Summary: This is going to be deprecated in https://github.com/llvm/llvm-project/pull/112849. This patch ports it to use the builtin instead. This isn't a compile constant, so it could slightly negatively affect codegen. There really should be an IR pass to turn it into a constant if the function has known attributes. Using the builtin is correct when we just do it for knowing the size like we do here. Obviously guarding w32/w64 code with this check would be broken.
390 lines
11 KiB
C++
390 lines
11 KiB
C++
//===------- Mapping.cpp - OpenMP device runtime mapping helpers -- C++ -*-===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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//
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//
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//===----------------------------------------------------------------------===//
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#include "Mapping.h"
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#include "DeviceTypes.h"
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#include "DeviceUtils.h"
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#include "Interface.h"
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#include "State.h"
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#pragma omp begin declare target device_type(nohost)
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#include "llvm/Frontend/OpenMP/OMPGridValues.h"
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using namespace ompx;
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namespace ompx {
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namespace impl {
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// Forward declarations defined to be defined for AMDGCN and NVPTX.
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LaneMaskTy activemask();
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LaneMaskTy lanemaskLT();
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LaneMaskTy lanemaskGT();
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uint32_t getThreadIdInWarp();
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uint32_t getThreadIdInBlock(int32_t Dim);
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uint32_t getNumberOfThreadsInBlock(int32_t Dim);
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uint32_t getNumberOfThreadsInKernel();
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uint32_t getBlockIdInKernel(int32_t Dim);
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uint32_t getNumberOfBlocksInKernel(int32_t Dim);
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uint32_t getWarpIdInBlock();
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uint32_t getNumberOfWarpsInBlock();
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uint32_t getWarpSize();
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/// AMDGCN Implementation
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///
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///{
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#pragma omp begin declare variant match(device = {arch(amdgcn)})
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uint32_t getWarpSize() { return __builtin_amdgcn_wavefrontsize(); }
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uint32_t getNumberOfThreadsInBlock(int32_t Dim) {
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switch (Dim) {
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case 0:
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return __builtin_amdgcn_workgroup_size_x();
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case 1:
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return __builtin_amdgcn_workgroup_size_y();
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case 2:
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return __builtin_amdgcn_workgroup_size_z();
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};
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UNREACHABLE("Dim outside range!");
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}
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LaneMaskTy activemask() { return __builtin_amdgcn_read_exec(); }
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LaneMaskTy lanemaskLT() {
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uint32_t Lane = mapping::getThreadIdInWarp();
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int64_t Ballot = mapping::activemask();
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uint64_t Mask = ((uint64_t)1 << Lane) - (uint64_t)1;
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return Mask & Ballot;
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}
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LaneMaskTy lanemaskGT() {
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uint32_t Lane = mapping::getThreadIdInWarp();
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if (Lane == (mapping::getWarpSize() - 1))
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return 0;
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int64_t Ballot = mapping::activemask();
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uint64_t Mask = (~((uint64_t)0)) << (Lane + 1);
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return Mask & Ballot;
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}
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uint32_t getThreadIdInWarp() {
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return __builtin_amdgcn_mbcnt_hi(~0u, __builtin_amdgcn_mbcnt_lo(~0u, 0u));
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}
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uint32_t getThreadIdInBlock(int32_t Dim) {
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switch (Dim) {
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case 0:
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return __builtin_amdgcn_workitem_id_x();
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case 1:
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return __builtin_amdgcn_workitem_id_y();
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case 2:
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return __builtin_amdgcn_workitem_id_z();
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};
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UNREACHABLE("Dim outside range!");
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}
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uint32_t getNumberOfThreadsInKernel() {
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return __builtin_amdgcn_grid_size_x() * __builtin_amdgcn_grid_size_y() *
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__builtin_amdgcn_grid_size_z();
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}
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uint32_t getBlockIdInKernel(int32_t Dim) {
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switch (Dim) {
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case 0:
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return __builtin_amdgcn_workgroup_id_x();
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case 1:
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return __builtin_amdgcn_workgroup_id_y();
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case 2:
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return __builtin_amdgcn_workgroup_id_z();
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};
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UNREACHABLE("Dim outside range!");
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}
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uint32_t getNumberOfBlocksInKernel(int32_t Dim) {
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switch (Dim) {
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case 0:
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return __builtin_amdgcn_grid_size_x() / __builtin_amdgcn_workgroup_size_x();
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case 1:
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return __builtin_amdgcn_grid_size_y() / __builtin_amdgcn_workgroup_size_y();
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case 2:
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return __builtin_amdgcn_grid_size_z() / __builtin_amdgcn_workgroup_size_z();
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};
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UNREACHABLE("Dim outside range!");
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}
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uint32_t getWarpIdInBlock() {
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return impl::getThreadIdInBlock(mapping::DIM_X) / mapping::getWarpSize();
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}
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uint32_t getNumberOfWarpsInBlock() {
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return mapping::getNumberOfThreadsInBlock() / mapping::getWarpSize();
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}
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#pragma omp end declare variant
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///}
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/// NVPTX Implementation
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///
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///{
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#pragma omp begin declare variant match( \
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device = {arch(nvptx, nvptx64)}, \
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implementation = {extension(match_any)})
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uint32_t getNumberOfThreadsInBlock(int32_t Dim) {
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switch (Dim) {
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case 0:
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return __nvvm_read_ptx_sreg_ntid_x();
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case 1:
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return __nvvm_read_ptx_sreg_ntid_y();
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case 2:
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return __nvvm_read_ptx_sreg_ntid_z();
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};
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UNREACHABLE("Dim outside range!");
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}
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uint32_t getWarpSize() { return __nvvm_read_ptx_sreg_warpsize(); }
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LaneMaskTy activemask() { return __nvvm_activemask(); }
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LaneMaskTy lanemaskLT() { return __nvvm_read_ptx_sreg_lanemask_lt(); }
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LaneMaskTy lanemaskGT() { return __nvvm_read_ptx_sreg_lanemask_gt(); }
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uint32_t getThreadIdInBlock(int32_t Dim) {
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switch (Dim) {
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case 0:
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return __nvvm_read_ptx_sreg_tid_x();
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case 1:
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return __nvvm_read_ptx_sreg_tid_y();
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case 2:
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return __nvvm_read_ptx_sreg_tid_z();
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};
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UNREACHABLE("Dim outside range!");
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}
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uint32_t getThreadIdInWarp() { return __nvvm_read_ptx_sreg_laneid(); }
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uint32_t getBlockIdInKernel(int32_t Dim) {
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switch (Dim) {
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case 0:
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return __nvvm_read_ptx_sreg_ctaid_x();
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case 1:
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return __nvvm_read_ptx_sreg_ctaid_y();
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case 2:
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return __nvvm_read_ptx_sreg_ctaid_z();
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};
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UNREACHABLE("Dim outside range!");
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}
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uint32_t getNumberOfBlocksInKernel(int32_t Dim) {
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switch (Dim) {
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case 0:
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return __nvvm_read_ptx_sreg_nctaid_x();
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case 1:
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return __nvvm_read_ptx_sreg_nctaid_y();
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case 2:
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return __nvvm_read_ptx_sreg_nctaid_z();
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};
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UNREACHABLE("Dim outside range!");
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}
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uint32_t getNumberOfThreadsInKernel() {
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return impl::getNumberOfThreadsInBlock(0) *
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impl::getNumberOfBlocksInKernel(0) *
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impl::getNumberOfThreadsInBlock(1) *
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impl::getNumberOfBlocksInKernel(1) *
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impl::getNumberOfThreadsInBlock(2) *
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impl::getNumberOfBlocksInKernel(2);
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}
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uint32_t getWarpIdInBlock() {
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return impl::getThreadIdInBlock(mapping::DIM_X) / mapping::getWarpSize();
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}
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uint32_t getNumberOfWarpsInBlock() {
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return (mapping::getNumberOfThreadsInBlock() + mapping::getWarpSize() - 1) /
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mapping::getWarpSize();
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}
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#pragma omp end declare variant
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///}
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} // namespace impl
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} // namespace ompx
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/// We have to be deliberate about the distinction of `mapping::` and `impl::`
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/// below to avoid repeating assumptions or including irrelevant ones.
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///{
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static bool isInLastWarp() {
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uint32_t MainTId = (mapping::getNumberOfThreadsInBlock() - 1) &
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~(mapping::getWarpSize() - 1);
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return mapping::getThreadIdInBlock() == MainTId;
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}
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bool mapping::isMainThreadInGenericMode(bool IsSPMD) {
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if (IsSPMD || icv::Level)
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return false;
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// Check if this is the last warp in the block.
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return isInLastWarp();
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}
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bool mapping::isMainThreadInGenericMode() {
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return mapping::isMainThreadInGenericMode(mapping::isSPMDMode());
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}
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bool mapping::isInitialThreadInLevel0(bool IsSPMD) {
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if (IsSPMD)
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return mapping::getThreadIdInBlock() == 0;
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return isInLastWarp();
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}
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bool mapping::isLeaderInWarp() {
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__kmpc_impl_lanemask_t Active = mapping::activemask();
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__kmpc_impl_lanemask_t LaneMaskLT = mapping::lanemaskLT();
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return utils::popc(Active & LaneMaskLT) == 0;
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}
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LaneMaskTy mapping::activemask() { return impl::activemask(); }
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LaneMaskTy mapping::lanemaskLT() { return impl::lanemaskLT(); }
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LaneMaskTy mapping::lanemaskGT() { return impl::lanemaskGT(); }
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uint32_t mapping::getThreadIdInWarp() {
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uint32_t ThreadIdInWarp = impl::getThreadIdInWarp();
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ASSERT(ThreadIdInWarp < impl::getWarpSize(), nullptr);
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return ThreadIdInWarp;
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}
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uint32_t mapping::getThreadIdInBlock(int32_t Dim) {
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uint32_t ThreadIdInBlock = impl::getThreadIdInBlock(Dim);
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return ThreadIdInBlock;
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}
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uint32_t mapping::getWarpSize() { return impl::getWarpSize(); }
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uint32_t mapping::getMaxTeamThreads(bool IsSPMD) {
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uint32_t BlockSize = mapping::getNumberOfThreadsInBlock();
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// If we are in SPMD mode, remove one warp.
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return BlockSize - (!IsSPMD * impl::getWarpSize());
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}
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uint32_t mapping::getMaxTeamThreads() {
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return mapping::getMaxTeamThreads(mapping::isSPMDMode());
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}
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uint32_t mapping::getNumberOfThreadsInBlock(int32_t Dim) {
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return impl::getNumberOfThreadsInBlock(Dim);
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}
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uint32_t mapping::getNumberOfThreadsInKernel() {
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return impl::getNumberOfThreadsInKernel();
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}
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uint32_t mapping::getWarpIdInBlock() {
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uint32_t WarpID = impl::getWarpIdInBlock();
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ASSERT(WarpID < impl::getNumberOfWarpsInBlock(), nullptr);
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return WarpID;
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}
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uint32_t mapping::getBlockIdInKernel(int32_t Dim) {
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uint32_t BlockId = impl::getBlockIdInKernel(Dim);
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ASSERT(BlockId < impl::getNumberOfBlocksInKernel(Dim), nullptr);
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return BlockId;
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}
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uint32_t mapping::getNumberOfWarpsInBlock() {
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uint32_t NumberOfWarpsInBlocks = impl::getNumberOfWarpsInBlock();
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ASSERT(impl::getWarpIdInBlock() < NumberOfWarpsInBlocks, nullptr);
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return NumberOfWarpsInBlocks;
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}
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uint32_t mapping::getNumberOfBlocksInKernel(int32_t Dim) {
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uint32_t NumberOfBlocks = impl::getNumberOfBlocksInKernel(Dim);
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ASSERT(impl::getBlockIdInKernel(Dim) < NumberOfBlocks, nullptr);
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return NumberOfBlocks;
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}
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uint32_t mapping::getNumberOfProcessorElements() {
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return static_cast<uint32_t>(config::getHardwareParallelism());
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}
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///}
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/// Execution mode
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///
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///{
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// TODO: This is a workaround for initialization coming from kernels outside of
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// the TU. We will need to solve this more correctly in the future.
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[[gnu::weak]] int SHARED(IsSPMDMode);
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void mapping::init(bool IsSPMD) {
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if (mapping::isInitialThreadInLevel0(IsSPMD))
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IsSPMDMode = IsSPMD;
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}
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bool mapping::isSPMDMode() { return IsSPMDMode; }
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bool mapping::isGenericMode() { return !isSPMDMode(); }
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///}
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extern "C" {
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[[gnu::noinline]] uint32_t __kmpc_get_hardware_thread_id_in_block() {
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return mapping::getThreadIdInBlock();
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}
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[[gnu::noinline]] uint32_t __kmpc_get_hardware_num_threads_in_block() {
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return impl::getNumberOfThreadsInBlock(mapping::DIM_X);
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}
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[[gnu::noinline]] uint32_t __kmpc_get_warp_size() {
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return impl::getWarpSize();
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}
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}
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#define _TGT_KERNEL_LANGUAGE(NAME, MAPPER_NAME) \
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extern "C" int ompx_##NAME(int Dim) { return mapping::MAPPER_NAME(Dim); }
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_TGT_KERNEL_LANGUAGE(thread_id, getThreadIdInBlock)
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_TGT_KERNEL_LANGUAGE(block_id, getBlockIdInKernel)
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_TGT_KERNEL_LANGUAGE(block_dim, getNumberOfThreadsInBlock)
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_TGT_KERNEL_LANGUAGE(grid_dim, getNumberOfBlocksInKernel)
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extern "C" {
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uint64_t ompx_ballot_sync(uint64_t mask, int pred) {
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return utils::ballotSync(mask, pred);
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}
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int ompx_shfl_down_sync_i(uint64_t mask, int var, unsigned delta, int width) {
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return utils::shuffleDown(mask, var, delta, width);
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}
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float ompx_shfl_down_sync_f(uint64_t mask, float var, unsigned delta,
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int width) {
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return utils::convertViaPun<float>(utils::shuffleDown(
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mask, utils::convertViaPun<int32_t>(var), delta, width));
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}
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long ompx_shfl_down_sync_l(uint64_t mask, long var, unsigned delta, int width) {
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return utils::shuffleDown(mask, var, delta, width);
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}
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double ompx_shfl_down_sync_d(uint64_t mask, double var, unsigned delta,
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int width) {
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return utils::convertViaPun<double>(utils::shuffleDown(
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mask, utils::convertViaPun<int64_t>(var), delta, width));
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}
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}
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#pragma omp end declare target
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