// SPDX-License-Identifier: MIT // Copyright (c) 2018-2022, Advanced Micro Devices, Inc. All rights reserved. #include #include #include #include #include "profiler/profile_grouped_conv_fwd_impl.hpp" #include "profiler_operation_registry.hpp" namespace { enum struct ConvLayout { GNHWC_GKYXC_GNHWK, // 0 NHWGC_GKYXC_NHWGK, // 1 }; enum struct ConvDataType { F32_F32_F32, // 0 F16_F16_F16, // 1 BF16_BF16_BF16, // 2 INT8_INT8_INT8, // 3 }; #define OP_NAME "grouped_conv_fwd" #define OP_DESC "Grouped Convolution Forward" static void print_helper_msg() { std::cout // clang-format off << "arg1: tensor operation (" OP_NAME ": " OP_DESC ")\n" << "arg2: data type (0: Input fp32, Weight fp32, Output fp32\n" << " 1: Input fp16, Weight fp16, Output fp16\n" << " 2: Input bf16, Weight bf16, Output bf16\n" << " 3: Input int8, Weight int8, Output int8)\n" << "arg3: tensor layout (0: Input[G, N, Hi, Wi, C], Weight[G, K, Y, X, C], Output[G, N, Ho, Wo, K]\n" << " 1: Input[N, Hi, Wi, G, C], Weight[G, K, Y, X, C], Output[N, Ho, Wo, G, K])\n" << "arg4: verification (0: no, 1: yes)\n" << "arg5: initialization (0: no init, 1: integer value, 2: decimal value)\n" << "arg6: print tensor value (0: no; 1: yes)\n" << "arg7: time kernel (0: no, 1: yes)\n" << ck::utils::conv::get_conv_param_parser_helper_msg() << std::endl; // clang-format on } } // namespace int profile_grouped_conv_fwd(int argc, char* argv[]) { // 8 for control, 1 for num_dim_spatial if(argc < 9) { print_helper_msg(); return 1; } const auto data_type = static_cast(std::stoi(argv[2])); const auto layout = static_cast(std::stoi(argv[3])); const bool do_verification = std::stoi(argv[4]); const int init_method = std::stoi(argv[5]); const bool do_log = std::stoi(argv[6]); const bool time_kernel = std::stoi(argv[7]); const int num_dim_spatial = std::stoi(argv[8]); // 8 for control, 1 for num_dim_spatial, 4 for G/N/K/C, and 6 * num_dim_spatial if(argc != 8 + 1 + 4 + 6 * num_dim_spatial) { print_helper_msg(); return 1; } const auto params = ck::utils::conv::parse_conv_param(num_dim_spatial, 9, argv); using F32 = float; using F16 = ck::half_t; using BF16 = ck::bhalf_t; using INT8 = int8_t; // using GNWC = ck::tensor_layout::convolution::GNWC; using GNHWC = ck::tensor_layout::convolution::GNHWC; using GNDHWC = ck::tensor_layout::convolution::GNDHWC; using GKXC = ck::tensor_layout::convolution::GKXC; using GKYXC = ck::tensor_layout::convolution::GKYXC; using GKZYXC = ck::tensor_layout::convolution::GKZYXC; using GNWK = ck::tensor_layout::convolution::GNWK; using GNHWK = ck::tensor_layout::convolution::GNHWK; using GNDHWK = ck::tensor_layout::convolution::GNDHWK; // using NWGC = ck::tensor_layout::convolution::NWGC; using NHWGC = ck::tensor_layout::convolution::NHWGC; using NDHWGC = ck::tensor_layout::convolution::NDHWGC; using NWGK = ck::tensor_layout::convolution::NWGK; using NHWGK = ck::tensor_layout::convolution::NHWGK; using NDHWGK = ck::tensor_layout::convolution::NDHWGK; constexpr auto I1 = ck::Number<1>{}; constexpr auto I2 = ck::Number<2>{}; constexpr auto I3 = ck::Number<3>{}; auto profile = [&](auto num_dim_spatial_tmp, auto in_layout, auto wei_layout, auto out_layout, auto in_type, auto wei_type, auto out_type) { constexpr ck::index_t NDimSpatial = num_dim_spatial_tmp.value; using InLayout = decltype(in_layout); using WeiLayout = decltype(wei_layout); using OutLayout = decltype(out_layout); using InDataType = decltype(in_type); using WeiDataType = decltype(wei_type); using OutDataType = decltype(out_type); bool pass = ck::profiler::profile_grouped_conv_fwd_impl( do_verification, init_method, do_log, time_kernel, params); return pass ? 0 : 1; }; // GNHWC_GKYXC_GNHWK if(num_dim_spatial == 1 && layout == ConvLayout::GNHWC_GKYXC_GNHWK) { if(data_type == ConvDataType::F32_F32_F32) { return profile(I1, GNWC{}, GKXC{}, GNWK{}, F32{}, F32{}, F32{}); } else if(data_type == ConvDataType::F16_F16_F16) { return profile(I1, GNWC{}, GKXC{}, GNWK{}, F16{}, F16{}, F16{}); } else if(data_type == ConvDataType::BF16_BF16_BF16) { return profile(I1, GNWC{}, GKXC{}, GNWK{}, BF16{}, BF16{}, BF16{}); } else if(data_type == ConvDataType::INT8_INT8_INT8) { return profile(I1, GNWC{}, GKXC{}, GNWK{}, INT8{}, INT8{}, INT8{}); } } else if(num_dim_spatial == 2 && layout == ConvLayout::GNHWC_GKYXC_GNHWK) { if(data_type == ConvDataType::F32_F32_F32) { return profile(I2, GNHWC{}, GKYXC{}, GNHWK{}, F32{}, F32{}, F32{}); } else if(data_type == ConvDataType::F16_F16_F16) { return profile(I2, GNHWC{}, GKYXC{}, GNHWK{}, F16{}, F16{}, F16{}); } else if(data_type == ConvDataType::BF16_BF16_BF16) { return profile(I2, GNHWC{}, GKYXC{}, GNHWK{}, BF16{}, BF16{}, BF16{}); } else if(data_type == ConvDataType::INT8_INT8_INT8) { return profile(I2, GNHWC{}, GKYXC{}, GNHWK{}, INT8{}, INT8{}, INT8{}); } } else if(num_dim_spatial == 3 && layout == ConvLayout::GNHWC_GKYXC_GNHWK) { if(data_type == ConvDataType::F32_F32_F32) { return profile(I3, GNDHWC{}, GKZYXC{}, GNDHWK{}, F32{}, F32{}, F32{}); } else if(data_type == ConvDataType::F16_F16_F16) { return profile(I3, GNDHWC{}, GKZYXC{}, GNDHWK{}, F16{}, F16{}, F16{}); } else if(data_type == ConvDataType::BF16_BF16_BF16) { return profile(I3, GNDHWC{}, GKZYXC{}, GNDHWK{}, BF16{}, BF16{}, BF16{}); } else if(data_type == ConvDataType::INT8_INT8_INT8) { return profile(I3, GNDHWC{}, GKZYXC{}, GNDHWK{}, INT8{}, INT8{}, INT8{}); } } // NHWGC_GKYXC_NHWGK else if(num_dim_spatial == 1 && layout == ConvLayout::NHWGC_GKYXC_NHWGK) { if(data_type == ConvDataType::F32_F32_F32) { return profile(I1, NWGC{}, GKXC{}, NWGK{}, F32{}, F32{}, F32{}); } else if(data_type == ConvDataType::F16_F16_F16) { return profile(I1, NWGC{}, GKXC{}, NWGK{}, F16{}, F16{}, F16{}); } else if(data_type == ConvDataType::BF16_BF16_BF16) { return profile(I1, NWGC{}, GKXC{}, NWGK{}, BF16{}, BF16{}, BF16{}); } else if(data_type == ConvDataType::INT8_INT8_INT8) { return profile(I1, NWGC{}, GKXC{}, NWGK{}, INT8{}, INT8{}, INT8{}); } } else if(num_dim_spatial == 2 && layout == ConvLayout::NHWGC_GKYXC_NHWGK) { if(data_type == ConvDataType::F32_F32_F32) { return profile(I2, NHWGC{}, GKYXC{}, NHWGK{}, F32{}, F32{}, F32{}); } else if(data_type == ConvDataType::F16_F16_F16) { return profile(I2, NHWGC{}, GKYXC{}, NHWGK{}, F16{}, F16{}, F16{}); } else if(data_type == ConvDataType::BF16_BF16_BF16) { return profile(I2, NHWGC{}, GKYXC{}, NHWGK{}, BF16{}, BF16{}, BF16{}); } else if(data_type == ConvDataType::INT8_INT8_INT8) { return profile(I2, NHWGC{}, GKYXC{}, NHWGK{}, INT8{}, INT8{}, INT8{}); } } else if(num_dim_spatial == 3 && layout == ConvLayout::NHWGC_GKYXC_NHWGK) { if(data_type == ConvDataType::F32_F32_F32) { return profile(I3, NDHWGC{}, GKZYXC{}, NDHWGK{}, F32{}, F32{}, F32{}); } else if(data_type == ConvDataType::F16_F16_F16) { return profile(I3, NDHWGC{}, GKZYXC{}, NDHWGK{}, F16{}, F16{}, F16{}); } else if(data_type == ConvDataType::BF16_BF16_BF16) { return profile(I3, NDHWGC{}, GKZYXC{}, NDHWGK{}, BF16{}, BF16{}, BF16{}); } else if(data_type == ConvDataType::INT8_INT8_INT8) { return profile(I3, NDHWGC{}, GKZYXC{}, NDHWGK{}, INT8{}, INT8{}, INT8{}); } } std::cout << "this data_type & layout is not implemented" << std::endl; return 1; } REGISTER_PROFILER_OPERATION(OP_NAME, OP_DESC, profile_grouped_conv_fwd);