
 * @ring: amdgpu_ring structure holding ring information
 *
 * Test a simple IB in the DMA ring (VEGA10).
 * Returns 0 on success, error on failure.
 */
static int sdma_v4_0_ring_test_ib(struct amdgpu_ring *ring, long timeout)
{
	struct amdgpu_device *adev = ring->adev;
	struct amdgpu_ib ib;
	struct dma_fence *f = NULL;
	unsigned index;
	long r;
	u32 tmp = 0;
	u64 gpu_addr;

1232
	r = amdgpu_device_wb_get(adev, &index);
1233
	if (r)
1234 1235 1236 1237 1238 1239 1240
		return r;

	gpu_addr = adev->wb.gpu_addr + (index * 4);
	tmp = 0xCAFEDEAD;
	adev->wb.wb[index] = cpu_to_le32(tmp);
	memset(&ib, 0, sizeof(ib));
	r = amdgpu_ib_get(adev, NULL, 256, &ib);
1241
	if (r)
1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258
		goto err0;

	ib.ptr[0] = SDMA_PKT_HEADER_OP(SDMA_OP_WRITE) |
		SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_WRITE_LINEAR);
	ib.ptr[1] = lower_32_bits(gpu_addr);
	ib.ptr[2] = upper_32_bits(gpu_addr);
	ib.ptr[3] = SDMA_PKT_WRITE_UNTILED_DW_3_COUNT(0);
	ib.ptr[4] = 0xDEADBEEF;
	ib.ptr[5] = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP);
	ib.ptr[6] = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP);
	ib.ptr[7] = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP);
	ib.length_dw = 8;

	r = amdgpu_ib_schedule(ring, 1, &ib, NULL, &f);
	if (r)
		goto err1;

1259 1260 1261 1262 1263 1264 1265 1266
	r = dma_fence_wait_timeout(f, false, timeout);
	if (r == 0) {
		r = -ETIMEDOUT;
		goto err1;
	} else if (r < 0) {
		goto err1;
	}
	tmp = le32_to_cpu(adev->wb.wb[index]);
1267
	if (tmp == 0xDEADBEEF)
1268
		r = 0;
1269
	else
1270
		r = -EINVAL;
1271

1272
err1:
1273 1274
	amdgpu_ib_free(adev, &ib, NULL);
	dma_fence_put(f);
1275
err0:
1276
	amdgpu_device_wb_free(adev, index);
1277
	return r;
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
}


/**
 * sdma_v4_0_vm_copy_pte - update PTEs by copying them from the GART
 *
 * @ib: indirect buffer to fill with commands
 * @pe: addr of the page entry
 * @src: src addr to copy from
 * @count: number of page entries to update
 *
 * Update PTEs by copying them from the GART using sDMA (VEGA10).
 */
static void sdma_v4_0_vm_copy_pte(struct amdgpu_ib *ib,
				  uint64_t pe, uint64_t src,
				  unsigned count)
{
	unsigned bytes = count * 8;

	ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_COPY) |
		SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_COPY_LINEAR);
	ib->ptr[ib->length_dw++] = bytes - 1;
	ib->ptr[ib->length_dw++] = 0; /* src/dst endian swap */
	ib->ptr[ib->length_dw++] = lower_32_bits(src);
	ib->ptr[ib->length_dw++] = upper_32_bits(src);
	ib->ptr[ib->length_dw++] = lower_32_bits(pe);
	ib->ptr[ib->length_dw++] = upper_32_bits(pe);

}

/**
 * sdma_v4_0_vm_write_pte - update PTEs by writing them manually
 *
 * @ib: indirect buffer to fill with commands
 * @pe: addr of the page entry
 * @addr: dst addr to write into pe
 * @count: number of page entries to update
 * @incr: increase next addr by incr bytes
 * @flags: access flags
 *
 * Update PTEs by writing them manually using sDMA (VEGA10).
 */
static void sdma_v4_0_vm_write_pte(struct amdgpu_ib *ib, uint64_t pe,
				   uint64_t value, unsigned count,
				   uint32_t incr)
{
	unsigned ndw = count * 2;

	ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_WRITE) |
		SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_WRITE_LINEAR);
	ib->ptr[ib->length_dw++] = lower_32_bits(pe);
	ib->ptr[ib->length_dw++] = upper_32_bits(pe);
	ib->ptr[ib->length_dw++] = ndw - 1;
	for (; ndw > 0; ndw -= 2) {
		ib->ptr[ib->length_dw++] = lower_32_bits(value);
		ib->ptr[ib->length_dw++] = upper_32_bits(value);
		value += incr;
	}
}

/**
 * sdma_v4_0_vm_set_pte_pde - update the page tables using sDMA
 *
 * @ib: indirect buffer to fill with commands
 * @pe: addr of the page entry
 * @addr: dst addr to write into pe
 * @count: number of page entries to update
 * @incr: increase next addr by incr bytes
 * @flags: access flags
 *
 * Update the page tables using sDMA (VEGA10).
 */
static void sdma_v4_0_vm_set_pte_pde(struct amdgpu_ib *ib,
				     uint64_t pe,
				     uint64_t addr, unsigned count,
				     uint32_t incr, uint64_t flags)
{
	/* for physically contiguous pages (vram) */
	ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_PTEPDE);
	ib->ptr[ib->length_dw++] = lower_32_bits(pe); /* dst addr */
	ib->ptr[ib->length_dw++] = upper_32_bits(pe);
1359 1360
	ib->ptr[ib->length_dw++] = lower_32_bits(flags); /* mask */
	ib->ptr[ib->length_dw++] = upper_32_bits(flags);
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	ib->ptr[ib->length_dw++] = lower_32_bits(addr); /* value */
	ib->ptr[ib->length_dw++] = upper_32_bits(addr);
	ib->ptr[ib->length_dw++] = incr; /* increment size */
	ib->ptr[ib->length_dw++] = 0;
	ib->ptr[ib->length_dw++] = count - 1; /* number of entries */
}

/**
 * sdma_v4_0_ring_pad_ib - pad the IB to the required number of dw
 *
 * @ib: indirect buffer to fill with padding
 *
 */
static void sdma_v4_0_ring_pad_ib(struct amdgpu_ring *ring, struct amdgpu_ib *ib)
{
	struct amdgpu_sdma_instance *sdma = amdgpu_get_sdma_instance(ring);
	u32 pad_count;
	int i;

	pad_count = (8 - (ib->length_dw & 0x7)) % 8;
	for (i = 0; i < pad_count; i++)
		if (sdma && sdma->burst_nop && (i == 0))
			ib->ptr[ib->length_dw++] =
				SDMA_PKT_HEADER_OP(SDMA_OP_NOP) |
				SDMA_PKT_NOP_HEADER_COUNT(pad_count - 1);
		else
			ib->ptr[ib->length_dw++] =
				SDMA_PKT_HEADER_OP(SDMA_OP_NOP);
}


/**
 * sdma_v4_0_ring_emit_pipeline_sync - sync the pipeline
 *
 * @ring: amdgpu_ring pointer
 *
 * Make sure all previous operations are completed (CIK).
 */
static void sdma_v4_0_ring_emit_pipeline_sync(struct amdgpu_ring *ring)
{
	uint32_t seq = ring->fence_drv.sync_seq;
	uint64_t addr = ring->fence_drv.gpu_addr;

	/* wait for idle */
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	sdma_v4_0_wait_reg_mem(ring, 1, 0,
			       addr & 0xfffffffc,
			       upper_32_bits(addr) & 0xffffffff,
			       seq, 0xffffffff, 4);
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}


/**
 * sdma_v4_0_ring_emit_vm_flush - vm flush using sDMA
 *
 * @ring: amdgpu_ring pointer
 * @vm: amdgpu_vm pointer
 *
 * Update the page table base and flush the VM TLB
 * using sDMA (VEGA10).
 */
static void sdma_v4_0_ring_emit_vm_flush(struct amdgpu_ring *ring,
1422
					 unsigned vmid, uint64_t pd_addr)
1423
{
1424
	amdgpu_gmc_emit_flush_gpu_tlb(ring, vmid, pd_addr);
1425 1426
}

1427 1428 1429 1430 1431 1432 1433 1434 1435
static void sdma_v4_0_ring_emit_wreg(struct amdgpu_ring *ring,
				     uint32_t reg, uint32_t val)
{
	amdgpu_ring_write(ring, SDMA_PKT_HEADER_OP(SDMA_OP_SRBM_WRITE) |
			  SDMA_PKT_SRBM_WRITE_HEADER_BYTE_EN(0xf));
	amdgpu_ring_write(ring, reg);
	amdgpu_ring_write(ring, val);
}

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static void sdma_v4_0_ring_emit_reg_wait(struct amdgpu_ring *ring, uint32_t reg,
					 uint32_t val, uint32_t mask)
{
1439
	sdma_v4_0_wait_reg_mem(ring, 0, 0, reg, 0, val, mask, 10);
1440 1441
}

1442 1443 1444 1445
static int sdma_v4_0_early_init(void *handle)
{
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;

1446
	if (adev->asic_type == CHIP_RAVEN) {
1447
		adev->sdma.num_instances = 1;
1448 1449
		adev->sdma.has_page_queue = false;
	} else {
1450
		adev->sdma.num_instances = 2;
1451 1452
		if (adev->asic_type != CHIP_VEGA20 &&
				adev->asic_type != CHIP_VEGA12)
1453
			adev->sdma.has_page_queue = true;
1454
	}
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	sdma_v4_0_set_ring_funcs(adev);
	sdma_v4_0_set_buffer_funcs(adev);
	sdma_v4_0_set_vm_pte_funcs(adev);
	sdma_v4_0_set_irq_funcs(adev);

	return 0;
}


static int sdma_v4_0_sw_init(void *handle)
{
	struct amdgpu_ring *ring;
	int r, i;
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;

	/* SDMA trap event */
1472
	r = amdgpu_irq_add_id(adev, SOC15_IH_CLIENTID_SDMA0, SDMA0_4_0__SRCID__SDMA_TRAP,
1473 1474 1475 1476 1477
			      &adev->sdma.trap_irq);
	if (r)
		return r;

	/* SDMA trap event */
1478
	r = amdgpu_irq_add_id(adev, SOC15_IH_CLIENTID_SDMA1, SDMA1_4_0__SRCID__SDMA_TRAP,
1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496
			      &adev->sdma.trap_irq);
	if (r)
		return r;

	r = sdma_v4_0_init_microcode(adev);
	if (r) {
		DRM_ERROR("Failed to load sdma firmware!\n");
		return r;
	}

	for (i = 0; i < adev->sdma.num_instances; i++) {
		ring = &adev->sdma.instance[i].ring;
		ring->ring_obj = NULL;
		ring->use_doorbell = true;

		DRM_INFO("use_doorbell being set to: [%s]\n",
				ring->use_doorbell?"true":"false");

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		if (adev->asic_type == CHIP_VEGA10)
			ring->doorbell_index = (i == 0) ?
				(AMDGPU_VEGA10_DOORBELL64_sDMA_ENGINE0 << 1) //get DWORD offset
				: (AMDGPU_VEGA10_DOORBELL64_sDMA_ENGINE1 << 1); // get DWORD offset
		else
			ring->doorbell_index = (i == 0) ?
				(AMDGPU_DOORBELL64_sDMA_ENGINE0 << 1) //get DWORD offset
				: (AMDGPU_DOORBELL64_sDMA_ENGINE1 << 1); // get DWORD offset

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		sprintf(ring->name, "sdma%d", i);
		r = amdgpu_ring_init(adev, ring, 1024,
				     &adev->sdma.trap_irq,
				     (i == 0) ?
				     AMDGPU_SDMA_IRQ_TRAP0 :
				     AMDGPU_SDMA_IRQ_TRAP1);
		if (r)
			return r;
1515

1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529
		if (adev->sdma.has_page_queue) {
			ring = &adev->sdma.instance[i].page;
			ring->ring_obj = NULL;
			ring->use_doorbell = false;

			sprintf(ring->name, "page%d", i);
			r = amdgpu_ring_init(adev, ring, 1024,
					     &adev->sdma.trap_irq,
					     (i == 0) ?
					     AMDGPU_SDMA_IRQ_TRAP0 :
					     AMDGPU_SDMA_IRQ_TRAP1);
			if (r)
				return r;
		}
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	}

	return r;
}

static int sdma_v4_0_sw_fini(void *handle)
{
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;
	int i;

1540
	for (i = 0; i < adev->sdma.num_instances; i++) {
1541
		amdgpu_ring_fini(&adev->sdma.instance[i].ring);
1542 1543
		if (adev->sdma.has_page_queue)
			amdgpu_ring_fini(&adev->sdma.instance[i].page);
1544
	}
1545

1546 1547 1548 1549 1550
	for (i = 0; i < adev->sdma.num_instances; i++) {
		release_firmware(adev->sdma.instance[i].fw);
		adev->sdma.instance[i].fw = NULL;
	}

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	return 0;
}

static int sdma_v4_0_hw_init(void *handle)
{
	int r;
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;

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	if (adev->asic_type == CHIP_RAVEN && adev->powerplay.pp_funcs &&
			adev->powerplay.pp_funcs->set_powergating_by_smu)
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		amdgpu_dpm_set_powergating_by_smu(adev, AMD_IP_BLOCK_TYPE_SDMA, false);

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	sdma_v4_0_init_golden_registers(adev);

	r = sdma_v4_0_start(adev);

	return r;
}

static int sdma_v4_0_hw_fini(void *handle)
{
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;

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	if (amdgpu_sriov_vf(adev))
		return 0;

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	sdma_v4_0_ctx_switch_enable(adev, false);
	sdma_v4_0_enable(adev, false);

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	if (adev->asic_type == CHIP_RAVEN && adev->powerplay.pp_funcs
			&& adev->powerplay.pp_funcs->set_powergating_by_smu)
1582 1583
		amdgpu_dpm_set_powergating_by_smu(adev, AMD_IP_BLOCK_TYPE_SDMA, true);

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	return 0;
}

static int sdma_v4_0_suspend(void *handle)
{
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;

	return sdma_v4_0_hw_fini(adev);
}

static int sdma_v4_0_resume(void *handle)
{
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;

	return sdma_v4_0_hw_init(adev);
}

static bool sdma_v4_0_is_idle(void *handle)
{
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;
	u32 i;
1605

1606
	for (i = 0; i < adev->sdma.num_instances; i++) {
1607
		u32 tmp = RREG32_SDMA(i, mmSDMA0_STATUS_REG);
1608

1609
		if (!(tmp & SDMA0_STATUS_REG__IDLE_MASK))
1610
			return false;
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	}

	return true;
}

static int sdma_v4_0_wait_for_idle(void *handle)
{
	unsigned i;
1619
	u32 sdma0, sdma1;
1620
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;
1621

1622
	for (i = 0; i < adev->usec_timeout; i++) {
1623 1624
		sdma0 = RREG32_SDMA(0, mmSDMA0_STATUS_REG);
		sdma1 = RREG32_SDMA(1, mmSDMA0_STATUS_REG);
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		if (sdma0 & sdma1 & SDMA0_STATUS_REG__IDLE_MASK)
			return 0;
		udelay(1);
	}
	return -ETIMEDOUT;
}

static int sdma_v4_0_soft_reset(void *handle)
{
	/* todo */

	return 0;
}

static int sdma_v4_0_set_trap_irq_state(struct amdgpu_device *adev,
					struct amdgpu_irq_src *source,
					unsigned type,
					enum amdgpu_interrupt_state state)
{
1645
	unsigned int instance = (type == AMDGPU_SDMA_IRQ_TRAP0) ? 0 : 1;
1646 1647
	u32 sdma_cntl;

1648
	sdma_cntl = RREG32_SDMA(instance, mmSDMA0_CNTL);
1649 1650
	sdma_cntl = REG_SET_FIELD(sdma_cntl, SDMA0_CNTL, TRAP_ENABLE,
		       state == AMDGPU_IRQ_STATE_ENABLE ? 1 : 0);
1651
	WREG32_SDMA(instance, mmSDMA0_CNTL, sdma_cntl);
1652 1653 1654 1655 1656 1657 1658 1659

	return 0;
}

static int sdma_v4_0_process_trap_irq(struct amdgpu_device *adev,
				      struct amdgpu_irq_src *source,
				      struct amdgpu_iv_entry *entry)
{
1660 1661
	uint32_t instance;

1662 1663
	DRM_DEBUG("IH: SDMA trap\n");
	switch (entry->client_id) {
1664
	case SOC15_IH_CLIENTID_SDMA0:
1665
		instance = 0;
1666
		break;
1667
	case SOC15_IH_CLIENTID_SDMA1:
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		instance = 1;
		break;
	default:
		return 0;
	}

	switch (entry->ring_id) {
	case 0:
		amdgpu_fence_process(&adev->sdma.instance[instance].ring);
		break;
	case 1:
		/* XXX compute */
		break;
	case 2:
		/* XXX compute */
		break;
	case 3:
		amdgpu_fence_process(&adev->sdma.instance[instance].page);
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		break;
	}
	return 0;
}

static int sdma_v4_0_process_illegal_inst_irq(struct amdgpu_device *adev,
					      struct amdgpu_irq_src *source,
					      struct amdgpu_iv_entry *entry)
{
1695 1696
	int instance;

1697
	DRM_ERROR("Illegal instruction in SDMA command stream\n");
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	switch (entry->client_id) {
	case SOC15_IH_CLIENTID_SDMA0:
		instance = 0;
		break;
	case SOC15_IH_CLIENTID_SDMA1:
		instance = 1;
		break;
	default:
		return 0;
	}

	switch (entry->ring_id) {
	case 0:
		drm_sched_fault(&adev->sdma.instance[instance].ring.sched);
		break;
	}
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	return 0;
}

static void sdma_v4_0_update_medium_grain_clock_gating(
		struct amdgpu_device *adev,
		bool enable)
{
	uint32_t data, def;

	if (enable && (adev->cg_flags & AMD_CG_SUPPORT_SDMA_MGCG)) {
		/* enable sdma0 clock gating */
		def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CLK_CTRL));
		data &= ~(SDMA0_CLK_CTRL__SOFT_OVERRIDE7_MASK |
			  SDMA0_CLK_CTRL__SOFT_OVERRIDE6_MASK |
			  SDMA0_CLK_CTRL__SOFT_OVERRIDE5_MASK |
			  SDMA0_CLK_CTRL__SOFT_OVERRIDE4_MASK |
			  SDMA0_CLK_CTRL__SOFT_OVERRIDE3_MASK |
			  SDMA0_CLK_CTRL__SOFT_OVERRIDE2_MASK |
			  SDMA0_CLK_CTRL__SOFT_OVERRIDE1_MASK |
			  SDMA0_CLK_CTRL__SOFT_OVERRIDE0_MASK);
		if (def != data)
			WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CLK_CTRL), data);

1738
		if (adev->sdma.num_instances > 1) {
1739 1740 1741 1742 1743 1744 1745 1746 1747
			def = data = RREG32(SOC15_REG_OFFSET(SDMA1, 0, mmSDMA1_CLK_CTRL));
			data &= ~(SDMA1_CLK_CTRL__SOFT_OVERRIDE7_MASK |
				  SDMA1_CLK_CTRL__SOFT_OVERRIDE6_MASK |
				  SDMA1_CLK_CTRL__SOFT_OVERRIDE5_MASK |
				  SDMA1_CLK_CTRL__SOFT_OVERRIDE4_MASK |
				  SDMA1_CLK_CTRL__SOFT_OVERRIDE3_MASK |
				  SDMA1_CLK_CTRL__SOFT_OVERRIDE2_MASK |
				  SDMA1_CLK_CTRL__SOFT_OVERRIDE1_MASK |
				  SDMA1_CLK_CTRL__SOFT_OVERRIDE0_MASK);
1748
			if (def != data)
1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765
				WREG32(SOC15_REG_OFFSET(SDMA1, 0, mmSDMA1_CLK_CTRL), data);
		}
	} else {
		/* disable sdma0 clock gating */
		def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CLK_CTRL));
		data |= (SDMA0_CLK_CTRL__SOFT_OVERRIDE7_MASK |
			 SDMA0_CLK_CTRL__SOFT_OVERRIDE6_MASK |
			 SDMA0_CLK_CTRL__SOFT_OVERRIDE5_MASK |
			 SDMA0_CLK_CTRL__SOFT_OVERRIDE4_MASK |
			 SDMA0_CLK_CTRL__SOFT_OVERRIDE3_MASK |
			 SDMA0_CLK_CTRL__SOFT_OVERRIDE2_MASK |
			 SDMA0_CLK_CTRL__SOFT_OVERRIDE1_MASK |
			 SDMA0_CLK_CTRL__SOFT_OVERRIDE0_MASK);

		if (def != data)
			WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CLK_CTRL), data);

1766
		if (adev->sdma.num_instances > 1) {
1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796
			def = data = RREG32(SOC15_REG_OFFSET(SDMA1, 0, mmSDMA1_CLK_CTRL));
			data |= (SDMA1_CLK_CTRL__SOFT_OVERRIDE7_MASK |
				 SDMA1_CLK_CTRL__SOFT_OVERRIDE6_MASK |
				 SDMA1_CLK_CTRL__SOFT_OVERRIDE5_MASK |
				 SDMA1_CLK_CTRL__SOFT_OVERRIDE4_MASK |
				 SDMA1_CLK_CTRL__SOFT_OVERRIDE3_MASK |
				 SDMA1_CLK_CTRL__SOFT_OVERRIDE2_MASK |
				 SDMA1_CLK_CTRL__SOFT_OVERRIDE1_MASK |
				 SDMA1_CLK_CTRL__SOFT_OVERRIDE0_MASK);
			if (def != data)
				WREG32(SOC15_REG_OFFSET(SDMA1, 0, mmSDMA1_CLK_CTRL), data);
		}
	}
}


static void sdma_v4_0_update_medium_grain_light_sleep(
		struct amdgpu_device *adev,
		bool enable)
{
	uint32_t data, def;

	if (enable && (adev->cg_flags & AMD_CG_SUPPORT_SDMA_LS)) {
		/* 1-not override: enable sdma0 mem light sleep */
		def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL));
		data |= SDMA0_POWER_CNTL__MEM_POWER_OVERRIDE_MASK;
		if (def != data)
			WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL), data);

		/* 1-not override: enable sdma1 mem light sleep */
1797
		if (adev->sdma.num_instances > 1) {
1798 1799 1800 1801
			def = data = RREG32(SOC15_REG_OFFSET(SDMA1, 0, mmSDMA1_POWER_CNTL));
			data |= SDMA1_POWER_CNTL__MEM_POWER_OVERRIDE_MASK;
			if (def != data)
				WREG32(SOC15_REG_OFFSET(SDMA1, 0, mmSDMA1_POWER_CNTL), data);
1802 1803 1804 1805 1806 1807
		}
	} else {
		/* 0-override:disable sdma0 mem light sleep */
		def = data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL));
		data &= ~SDMA0_POWER_CNTL__MEM_POWER_OVERRIDE_MASK;
		if (def != data)
1808
			WREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL), data);
1809 1810

		/* 0-override:disable sdma1 mem light sleep */
1811
		if (adev->sdma.num_instances > 1) {
1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824
			def = data = RREG32(SOC15_REG_OFFSET(SDMA1, 0, mmSDMA1_POWER_CNTL));
			data &= ~SDMA1_POWER_CNTL__MEM_POWER_OVERRIDE_MASK;
			if (def != data)
				WREG32(SOC15_REG_OFFSET(SDMA1, 0, mmSDMA1_POWER_CNTL), data);
		}
	}
}

static int sdma_v4_0_set_clockgating_state(void *handle,
					  enum amd_clockgating_state state)
{
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;

1825 1826 1827
	if (amdgpu_sriov_vf(adev))
		return 0;

1828 1829
	switch (adev->asic_type) {
	case CHIP_VEGA10:
1830
	case CHIP_VEGA12:
1831
	case CHIP_VEGA20:
1832
	case CHIP_RAVEN:
1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846
		sdma_v4_0_update_medium_grain_clock_gating(adev,
				state == AMD_CG_STATE_GATE ? true : false);
		sdma_v4_0_update_medium_grain_light_sleep(adev,
				state == AMD_CG_STATE_GATE ? true : false);
		break;
	default:
		break;
	}
	return 0;
}

static int sdma_v4_0_set_powergating_state(void *handle,
					  enum amd_powergating_state state)
{
1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;

	switch (adev->asic_type) {
	case CHIP_RAVEN:
		sdma_v4_1_update_power_gating(adev,
				state == AMD_PG_STATE_GATE ? true : false);
		break;
	default:
		break;
	}

1858 1859 1860
	return 0;
}

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static void sdma_v4_0_get_clockgating_state(void *handle, u32 *flags)
{
	struct amdgpu_device *adev = (struct amdgpu_device *)handle;
	int data;

	if (amdgpu_sriov_vf(adev))
		*flags = 0;

	/* AMD_CG_SUPPORT_SDMA_MGCG */
	data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_CLK_CTRL));
	if (!(data & SDMA0_CLK_CTRL__SOFT_OVERRIDE7_MASK))
		*flags |= AMD_CG_SUPPORT_SDMA_MGCG;

	/* AMD_CG_SUPPORT_SDMA_LS */
	data = RREG32(SOC15_REG_OFFSET(SDMA0, 0, mmSDMA0_POWER_CNTL));
	if (data & SDMA0_POWER_CNTL__MEM_POWER_OVERRIDE_MASK)
		*flags |= AMD_CG_SUPPORT_SDMA_LS;
}

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const struct amd_ip_funcs sdma_v4_0_ip_funcs = {
	.name = "sdma_v4_0",
	.early_init = sdma_v4_0_early_init,
	.late_init = NULL,
	.sw_init = sdma_v4_0_sw_init,
	.sw_fini = sdma_v4_0_sw_fini,
	.hw_init = sdma_v4_0_hw_init,
	.hw_fini = sdma_v4_0_hw_fini,
	.suspend = sdma_v4_0_suspend,
	.resume = sdma_v4_0_resume,
	.is_idle = sdma_v4_0_is_idle,
	.wait_for_idle = sdma_v4_0_wait_for_idle,
	.soft_reset = sdma_v4_0_soft_reset,
	.set_clockgating_state = sdma_v4_0_set_clockgating_state,
	.set_powergating_state = sdma_v4_0_set_powergating_state,
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	.get_clockgating_state = sdma_v4_0_get_clockgating_state,
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};

static const struct amdgpu_ring_funcs sdma_v4_0_ring_funcs = {
	.type = AMDGPU_RING_TYPE_SDMA,
	.align_mask = 0xf,
	.nop = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP),
	.support_64bit_ptrs = true,
1903
	.vmhub = AMDGPU_MMHUB,
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	.get_rptr = sdma_v4_0_ring_get_rptr,
	.get_wptr = sdma_v4_0_ring_get_wptr,
	.set_wptr = sdma_v4_0_ring_set_wptr,
	.emit_frame_size =
		6 + /* sdma_v4_0_ring_emit_hdp_flush */
1909
		3 + /* hdp invalidate */
1910
		6 + /* sdma_v4_0_ring_emit_pipeline_sync */
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		/* sdma_v4_0_ring_emit_vm_flush */
		SOC15_FLUSH_GPU_TLB_NUM_WREG * 3 +
		SOC15_FLUSH_GPU_TLB_NUM_REG_WAIT * 6 +
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		10 + 10 + 10, /* sdma_v4_0_ring_emit_fence x3 for user fence, vm fence */
	.emit_ib_size = 7 + 6, /* sdma_v4_0_ring_emit_ib */
	.emit_ib = sdma_v4_0_ring_emit_ib,
	.emit_fence = sdma_v4_0_ring_emit_fence,
	.emit_pipeline_sync = sdma_v4_0_ring_emit_pipeline_sync,
	.emit_vm_flush = sdma_v4_0_ring_emit_vm_flush,
	.emit_hdp_flush = sdma_v4_0_ring_emit_hdp_flush,
	.test_ring = sdma_v4_0_ring_test_ring,
	.test_ib = sdma_v4_0_ring_test_ib,
	.insert_nop = sdma_v4_0_ring_insert_nop,
	.pad_ib = sdma_v4_0_ring_pad_ib,
1925
	.emit_wreg = sdma_v4_0_ring_emit_wreg,
1926
	.emit_reg_wait = sdma_v4_0_ring_emit_reg_wait,
1927
	.emit_reg_write_reg_wait = amdgpu_ring_emit_reg_write_reg_wait_helper,
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};

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static const struct amdgpu_ring_funcs sdma_v4_0_page_ring_funcs = {
	.type = AMDGPU_RING_TYPE_SDMA,
	.align_mask = 0xf,
	.nop = SDMA_PKT_NOP_HEADER_OP(SDMA_OP_NOP),
	.support_64bit_ptrs = true,
	.vmhub = AMDGPU_MMHUB,
	.get_rptr = sdma_v4_0_ring_get_rptr,
	.get_wptr = sdma_v4_0_page_ring_get_wptr,
	.set_wptr = sdma_v4_0_page_ring_set_wptr,
	.emit_frame_size =
		6 + /* sdma_v4_0_ring_emit_hdp_flush */
		3 + /* hdp invalidate */
		6 + /* sdma_v4_0_ring_emit_pipeline_sync */
		/* sdma_v4_0_ring_emit_vm_flush */
		SOC15_FLUSH_GPU_TLB_NUM_WREG * 3 +
		SOC15_FLUSH_GPU_TLB_NUM_REG_WAIT * 6 +
		10 + 10 + 10, /* sdma_v4_0_ring_emit_fence x3 for user fence, vm fence */
	.emit_ib_size = 7 + 6, /* sdma_v4_0_ring_emit_ib */
	.emit_ib = sdma_v4_0_ring_emit_ib,
	.emit_fence = sdma_v4_0_ring_emit_fence,
	.emit_pipeline_sync = sdma_v4_0_ring_emit_pipeline_sync,
	.emit_vm_flush = sdma_v4_0_ring_emit_vm_flush,
	.emit_hdp_flush = sdma_v4_0_ring_emit_hdp_flush,
	.test_ring = sdma_v4_0_ring_test_ring,
	.test_ib = sdma_v4_0_ring_test_ib,
	.insert_nop = sdma_v4_0_ring_insert_nop,
	.pad_ib = sdma_v4_0_ring_pad_ib,
	.emit_wreg = sdma_v4_0_ring_emit_wreg,
	.emit_reg_wait = sdma_v4_0_ring_emit_reg_wait,
	.emit_reg_write_reg_wait = amdgpu_ring_emit_reg_write_reg_wait_helper,
};

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static void sdma_v4_0_set_ring_funcs(struct amdgpu_device *adev)
{
	int i;

1966
	for (i = 0; i < adev->sdma.num_instances; i++) {
1967
		adev->sdma.instance[i].ring.funcs = &sdma_v4_0_ring_funcs;
1968
		adev->sdma.instance[i].ring.me = i;
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		if (adev->sdma.has_page_queue) {
			adev->sdma.instance[i].page.funcs = &sdma_v4_0_page_ring_funcs;
			adev->sdma.instance[i].page.me = i;
		}
1973
	}
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}

static const struct amdgpu_irq_src_funcs sdma_v4_0_trap_irq_funcs = {
	.set = sdma_v4_0_set_trap_irq_state,
	.process = sdma_v4_0_process_trap_irq,
};

static const struct amdgpu_irq_src_funcs sdma_v4_0_illegal_inst_irq_funcs = {
	.process = sdma_v4_0_process_illegal_inst_irq,
};

static void sdma_v4_0_set_irq_funcs(struct amdgpu_device *adev)
{
	adev->sdma.trap_irq.num_types = AMDGPU_SDMA_IRQ_LAST;
	adev->sdma.trap_irq.funcs = &sdma_v4_0_trap_irq_funcs;
	adev->sdma.illegal_inst_irq.funcs = &sdma_v4_0_illegal_inst_irq_funcs;
}

/**
 * sdma_v4_0_emit_copy_buffer - copy buffer using the sDMA engine
 *
 * @ring: amdgpu_ring structure holding ring information
 * @src_offset: src GPU address
 * @dst_offset: dst GPU address
 * @byte_count: number of bytes to xfer
 *
2000
 * Copy GPU buffers using the DMA engine (VEGA10/12).
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 * Used by the amdgpu ttm implementation to move pages if
 * registered as the asic copy callback.
 */
static void sdma_v4_0_emit_copy_buffer(struct amdgpu_ib *ib,
				       uint64_t src_offset,
				       uint64_t dst_offset,
				       uint32_t byte_count)
{
	ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_COPY) |
		SDMA_PKT_HEADER_SUB_OP(SDMA_SUBOP_COPY_LINEAR);
	ib->ptr[ib->length_dw++] = byte_count - 1;
	ib->ptr[ib->length_dw++] = 0; /* src/dst endian swap */
	ib->ptr[ib->length_dw++] = lower_32_bits(src_offset);
	ib->ptr[ib->length_dw++] = upper_32_bits(src_offset);
	ib->ptr[ib->length_dw++] = lower_32_bits(dst_offset);
	ib->ptr[ib->length_dw++] = upper_32_bits(dst_offset);
}

/**
 * sdma_v4_0_emit_fill_buffer - fill buffer using the sDMA engine
 *
 * @ring: amdgpu_ring structure holding ring information
 * @src_data: value to write to buffer
 * @dst_offset: dst GPU address
 * @byte_count: number of bytes to xfer
 *
2027
 * Fill GPU buffers using the DMA engine (VEGA10/12).
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 */
static void sdma_v4_0_emit_fill_buffer(struct amdgpu_ib *ib,
				       uint32_t src_data,
				       uint64_t dst_offset,
				       uint32_t byte_count)
{
	ib->ptr[ib->length_dw++] = SDMA_PKT_HEADER_OP(SDMA_OP_CONST_FILL);
	ib->ptr[ib->length_dw++] = lower_32_bits(dst_offset);
	ib->ptr[ib->length_dw++] = upper_32_bits(dst_offset);
	ib->ptr[ib->length_dw++] = src_data;
	ib->ptr[ib->length_dw++] = byte_count - 1;
}

static const struct amdgpu_buffer_funcs sdma_v4_0_buffer_funcs = {
	.copy_max_bytes = 0x400000,
	.copy_num_dw = 7,
	.emit_copy_buffer = sdma_v4_0_emit_copy_buffer,

	.fill_max_bytes = 0x400000,
	.fill_num_dw = 5,
	.emit_fill_buffer = sdma_v4_0_emit_fill_buffer,
};

static void sdma_v4_0_set_buffer_funcs(struct amdgpu_device *adev)
{
2053 2054
	adev->mman.buffer_funcs = &sdma_v4_0_buffer_funcs;
	adev->mman.buffer_funcs_ring = &adev->sdma.instance[0].ring;
2055 2056 2057
}

static const struct amdgpu_vm_pte_funcs sdma_v4_0_vm_pte_funcs = {
2058
	.copy_pte_num_dw = 7,
2059
	.copy_pte = sdma_v4_0_vm_copy_pte,
2060

2061 2062 2063 2064 2065 2066
	.write_pte = sdma_v4_0_vm_write_pte,
	.set_pte_pde = sdma_v4_0_vm_set_pte_pde,
};

static void sdma_v4_0_set_vm_pte_funcs(struct amdgpu_device *adev)
{
2067
	struct drm_gpu_scheduler *sched;
2068 2069
	unsigned i;

2070 2071
	adev->vm_manager.vm_pte_funcs = &sdma_v4_0_vm_pte_funcs;
	for (i = 0; i < adev->sdma.num_instances; i++) {
2072 2073 2074 2075
		if (adev->sdma.has_page_queue)
			sched = &adev->sdma.instance[i].page.sched;
		else
			sched = &adev->sdma.instance[i].ring.sched;
2076 2077
		adev->vm_manager.vm_pte_rqs[i] =
			&sched->sched_rq[DRM_SCHED_PRIORITY_KERNEL];
2078
	}
2079
	adev->vm_manager.vm_pte_num_rqs = adev->sdma.num_instances;
2080 2081
}

2082
const struct amdgpu_ip_block_version sdma_v4_0_ip_block = {
2083 2084 2085 2086 2087 2088
	.type = AMD_IP_BLOCK_TYPE_SDMA,
	.major = 4,
	.minor = 0,
	.rev = 0,
	.funcs = &sdma_v4_0_ip_funcs,
};