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// MIT License
//
// Copyright (c) 2017-2025 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
// 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.
#ifndef _GFX12_PRIMITIVES_H_
#define _GFX12_PRIMITIVES_H_
#include <stdint.h>
#include <cstdint>
// taken from gfx12_pm4defs.h
#define COPY_DATA_SEL_REG 0 ///< Mem-mapped register
#define COPY_DATA_SEL_SRC_SYS_PERF_COUNTER 4 ///< Privileged memory performance counter
#define COPY_DATA_SEL_COUNT_1DW 0 ///< Copy 1 word (32 bits)
namespace gfxip {
namespace gfx12 {
class gfx12_cntx_prim {
public:
static const uint32_t GFXIP_LEVEL = 12;
static const uint32_t NUMBER_OF_BLOCKS = LastCounterBlockId + 1;
static constexpr Register GRBM_GFX_INDEX_ADDR = REG_32B_ADDR(GC, 0, regGRBM_GFX_INDEX);
static constexpr Register COMPUTE_PERFCOUNT_ENABLE_ADDR =
REG_32B_ADDR(GC, 0, regCOMPUTE_PERFCOUNT_ENABLE);
static constexpr Register RLC_PERFMON_CLK_CNTL_ADDR =
REG_32B_ADDR(GC, 0, regRLC_PERFMON_CNTL); // REG_32B_ADDR(GC, 0, regRLC_PERFMON_CLK_CNTL);
static constexpr Register CP_PERFMON_CNTL_ADDR = REG_32B_ADDR(GC, 0, regCP_PERFMON_CNTL);
static constexpr Register COMPUTE_THREAD_TRACE_ENABLE_ADDR =
REG_32B_ADDR(GC, 0, regCOMPUTE_THREAD_TRACE_ENABLE);
static const uint32_t MC_PERFCOUNTER_RSLT_CNTL__ENABLE_ANY_MASK_PRM = 0x01000000L;
static const uint32_t MC_PERFCOUNTER_RSLT_CNTL__CLEAR_ALL_MASK_PRM = 0x02000000L;
static constexpr Register SPI_SQG_EVENT_CTL_ADDR = REG_32B_ADDR(GC, 0, regSPI_SQG_EVENT_CTL);
static constexpr Register SQ_PERFCOUNTER_CTRL_ADDR = REG_32B_ADDR(GC, 0, regSQ_PERFCOUNTER_CTRL);
static constexpr Register SQ_PERFCOUNTER_CTRL2_ADDR =
REG_32B_ADDR(GC, 0, regSQ_PERFCOUNTER_CTRL2);
static constexpr Register SQ_PERFCOUNTER_MASK_ADDR = Register(0xD9E1);
static constexpr Register SQ_THREAD_TRACE_MASK_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_MASK);
static constexpr Register SQ_THREAD_TRACE_PERF_MASK_ADDR{};
static constexpr Register SQ_THREAD_TRACE_TOKEN_MASK_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_TOKEN_MASK);
static constexpr Register SQ_THREAD_TRACE_TOKEN_MASK2_ADDR{};
static constexpr Register SQ_THREAD_TRACE_MODE_ADDR{};
static constexpr Register SQ_THREAD_TRACE_BUF0_BASE_LO_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_BUF0_BASE_LO);
static constexpr Register SQ_THREAD_TRACE_BUF0_BASE_HI_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_BUF0_BASE_HI);
static constexpr Register SQ_THREAD_TRACE_BUF0_SIZE_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_BUF0_SIZE);
static constexpr Register SQ_THREAD_TRACE_BUF1_BASE_LO_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_BUF1_BASE_LO);
static constexpr Register SQ_THREAD_TRACE_BUF1_BASE_HI_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_BUF1_BASE_HI);
static constexpr Register SQ_THREAD_TRACE_BUF1_SIZE_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_BUF1_SIZE);
static constexpr Register SQ_THREAD_TRACE_BASE_ADDR{};
static constexpr Register SQ_THREAD_TRACE_BASE2_ADDR{};
static constexpr Register SQ_THREAD_TRACE_SIZE_ADDR{};
static constexpr Register SQ_THREAD_TRACE_CTRL_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_CTRL);
static constexpr Register SQ_THREAD_TRACE_HIWATER_ADDR{};
static const uint32_t SQ_THREAD_TRACE_HIWATER_VAL = 0x6;
static constexpr Register SQ_THREAD_TRACE_STATUS_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_STATUS);
static constexpr Register SQ_THREAD_TRACE_STATUS2_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_STATUS2);
static constexpr Register SQ_THREAD_TRACE_CNTR_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_DROPPED_CNTR);
static constexpr Register SQ_THREAD_TRACE_WPTR_ADDR =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_WPTR);
static constexpr Register SQ_THREAD_TRACE_STATUS_OFFSET = []() {
Register reg = REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_STATUS);
reg.offset -= UCONFIG_SPACE_START;
return reg;
}();
static const uint32_t TT_BUFF_ALIGN_SHIFT = 12;
static const uint32_t SDMA_COUNTER_BLOCK_NUM_INSTANCES = SdmaCounterBlockMaxInstances;
static const uint32_t UMC_COUNTER_BLOCK_NUM_INSTANCES = UmcCounterBlockMaxInstances;
static constexpr Register RLC_SPM_PERFMON_CNTL__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_PERFMON_CNTL);
static constexpr Register RLC_SPM_MC_CNTL__ADDR = REG_32B_ADDR(GC, 0, regRLC_SPM_MC_CNTL);
static constexpr Register RLC_SPM_PERFMON_RING_BASE_LO__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_PERFMON_RING_BASE_LO);
static constexpr Register RLC_SPM_PERFMON_RING_BASE_HI__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_PERFMON_RING_BASE_HI);
static constexpr Register RLC_SPM_PERFMON_RING_SIZE__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_PERFMON_RING_SIZE);
static constexpr Register RLC_SPM_PERFMON_SEGMENT_SIZE__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_PERFMON_SEGMENT_SIZE);
static constexpr Register RLC_SPM_PERFMON_SEGMENT_SIZE_CORE1__ADDR{};
static constexpr Register RLC_SPM_GLOBAL_MUXSEL_ADDR__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_GLOBAL_MUXSEL_ADDR);
static constexpr Register RLC_SPM_GLOBAL_MUXSEL_DATA__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_GLOBAL_MUXSEL_DATA);
static constexpr Register RLC_SPM_SE_MUXSEL_ADDR__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_SE_MUXSEL_ADDR);
static constexpr Register RLC_SPM_SE_MUXSEL_DATA__ADDR =
REG_32B_ADDR(GC, 0, regRLC_SPM_SE_MUXSEL_DATA);
static constexpr Register RLC_SPM_PERFMON_SAMPLE_DELAY_MAX__ADDR = REG_32B_NULL;
static const uint32_t RLC_SPM_COUNTERS_PER_LINE = 16;
static const uint32_t RLC_SPM_TIMESTAMP_SIZE16 = 4;
static constexpr Register SQ_THREAD_TRACE_USERDATA_0 =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_USERDATA_0);
static constexpr Register SQ_THREAD_TRACE_USERDATA_1 =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_USERDATA_1);
static constexpr Register SQ_THREAD_TRACE_USERDATA_2 =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_USERDATA_2);
static constexpr Register SQ_THREAD_TRACE_USERDATA_3 =
REG_32B_ADDR(GC, 0, regSQ_THREAD_TRACE_USERDATA_3);
static const uint32_t NUM_WGP1_PER_SA = 0;
static const uint32_t NUM_ROWS_PER_WGP = 2;
static Register sqtt_perfcounter_addr(uint32_t index) { return REG_32B_NULL; }
union mux_info_t {
uint16_t data;
struct {
uint16_t counter : 6;
uint16_t block : 5;
uint16_t instance : 5;
} gfx;
};
static const uint32_t SQ_BLOCK_ID = __BLOCK_ID_HSA(SQ);
static const uint32_t SQ_BLOCK_SPM_ID = SPM_SE_BLOCK_NAME_SQG;
static const uint32_t COPY_DATA_SEL_REG_PRM = COPY_DATA_SEL_REG;
static const uint32_t COPY_DATA_SEL_SRC_SYS_PERF_COUNTER_PRM = COPY_DATA_SEL_SRC_SYS_PERF_COUNTER;
static const uint32_t COPY_DATA_SEL_COUNT_1DW_PRM = COPY_DATA_SEL_COUNT_1DW;
static uint32_t Low32(const uint64_t& v) { return (uint32_t)v; }
static uint32_t High32(const uint64_t& v) { return (uint32_t)(v >> 32); }
// SPM delay functions for global instance
static uint32_t get_spm_global_delay(const counter_des_t& counter_des,
const uint32_t& instance_index) {
const auto* block_info = counter_des.block_info;
return block_info->delay_info.val[instance_index];
}
// SPM delay functions for se instance
static uint32_t get_spm_se_delay(const counter_des_t& counter_des, const uint32_t& se_index,
const uint32_t& instance_index) {
const auto* block_info = counter_des.block_info;
int delay_index = se_index * block_info->instance_count + instance_index;
return block_info->delay_info.val[delay_index];
}
// GRBM broadcasting mode
static uint32_t grbm_broadcast_value() {
uint32_t grbm_gfx_index = SET_REG_FIELD_BITS(GRBM_GFX_INDEX, INSTANCE_BROADCAST_WRITES, 1) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SE_BROADCAST_WRITES, 1) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SA_BROADCAST_WRITES, 1);
return grbm_gfx_index;
}
// GRBM SE indexing
static uint32_t grbm_inst_index_value(const uint32_t& instance_index) {
uint32_t grbm_gfx_index = SET_REG_FIELD_BITS(GRBM_GFX_INDEX, INSTANCE_INDEX, instance_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SE_BROADCAST_WRITES, 1) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SA_BROADCAST_WRITES, 1);
return grbm_gfx_index;
}
// GRBM SE indexing
static uint32_t grbm_se_index_value(const uint32_t& se_index) {
uint32_t grbm_gfx_index = SET_REG_FIELD_BITS(GRBM_GFX_INDEX, INSTANCE_BROADCAST_WRITES, 1) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SE_INDEX, se_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SA_BROADCAST_WRITES, 1);
return grbm_gfx_index;
}
// GRBM SE/BlockInstance indexing
static uint32_t grbm_inst_se_index_value(const uint32_t& instance_index,
const uint32_t& se_index) {
uint32_t grbm_gfx_index = SET_REG_FIELD_BITS(GRBM_GFX_INDEX, INSTANCE_INDEX, instance_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SE_INDEX, se_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SA_BROADCAST_WRITES, 1);
return grbm_gfx_index;
}
// GRBM SE/SH indexing
static uint32_t grbm_se_sh_index_value(const uint32_t& se_index, const uint32_t& sa_index) {
uint32_t grbm_gfx_index = SET_REG_FIELD_BITS(GRBM_GFX_INDEX, INSTANCE_BROADCAST_WRITES, 1) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SE_INDEX, se_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SA_INDEX, sa_index);
return grbm_gfx_index;
}
// GRBM SH/SE/BlockInstance indexing
static uint32_t grbm_inst_se_sh_index_value(const uint32_t& instance_index,
const uint32_t& se_index, const uint32_t& sa_index) {
uint32_t grbm_gfx_index = SET_REG_FIELD_BITS(GRBM_GFX_INDEX, INSTANCE_INDEX, instance_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SE_INDEX, se_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SA_INDEX, sa_index);
return grbm_gfx_index;
}
// GRBM SE/SH/WGP indexing
static uint32_t grbm_se_sh_wgp_index_value(const uint32_t& se_index,
const uint32_t& sa_index,
const uint32_t& wgp_index) {
// Hardcode wgp_side to 0 now because we don't have a product with wgp1 configuration
uint32_t wgp_side = 0;
uint32_t grbm_gfx_index = SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SE_INDEX, se_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SA_INDEX, sa_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, INSTANCE_INDEX, ((wgp_side<<6) | (wgp_index << 2)));
return grbm_gfx_index;
}
// GRBM SE/SH/WGP/BlockInstance indexing
static uint32_t grbm_inst_se_sh_wgp_index_value(const uint32_t& instance_index,
const uint32_t& se_index,
const uint32_t& sa_index,
const uint32_t& wgp_index) {
// Hardcode wgp_side to 0 now because we don't have a product with wgp1 configuration
uint32_t wgp_side = 0;
assert(instance_index < NUM_ROWS_PER_WGP);
uint32_t grbm_gfx_index =
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SE_INDEX, se_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, SA_INDEX, sa_index) |
SET_REG_FIELD_BITS(GRBM_GFX_INDEX, INSTANCE_INDEX, ((wgp_side<<6) | (wgp_index << 2) | instance_index));
return grbm_gfx_index;
}
// CP_PERFMON_CNTL value to reset counters
static uint32_t cp_perfmon_cntl_reset_value() {
uint32_t cp_perfmon_cntl{0};
return cp_perfmon_cntl;
}
// CP_PERFMON_CNTL value to start counters
static uint32_t cp_perfmon_cntl_start_value() {
uint32_t cp_perfmon_cntl = SET_REG_FIELD_BITS(CP_PERFMON_CNTL, PERFMON_STATE, 1);
return cp_perfmon_cntl;
}
// CP_PERFMON_CNTL value to stop/freeze counters
static uint32_t cp_perfmon_cntl_stop_value() {
uint32_t cp_perfmon_cntl = SET_REG_FIELD_BITS(CP_PERFMON_CNTL, PERFMON_STATE, 2) |
SET_REG_FIELD_BITS(CP_PERFMON_CNTL, PERFMON_SAMPLE_ENABLE, 1);
return cp_perfmon_cntl;
}
// CP_PERFMON_CNTL value to stop/freeze counters
static uint32_t cp_perfmon_cntl_read_value() {
uint32_t cp_perfmon_cntl = SET_REG_FIELD_BITS(CP_PERFMON_CNTL, PERFMON_STATE, 1) |
SET_REG_FIELD_BITS(CP_PERFMON_CNTL, PERFMON_SAMPLE_ENABLE, 1);
return cp_perfmon_cntl;
}
// Compute Perfcount Enable register value to enable counting
static uint32_t cp_perfcount_enable_value() {
uint32_t compute_perfcount_enable =
SET_REG_FIELD_BITS(COMPUTE_PERFCOUNT_ENABLE, PERFCOUNT_ENABLE, 1);
return compute_perfcount_enable;
}
// Compute Perfcount Disable register value to enable counting
static uint32_t cp_perfcount_disable_value() {
uint32_t compute_perfcount_enable =
SET_REG_FIELD_BITS(COMPUTE_PERFCOUNT_ENABLE, PERFCOUNT_ENABLE, 0);
return compute_perfcount_enable;
}
// SQ Block primitives
// SQ Counter Select Register value
static uint32_t sq_select_value(const counter_des_t& counter_des) {
uint32_t sq_perfcounter0_sel =
// SET_REG_FIELD_BITS(SQ_PERFCOUNTER0_SELECT, SQC_BANK_MASK, 0xF) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER0_SELECT, PERF_SEL, counter_des.id);
return sq_perfcounter0_sel;
}
static uint32_t sq_spm_select_value(const counter_des_t& counter_des) {
uint32_t sq_perfcounter0_sel =
// SET_REG_FIELD_BITS(SQ_PERFCOUNTER0_SELECT, SQC_BANK_MASK, 0xF) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER0_SELECT, PERF_SEL, counter_des.id) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER0_SELECT, SPM_MODE, 3); // PERFMON_SPM_MODE_32BIT_CLAMP
return sq_perfcounter0_sel;
}
// SQ Counter Mask Register value - not used in gfx12
static uint32_t sq_mask_value(const counter_des_t&) { return 0xFFFFFFFF; }
// SQ Counter Control Register value
static uint32_t sq_control_value(const counter_des_t& counter_des) {
const uint32_t block_id = counter_des.block_des.id;
uint32_t sq_perfcounter_ctrl = SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, PS_EN, 0x1) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, GS_EN, 0x1) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, HS_EN, 0x1) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, CS_EN, 0x1);
return sq_perfcounter_ctrl;
}
// SQ validate counter attributes
static void validate_counters(uint32_t counters_vec_attr) {
#if SQ_CONFLICT_CHECK == 1
const uint32_t mask = CounterBlockSqAttr | CounterBlockTcAttr;
const bool conflict = ((counters_vec_attr & mask) == mask);
if (conflict) abort();
#endif
}
// SQ Counter Control enable performance counter in graphics pipeline stages
static uint32_t sq_control_enable_value() {
uint32_t sq_perfcounter_ctrl = SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, PS_EN, 0x1) |
// SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, VS_EN, 0x1) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, GS_EN, 0x1) |
// SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, ES_EN, 0x1) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, HS_EN, 0x1) |
// SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, LS_EN, 0x1) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL, CS_EN, 0x1);
return sq_perfcounter_ctrl;
}
static uint32_t sq_control2_enable_value() {
uint32_t sq_perfcounter_ctrl2 = SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL2, FORCE_EN, true) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL2, VMID_EN, 0xFFFF);
return sq_perfcounter_ctrl2;
}
static uint32_t sq_control2_disable_value() {
uint32_t sq_perfcounter_ctrl2 = SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL2, FORCE_EN, false) |
SET_REG_FIELD_BITS(SQ_PERFCOUNTER_CTRL2, VMID_EN, 0xFFFF);
return sq_perfcounter_ctrl2;
}
// MC Block primitives
// MC Channel value
static uint32_t mc_config_value(const counter_des_t& counter_des) { return counter_des.index; }
// MC registers values
static uint32_t mc_select_value(const counter_des_t& counter_des) {
uint32_t perfcounter0_cfg =
SET_REG_FIELD_BITS(GCUTCL2_PERFCOUNTER0_CFG, PERF_SEL, counter_des.id) |
SET_REG_FIELD_BITS(GCUTCL2_PERFCOUNTER0_CFG, PERF_MODE, PERFMON_COUNTER_MODE_ACCUM) |
SET_REG_FIELD_BITS(GCUTCL2_PERFCOUNTER0_CFG, ENABLE, 1);
return perfcounter0_cfg;
}
static uint32_t mc_reset_value() { return MC_PERFCOUNTER_RSLT_CNTL__CLEAR_ALL_MASK_PRM; }
static uint32_t mc_start_value() { return MC_PERFCOUNTER_RSLT_CNTL__ENABLE_ANY_MASK_PRM; }
static uint32_t select_value(const counter_des_t& counter_des) {
uint32_t perfcounter0_select =
SET_REG_FIELD_BITS(CPC_PERFCOUNTER0_SELECT, PERF_SEL, counter_des.id);
return perfcounter0_select;
}
static uint32_t spm_select_value(const counter_des_t& counter_des) {
uint32_t tcp_perfcounter0_select =
SET_REG_FIELD_BITS(TCP_PERFCOUNTER0_SELECT, PERF_SEL, counter_des.id) |
SET_REG_FIELD_BITS(TCP_PERFCOUNTER0_SELECT, CNTR_MODE, 3); // PERFMON_SPM_MODE_32BIT_CLAMP
return tcp_perfcounter0_select;
}
static uint32_t spm_even_select_value(const counter_des_t& counter_des) {
uint32_t tcp_perfcounter0_select =
SET_REG_FIELD_BITS(TCP_PERFCOUNTER0_SELECT, PERF_SEL, counter_des.id) |
SET_REG_FIELD_BITS(TCP_PERFCOUNTER0_SELECT, CNTR_MODE, 3); // PERFMON_SPM_MODE_32BIT_CLAMP
return tcp_perfcounter0_select;
}
static uint32_t spm_odd_select_value(const counter_des_t& counter_des) {
uint32_t tcp_perfcounter0_select =
SET_REG_FIELD_BITS(TCP_PERFCOUNTER0_SELECT, PERF_SEL1, counter_des.id) |
SET_REG_FIELD_BITS(TCP_PERFCOUNTER0_SELECT, CNTR_MODE, 3); // PERFMON_SPM_MODE_32BIT_CLAMP
return tcp_perfcounter0_select;
}
static mux_info_t spm_mux_ram_value(const counter_des_t& counter_des) {
mux_info_t mxinfo{0};
mxinfo.gfx.counter = counter_des.index;
mxinfo.gfx.block = counter_des.block_info->spm_block_id;
mxinfo.gfx.instance = counter_des.block_des.index;
return mxinfo;
}
static mux_info_t spm_mux_ram_value(uint16_t counter, uint16_t block, uint16_t instance) {
mux_info_t mxinfo{0};
mxinfo.gfx.counter = counter;
mxinfo.gfx.block = block;
mxinfo.gfx.instance = instance;
return mxinfo;
}
static uint32_t spm_mux_ram_idx_incr(uint32_t idx) {
uint32_t incr_idx = ++idx;
if (!(incr_idx % RLC_SPM_COUNTERS_PER_LINE)) incr_idx += RLC_SPM_COUNTERS_PER_LINE;
return incr_idx;
}
// SDMA primitives
static uint32_t sdma_enable_value() { return 0; }
static uint32_t sdma_disable_clear_value() { return 0; }
static uint32_t sdma_select_value(const counter_des_t& counter_des) { return 0; }
static uint32_t sdma_stop_value(const counter_des_t& counter_des) { return 0; }
// SPM trace routines
static uint32_t rlc_spm_mc_cntl_value() {
uint32_t rlc_spm_mc_cntl{0};
rlc_spm_mc_cntl = SET_REG_FIELD_BITS(RLC_SPM_MC_CNTL, RLC_SPM_VMID, 15);
return rlc_spm_mc_cntl;
}
static uint32_t cp_perfmon_cntl_spm_start_value() {
uint32_t cp_perfmon_cntl{0};
cp_perfmon_cntl = SET_REG_FIELD_BITS(CP_PERFMON_CNTL, SPM_PERFMON_STATE, 1);
return cp_perfmon_cntl;
}
static uint32_t cp_perfmon_cntl_spm_stop_value() {
uint32_t cp_perfmon_cntl{0};
cp_perfmon_cntl = SET_REG_FIELD_BITS(CP_PERFMON_CNTL, SPM_PERFMON_STATE, 2);
return cp_perfmon_cntl;
}
static uint32_t rlc_spm_muxsel_data(const uint32_t& value, const counter_des_t& counter_des,
const uint32_t& block, const uint32_t& hi) {
return 0;
}
static uint32_t rlc_spm_perfmon_cntl_value(const uint32_t& sampling_rate) {
uint32_t rlc_spm_perfmon_cntl{0};
rlc_spm_perfmon_cntl =
SET_REG_FIELD_BITS(RLC_SPM_PERFMON_CNTL, PERFMON_SAMPLE_INTERVAL, sampling_rate);
return rlc_spm_perfmon_cntl;
}
static uint32_t rlc_spm_perfmon_segment_size_value(const uint32_t& global_count,
const uint32_t& se_count) {
const uint32_t global_nlines = global_count;
const uint32_t se_nlines = se_count;
const uint32_t segment_size = (global_nlines + (4 * se_nlines));
uint32_t rlc_spm_perfmon_segment_size{0};
rlc_spm_perfmon_segment_size =
SET_REG_FIELD_BITS(RLC_SPM_PERFMON_SEGMENT_SIZE, TOTAL_NUM_SEGMENT, segment_size) |
SET_REG_FIELD_BITS(RLC_SPM_PERFMON_SEGMENT_SIZE, GLOBAL_NUM_SEGMENT, global_nlines);
// rlc_spm_perfmon_segment_size = SET_REG_FIELD_BITS(RLC_SPM_PERFMON_SEGMENT_SIZE, SE0_NUM_LINE,
// se_nlines) |
// SET_REG_FIELD_BITS(RLC_SPM_PERFMON_SEGMENT_SIZE, SE1_NUM_LINE, se_nlines) |
// SET_REG_FIELD_BITS(RLC_SPM_PERFMON_SEGMENT_SIZE, SE2_NUM_LINE, se_nlines) |
// SET_REG_FIELD_BITS(RLC_SPM_PERFMON_SEGMENT_SIZE, PERFMON_SEGMENT_SIZE, segment_size);
return rlc_spm_perfmon_segment_size;
}
static uint32_t rlc_spm_perfmon_segment_size_core1_value(const uint32_t& se_count) { return 0; }
// Enable all of the WTYPEs
// Enable Shader Array (SH) at index Zero to be used for fine-grained data
static uint32_t sqtt_mask_value(uint32_t wgp, uint32_t simd, uint32_t vmid) {
uint32_t sq_thread_trace_mask{0};
sq_thread_trace_mask =
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_MASK, SIMD_SEL, simd) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_MASK, WGP_SEL, wgp) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_MASK, SA_SEL, 0x0) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_MASK, WTYPE_INCLUDE, 0x40); // SQ_TT_WTYPE_INCLUDE_CS_BIT
return sq_thread_trace_mask;
}
// not supported in gfx12
static uint32_t sqtt_perf_mask_value() { return 0; }
// Indicate the different TT messages/tokens that should be enabled/logged
// Indicate the different TT tokens that specify register operations to be logged
static uint32_t sqtt_token_mask_on_value() {
uint32_t sq_thread_trace_token_mask{0};
sq_thread_trace_token_mask =
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, REG_DETAIL_ALL, 1) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, REG_EXCLUDE, 0x3) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, REG_INCLUDE,
(SQ_TT_TOKEN_MASK_SQDEC_BIT | SQ_TT_TOKEN_MASK_SHDEC_BIT |
SQ_TT_TOKEN_MASK_GFXUDEC_BIT | SQ_TT_TOKEN_MASK_CONTEXT_BIT |
SQ_TT_TOKEN_MASK_COMP_BIT)) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, TOKEN_EXCLUDE,
((1 << SQ_TT_TOKEN_EXCLUDE_VMEMEXEC_SHIFT) |
(1 << SQ_TT_TOKEN_EXCLUDE_ALUEXEC_SHIFT))) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, EXCLUDE_BARRIER_WAIT,
1); // // See DEGFX12-10117
return sq_thread_trace_token_mask;
}
static uint32_t sqtt_token_mask_off_value() {
uint32_t sq_thread_trace_token_mask{0};
sq_thread_trace_token_mask =
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, REG_EXCLUDE, 0x7) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, INST_EXCLUDE, 0x3) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, TOKEN_EXCLUDE, 0x7FF);
return sq_thread_trace_token_mask;
}
static uint32_t sqtt_token_mask_occupancy_value() {
uint32_t sq_thread_trace_token_mask{0};
sq_thread_trace_token_mask =
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, REG_INCLUDE, 0x8) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, INST_EXCLUDE, 0x3) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_TOKEN_MASK, TOKEN_EXCLUDE, 0x7FF);
return sq_thread_trace_token_mask;
}
// not supported in gfx12
static uint32_t sqtt_token_mask2_value() { return 0; }
// Check if stalling is supported
static bool sqtt_stalling_enabled(const uint32_t& mask_val, const uint32_t& token_mask_val) {
return 0;
}
// Indicates various attributes of a thread trace session.
//
// MASK_CS: Which shader types should be enabled for data collection
// Enable CS Shader types.
//
// WRAP: How trace buffer should be used as a ring buffer or as a linear
// buffer - Disable WRAP mode i.e use it as a linear buffer
//
// MODE: Enables a thread trace session
//
// CAPTURE_MODE: When thread trace data is collected immediately after MODE
// is enabled or wait until a Thread Trace Start event is received
//
// AUTOFLUSH_EN: Flush thread trace data to buffer often automatically
//
// Thread trace mode OFF value
static uint32_t sqtt_mode_off_value() { return 0; }
// Thread trace mode ON value
static uint32_t sqtt_mode_on_value(bool) { return 0; }
// Base address of buffer to use for thread trace
static uint32_t sqtt_base_value_lo(const uint64_t& base_addr) {
uint32_t sq_thread_trace_buf0_base_lo{0};
sq_thread_trace_buf0_base_lo = SET_REG_FIELD_BITS(SQ_THREAD_TRACE_BUF0_BASE_LO, BASE_LO,
Low32(base_addr >> TT_BUFF_ALIGN_SHIFT));
return sq_thread_trace_buf0_base_lo;
}
static uint32_t sqtt_base_value_hi(const uint64_t& base_addr) {
uint32_t sq_thread_trace_buf0_base_hi{0};
sq_thread_trace_buf0_base_hi = SET_REG_FIELD_BITS(SQ_THREAD_TRACE_BUF0_BASE_HI, BASE_HI,
High32(base_addr >> TT_BUFF_ALIGN_SHIFT));
return sq_thread_trace_buf0_base_hi;
}
// Indicates the size of buffer to use per Shader Engine instance.
// The size is specified in terms of 4KB blocks
static uint32_t sqtt_buffer0_size_value(uint64_t size_val) {
uint32_t sq_thread_trace_buf0_size{0};
sq_thread_trace_buf0_size =
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_BUF0_SIZE, SIZE, size_val >> TT_BUFF_ALIGN_SHIFT);
return sq_thread_trace_buf0_size;
}
static uint32_t spi_sqg_event_ctl(bool enableSqgEvents) {
uint32_t spi_sqg_event_ctl{0};
spi_sqg_event_ctl =
SET_REG_FIELD_BITS(SPI_SQG_EVENT_CTL, ENABLE_SQG_TOP_EVENTS, enableSqgEvents) |
SET_REG_FIELD_BITS(SPI_SQG_EVENT_CTL, ENABLE_SQG_BOP_EVENTS, enableSqgEvents);
return spi_sqg_event_ctl;
}
static uint32_t sqtt_buffer_size_value(uint32_t size_val, uint32_t base_hi) { return 0; }
static uint32_t sqtt_zero_size_value() { return 0; }
// Thread trace ctrl register value
static uint32_t sqtt_ctrl_value(bool on, bool double_buffer) {
uint32_t sq_thread_trace_ctrl{0};
sq_thread_trace_ctrl =
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, MODE, on ? SQ_TT_MODE_ON : SQ_TT_MODE_OFF) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, HIWATER, 5) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, UTIL_TIMER, 1) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, DRAW_EVENT_EN, 1) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, SPI_STALL_EN, 1) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, SQ_STALL_EN, 1) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, LOWATER_OFFSET, 3) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, GL1X_PREFETCH_PAGE, 13) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, AUTO_FLUSH_MODE, 1) |
SET_REG_FIELD_BITS(SQ_THREAD_TRACE_CTRL, DOUBLE_BUFFER, double_buffer ? 1 : 0);
return sq_thread_trace_ctrl;
}
// SPM primitives
static uint16_t spm_timestamp_muxsel() { return 0xF0F0; }
enum ESQTT_STATUS_MASK {
// Mask to check if memory error was received
TT_CONTROL_UTC_ERR_MASK = SQ_THREAD_TRACE_STATUS__WRITE_ERROR_MASK,
TT_CONTROL_FULL_MASK = SQ_THREAD_TRACE_STATUS2__BUF0_FULL_MASK | SQ_THREAD_TRACE_STATUS2__BUF1_FULL_MASK,
TT_WRITE_PTR_MASK = SQ_THREAD_TRACE_WPTR__OFFSET_MASK,
TT_LOCKDOWN_FAIL = SQ_THREAD_TRACE_STATUS2__PACKET_LOST_BUF_NO_LOCKDOWN_MASK
};
static uint32_t sqtt_busy_mask() {
const uint32_t BUSY_BIT = 25;
return 1u << BUSY_BIT;
}
static uint32_t sqtt_pending_mask() {
const uint32_t PIPE_START = 2;
const uint32_t NUM_PIPES = 8;
return (1u << (NUM_PIPES + PIPE_START)) - (1u << PIPE_START);
}
};
} // namespace gfx12
} // namespace gfxip
#endif // _GFX12_PRIMITIVES_H_