Files
project_6/cccl_upstream/c/parallel/src/three_way_partition.cu
EngineX CI 56fd68e7dd [INFRA] Import NVIDIA/CCCL upstream as optimization reference library
CCCL (CUDA C++ Core Libraries) provides:
- CUB: device/block/warp-level GPU primitives (reduce, scan, sort, topk)
- Thrust: high-level parallel algorithms (transform_reduce, sort, scan)
- libcudacxx: CUDA C++ standard library (atomics, barriers, memory)
- cudax: experimental features (memory resources, allocators)
- Tuning policies: per-SM hardware-specific algorithm parameters

Competition optimization vectors mapped to CCCL:
- Output TPS (83% weight): warp_reduce, block_reduce, device_topk
- Input TPS (14% weight): device_scan, block_load, prefetch
- Cache TPS (3% weight): prefix caching strategy patterns
- Memory (0.9 util): pooled/cached/buddy allocators

Source: https://github.com/NVIDIA/cccl (shallow clone, HEAD only)
License: Apache-2.0
2026-07-30 09:35:51 +00:00

698 lines
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//===----------------------------------------------------------------------===//
//
// Part of CUDA Experimental in CUDA C++ Core Libraries,
// under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
// SPDX-FileCopyrightText: Copyright (c) 2025 NVIDIA CORPORATION & AFFILIATES.
//
//===----------------------------------------------------------------------===//
#include <cub/detail/choose_offset.cuh> // cub::detail::choose_offset_t
#include <cub/detail/launcher/cuda_driver.cuh> // cub::detail::CudaDriverLauncherFactory
#include <cub/device/dispatch/dispatch_three_way_partition.cuh>
#include <cub/device/dispatch/kernels/kernel_three_way_partition.cuh> // DeviceThreeWayPartition kernels
#include <cub/device/dispatch/tuning/tuning_three_way_partition.cuh> // policy_selector
#include <cuda/__type_traits/is_trivially_copyable.h>
#include <cstdlib>
#include <cstring>
#include <exception>
#include <format>
#include <mutex>
#include <string>
#include <string_view>
#include <type_traits> // std::is_same_v
#include <unordered_map>
#include <vector>
#include "jit_templates/templates/input_iterator.h"
#include "jit_templates/templates/operation.h"
#include "jit_templates/templates/output_iterator.h"
#include "jit_templates/traits.h"
#include "util/context.h"
#include "util/errors.h"
#include "util/indirect_arg.h"
#include "util/nvjitlink.h"
#include "util/serialization.h"
#include "util/types.h"
#include <cccl/c/serialization.h>
#include <cccl/c/three_way_partition.h>
#include <cccl/c/types.h>
#include <nvrtc/command_list.h>
#include <nvrtc/ltoir_list_appender.h>
#include <util/build_utils.h>
struct device_three_way_partition_policy_selector;
using OffsetT = ptrdiff_t;
static_assert(std::is_same_v<cub::detail::choose_signed_offset<OffsetT>::type, OffsetT>, "OffsetT must be long");
// check we can map OffsetT to cuda::std::int64_t
static_assert(std::is_signed_v<OffsetT>);
static_assert(sizeof(OffsetT) == sizeof(cuda::std::int64_t));
namespace three_way_partition
{
struct three_way_partition_kernel_source
{
cccl_device_three_way_partition_build_result_t& build;
CUkernel ThreeWayPartitionInitKernel() const
{
return build.three_way_partition_init_kernel;
}
CUkernel ThreeWayPartitionKernel() const
{
return build.three_way_partition_kernel;
}
};
std::string get_three_way_partition_init_kernel_name(std::string_view num_selected_out_iterator_name)
{
constexpr std::string_view scan_tile_state_t = "cub::detail::three_way_partition::ScanTileStateT";
return std::format("cub::detail::three_way_partition::DeviceThreeWayPartitionInitKernel<{0}, {1}>",
scan_tile_state_t, // 0
num_selected_out_iterator_name); // 1
}
std::string get_three_way_partition_kernel_name(
std::string_view d_in_iterator_name,
std::string_view d_first_part_out_iterator_name,
std::string_view d_second_part_out_iterator_name,
std::string_view d_unselected_out_iterator_name,
std::string_view d_num_selected_out_iterator_name,
std::string_view select_first_part_op_name,
std::string_view select_second_part_op_name)
{
std::string policy_selector_t;
check(cccl_type_name_from_nvrtc<device_three_way_partition_policy_selector>(&policy_selector_t));
constexpr std::string_view scan_tile_state_t = "cub::detail::three_way_partition::ScanTileStateT";
std::string offset_t;
check(cccl_type_name_from_nvrtc<OffsetT>(&offset_t));
const std::string streaming_context_t =
std::format("cub::detail::three_way_partition::streaming_context_t<{0}>", offset_t);
return std::format(
"cub::detail::three_way_partition::DeviceThreeWayPartitionKernel<{0}, {1}, {2}, {3}, {4}, {5}, {6}, {7}, {8}, {9}, "
"{10}>",
policy_selector_t, // 0
d_in_iterator_name, // 1
d_first_part_out_iterator_name, // 2
d_second_part_out_iterator_name, // 3
d_unselected_out_iterator_name, // 4
d_num_selected_out_iterator_name, // 5
scan_tile_state_t, // 6
select_first_part_op_name, // 7
select_second_part_op_name, // 8
"cub::detail::three_way_partition::per_partition_offset_t", // 9
streaming_context_t // 10
);
}
} // namespace three_way_partition
struct three_way_partition_input_iterator_tag;
struct three_way_partition_first_part_output_iterator_tag;
struct three_way_partition_second_part_output_iterator_tag;
struct three_way_partition_unselected_output_iterator_tag;
struct three_way_partition_num_selected_output_iterator_tag;
struct three_way_partition_select_first_part_operation_tag;
struct three_way_partition_select_second_part_operation_tag;
CUresult cccl_device_three_way_partition_compile(
cccl_device_three_way_partition_build_result_t* build_ptr,
cccl_iterator_t d_in,
cccl_iterator_t d_first_part_out,
cccl_iterator_t d_second_part_out,
cccl_iterator_t d_unselected_out,
cccl_iterator_t d_num_selected_out,
cccl_op_t select_first_part_op,
cccl_op_t select_second_part_op,
int cc_major,
int cc_minor,
const char* cub_path,
const char* thrust_path,
const char* libcudacxx_path,
const char* ctk_path,
cccl_build_config* config)
try
{
const char* name = "device_three_way_partition";
const cuda::compute_capability cc{cc_major, cc_minor};
const auto [d_in_iterator_name, d_in_iterator_src] =
get_specialization<three_way_partition_input_iterator_tag>(template_id<input_iterator_traits>(), d_in);
const auto [d_first_part_out_iterator_name, d_first_part_out_iterator_src] =
get_specialization<three_way_partition_first_part_output_iterator_tag>(
template_id<output_iterator_traits>(), d_first_part_out, d_first_part_out.value_type);
const auto [d_second_part_out_iterator_name, d_second_part_out_iterator_src] =
get_specialization<three_way_partition_second_part_output_iterator_tag>(
template_id<output_iterator_traits>(), d_second_part_out, d_second_part_out.value_type);
const auto [d_unselected_out_iterator_name, d_unselected_out_iterator_src] =
get_specialization<three_way_partition_unselected_output_iterator_tag>(
template_id<output_iterator_traits>(), d_unselected_out, d_unselected_out.value_type);
const auto [d_num_selected_out_iterator_name, d_num_selected_out_iterator_src] =
get_specialization<three_way_partition_num_selected_output_iterator_tag>(
template_id<output_iterator_traits>(), d_num_selected_out, d_num_selected_out.value_type);
cccl_type_info selector_result_t{sizeof(bool), alignof(bool), cccl_type_enum::CCCL_BOOLEAN};
const auto [select_first_part_op_name, select_first_part_op_src] =
get_specialization<three_way_partition_select_first_part_operation_tag>(
template_id<unary_user_operation_traits>(), select_first_part_op, selector_result_t, d_in.value_type);
const auto [select_second_part_op_name, select_second_part_op_src] =
get_specialization<three_way_partition_select_second_part_operation_tag>(
template_id<unary_user_operation_traits>(), select_second_part_op, selector_result_t, d_in.value_type);
const auto offset_t = cccl_type_enum_to_name(cccl_type_enum::CCCL_INT64);
const std::string key_t = cccl_type_enum_to_name(d_in.value_type.type);
const auto policy_sel = cub::detail::three_way_partition::policy_selector{
cccl_type_enum_to_cub_type(d_in.value_type.type), static_cast<int>(d_in.value_type.size), int{sizeof(OffsetT)}};
// TODO(bgruber): drop this if tuning policies become formattable
std::stringstream policy_sel_str;
policy_sel_str << policy_sel(cc);
const auto policy_selector_expr = std::format(
R"XXX(cub::detail::three_way_partition::policy_selector_from_types<{0}, {1}>)XXX",
key_t, // 0
offset_t); // 1
std::string final_src = std::format(
R"XXX(
#include <cub/device/dispatch/tuning/tuning_three_way_partition.cuh>
#include <cub/device/dispatch/kernels/kernel_three_way_partition.cuh>
{0}
struct __align__({2}) storage_t {{
char data[{1}];
}};
{3}
{4}
{5}
{6}
{7}
{8}
{9}
using device_three_way_partition_policy_selector = {10};
using namespace cub;
using namespace cub::detail;
using namespace cub::detail::three_way_partition;
static_assert(
device_three_way_partition_policy_selector()(current_tuning_cc()) == {11},
"Host generated and JIT compiled policy mismatch");
)XXX",
jit_template_header_contents, // 0
d_in.value_type.size, // 1
d_in.value_type.alignment, // 2
d_in_iterator_src, // 3
d_first_part_out_iterator_src, // 4
d_second_part_out_iterator_src, // 5
d_unselected_out_iterator_src, // 6
d_num_selected_out_iterator_src, // 7
select_first_part_op_src, // 8
select_second_part_op_src, // 9
policy_selector_expr, // 10
policy_sel_str.view()); // 11
#if false // CCCL_DEBUGGING_SWITCH
fflush(stderr);
printf("\nCODE4NVRTC BEGIN\n%sCODE4NVRTC END\n", final_src.c_str());
fflush(stdout);
#endif
std::string three_way_partition_init_kernel_name =
three_way_partition::get_three_way_partition_init_kernel_name(d_num_selected_out_iterator_name);
std::string three_way_partition_kernel_name = three_way_partition::get_three_way_partition_kernel_name(
d_in_iterator_name,
d_first_part_out_iterator_name,
d_second_part_out_iterator_name,
d_unselected_out_iterator_name,
d_num_selected_out_iterator_name,
select_first_part_op_name,
select_second_part_op_name);
std::string three_way_partition_init_kernel_lowered_name;
std::string three_way_partition_kernel_lowered_name;
const std::string arch = std::format("-arch=sm_{0}{1}", cc_major, cc_minor);
std::vector<const char*> args = {
arch.c_str(),
cub_path,
thrust_path,
libcudacxx_path,
ctk_path,
"-rdc=true",
"-dlto",
"-DCUB_DISABLE_CDP",
"-std=c++20"};
cccl::detail::extend_args_with_build_config(args, config);
if (is_custom_op(select_first_part_op) != is_custom_op(select_second_part_op))
{
return CUDA_ERROR_INVALID_VALUE;
}
const bool kernel_only = is_custom_op(select_first_part_op) && is_custom_op(select_second_part_op);
constexpr size_t num_lto_args = 2;
const char* lopts[num_lto_args] = {"-lto", arch.c_str()};
// Collect all LTO-IRs to be linked (empty ops when kernel_only — ops have no code).
nvrtc_linkable_list linkable_list;
nvrtc_linkable_list_appender appender{linkable_list};
appender.append_operation(select_first_part_op);
appender.append_operation(select_second_part_op);
appender.add_iterator_definition(d_in);
appender.add_iterator_definition(d_first_part_out);
appender.add_iterator_definition(d_second_part_out);
appender.add_iterator_definition(d_unselected_out);
appender.add_iterator_definition(d_num_selected_out);
auto post_build =
begin_linking_nvrtc_program(kernel_only ? 0 : num_lto_args, kernel_only ? nullptr : lopts)
->add_program(nvrtc_translation_unit{final_src.c_str(), name})
->add_expression({three_way_partition_init_kernel_name})
->add_expression({three_way_partition_kernel_name})
->compile_program({args.data(), args.size()})
->get_name({three_way_partition_init_kernel_name, three_way_partition_init_kernel_lowered_name})
->get_name({three_way_partition_kernel_name, three_way_partition_kernel_lowered_name});
struct free_deleter
{
void operator()(void* p) const
{
std::free(p);
}
};
static_assert(::cuda::is_trivially_copyable_v<cub::detail::three_way_partition::policy_selector>);
const size_t policy_size = sizeof(policy_sel);
std::unique_ptr<void, free_deleter> policy_ptr(std::malloc(policy_size));
if (!policy_ptr)
{
return CUDA_ERROR_OUT_OF_MEMORY;
}
std::memcpy(policy_ptr.get(), &policy_sel, sizeof(policy_sel));
auto init_name = std::unique_ptr<char[]>(duplicate_c_string(three_way_partition_init_kernel_lowered_name));
auto kernel_name = std::unique_ptr<char[]>(duplicate_c_string(three_way_partition_kernel_lowered_name));
build_ptr->cc = cc.get();
// Zero-init fields set by _load, not _compile.
build_ptr->library = nullptr;
build_ptr->three_way_partition_init_kernel = nullptr;
build_ptr->three_way_partition_kernel = nullptr;
// All potentially-throwing operations come before any release() calls so that
// unique_ptrs automatically clean up on exception.
if (kernel_only)
{
auto [ltoir_size, ltoir_data] = post_build->get_program_ltoir();
build_ptr->payload = ltoir_data.release();
build_ptr->payload_size = ltoir_size;
build_ptr->payload_kind = CCCL_PAYLOAD_LTOIR;
}
else
{
nvrtc_link_result result = post_build->link_program()->add_link_list(linkable_list)->finalize_program();
build_ptr->payload = (void*) result.data.release();
build_ptr->payload_size = result.size;
build_ptr->payload_kind = CCCL_PAYLOAD_CUBIN;
}
build_ptr->runtime_policy = policy_ptr.release();
build_ptr->runtime_policy_size = policy_size;
build_ptr->three_way_partition_init_kernel_lowered_name = init_name.release();
build_ptr->three_way_partition_kernel_lowered_name = kernel_name.release();
return CUDA_SUCCESS;
}
catch (const std::exception& exc)
{
fflush(stderr);
printf("\nEXCEPTION in cccl_device_three_way_partition_compile(): %s\n", exc.what());
fflush(stdout);
return CUDA_ERROR_UNKNOWN;
}
CUresult cccl_device_three_way_partition_load(cccl_device_three_way_partition_build_result_t* build)
try
{
auto invalid_name = [](const char* n) {
return n == nullptr || n[0] == '\0';
};
if (build == nullptr || build->payload == nullptr || build->payload_size == 0
|| build->payload_kind != CCCL_PAYLOAD_CUBIN || invalid_name(build->three_way_partition_init_kernel_lowered_name)
|| invalid_name(build->three_way_partition_kernel_lowered_name))
{
return CUDA_ERROR_INVALID_VALUE;
}
CUresult status = cuLibraryLoadData(&build->library, build->payload, nullptr, nullptr, 0, nullptr, nullptr, 0);
if (status != CUDA_SUCCESS)
{
return status;
}
try
{
check(cuLibraryGetKernel(
&build->three_way_partition_init_kernel, build->library, build->three_way_partition_init_kernel_lowered_name));
check(cuLibraryGetKernel(
&build->three_way_partition_kernel, build->library, build->three_way_partition_kernel_lowered_name));
}
catch (...)
{
cuLibraryUnload(build->library);
build->library = nullptr;
throw;
}
return CUDA_SUCCESS;
}
catch (const std::exception& exc)
{
fflush(stderr);
printf("\nEXCEPTION in cccl_device_three_way_partition_load(): %s\n", exc.what());
fflush(stdout);
return CUDA_ERROR_UNKNOWN;
}
CUresult cccl_device_three_way_partition_build_ex(
cccl_device_three_way_partition_build_result_t* build_ptr,
cccl_iterator_t d_in,
cccl_iterator_t d_first_part_out,
cccl_iterator_t d_second_part_out,
cccl_iterator_t d_unselected_out,
cccl_iterator_t d_num_selected_out,
cccl_op_t select_first_part_op,
cccl_op_t select_second_part_op,
int cc_major,
int cc_minor,
const char* cub_path,
const char* thrust_path,
const char* libcudacxx_path,
const char* ctk_path,
cccl_build_config* config)
{
CUresult result = cccl_device_three_way_partition_compile(
build_ptr,
d_in,
d_first_part_out,
d_second_part_out,
d_unselected_out,
d_num_selected_out,
select_first_part_op,
select_second_part_op,
cc_major,
cc_minor,
cub_path,
thrust_path,
libcudacxx_path,
ctk_path,
config);
if (result != CUDA_SUCCESS)
{
return result;
}
CUresult load_r = cccl_device_three_way_partition_load(build_ptr);
if (load_r != CUDA_SUCCESS)
{
cccl_device_three_way_partition_cleanup(build_ptr);
}
return load_r;
}
CUresult cccl_device_three_way_partition(
cccl_device_three_way_partition_build_result_t build,
void* d_temp_storage,
size_t* temp_storage_bytes,
cccl_iterator_t d_in,
cccl_iterator_t d_first_part_out,
cccl_iterator_t d_second_part_out,
cccl_iterator_t d_unselected_out,
cccl_iterator_t d_num_selected_out,
cccl_op_t select_first_part_op,
cccl_op_t select_second_part_op,
uint64_t num_items,
CUstream stream)
{
bool pushed = false;
CUresult error = CUDA_SUCCESS;
try
{
pushed = try_push_context();
CUdevice cu_device;
check(cuCtxGetDevice(&cu_device));
auto exec_status = cub::detail::three_way_partition::dispatch<
indirect_arg_t, // InputIteratorT
indirect_arg_t, // FirstOutputIteratorT
indirect_arg_t, // SecondOutputIteratorT
indirect_arg_t, // UnselectedOutputIteratorT
indirect_arg_t, // NumSelectedIteratorT
indirect_arg_t, // SelectFirstPartOp
indirect_arg_t, // SelectSecondPartOp
OffsetT, // OffsetT
cub::detail::three_way_partition::policy_selector, // PolicySelector
three_way_partition::three_way_partition_kernel_source, // KernelSource
cub::detail::CudaDriverLauncherFactory>(
d_temp_storage,
*temp_storage_bytes,
d_in,
d_first_part_out,
d_second_part_out,
d_unselected_out,
d_num_selected_out,
select_first_part_op,
select_second_part_op,
static_cast<OffsetT>(num_items),
stream,
/* policy_selector */ *static_cast<cub::detail::three_way_partition::policy_selector*>(build.runtime_policy),
/* kernel_source */ {build},
/* launcher_factory */ cub::detail::CudaDriverLauncherFactory{cu_device, build.cc});
error = static_cast<CUresult>(exec_status);
}
catch (const std::exception& exc)
{
fflush(stderr);
printf("\nEXCEPTION in cccl_device_three_way_partition(): %s\n", exc.what());
fflush(stdout);
error = CUDA_ERROR_UNKNOWN;
}
if (pushed)
{
CUcontext dummy;
cuCtxPopCurrent(&dummy);
}
return error;
}
CUresult cccl_device_three_way_partition_cleanup(cccl_device_three_way_partition_build_result_t* bld_ptr)
try
{
if (bld_ptr == nullptr)
{
return CUDA_ERROR_INVALID_VALUE;
}
std::unique_ptr<char[]> payload(reinterpret_cast<char*>(bld_ptr->payload));
std::free(bld_ptr->runtime_policy);
std::unique_ptr<char[]> init_name(bld_ptr->three_way_partition_init_kernel_lowered_name);
std::unique_ptr<char[]> kernel_name(bld_ptr->three_way_partition_kernel_lowered_name);
if (bld_ptr->library != nullptr)
{
check(cuLibraryUnload(bld_ptr->library));
}
return CUDA_SUCCESS;
}
catch (const std::exception& exc)
{
fflush(stderr);
printf("\nEXCEPTION in cccl_device_three_way_partition_cleanup(): %s\n", exc.what());
fflush(stdout);
return CUDA_ERROR_UNKNOWN;
}
CUresult cccl_device_three_way_partition_build(
cccl_device_three_way_partition_build_result_t* build_ptr,
cccl_iterator_t d_in,
cccl_iterator_t d_first_part_out,
cccl_iterator_t d_second_part_out,
cccl_iterator_t d_unselected_out,
cccl_iterator_t d_num_selected_out,
cccl_op_t select_first_part_op,
cccl_op_t select_second_part_op,
int cc_major,
int cc_minor,
const char* cub_path,
const char* thrust_path,
const char* libcudacxx_path,
const char* ctk_path)
{
return cccl_device_three_way_partition_build_ex(
build_ptr,
d_in,
d_first_part_out,
d_second_part_out,
d_unselected_out,
d_num_selected_out,
select_first_part_op,
select_second_part_op,
cc_major,
cc_minor,
cub_path,
thrust_path,
libcudacxx_path,
ctk_path,
nullptr);
}
CUresult cccl_device_three_way_partition_link_ltoir(
cccl_device_three_way_partition_build_result_t* build_ptr,
const void** input_blobs,
const size_t* input_sizes,
size_t num_inputs)
try
{
if (build_ptr == nullptr || build_ptr->payload == nullptr || build_ptr->payload_size == 0
|| build_ptr->payload_kind != CCCL_PAYLOAD_LTOIR)
{
return CUDA_ERROR_INVALID_VALUE;
}
const int cc_major = build_ptr->cc / 10;
const int cc_minor = build_ptr->cc % 10;
std::vector<const void*> all_blobs;
std::vector<size_t> all_sizes;
all_blobs.push_back(build_ptr->payload);
all_sizes.push_back(build_ptr->payload_size);
if (num_inputs > 0 && (input_blobs == nullptr || input_sizes == nullptr))
{
return CUDA_ERROR_INVALID_VALUE;
}
for (size_t i = 0; i < num_inputs; ++i)
{
if (input_blobs[i] == nullptr || input_sizes[i] == 0)
{
return CUDA_ERROR_INVALID_VALUE;
}
all_blobs.push_back(input_blobs[i]);
all_sizes.push_back(input_sizes[i]);
}
auto [cubin, cubin_size] = nvjitlink_link(all_blobs.data(), all_sizes.data(), all_blobs.size(), cc_major, cc_minor);
delete[] static_cast<char*>(build_ptr->payload);
build_ptr->payload = (void*) cubin.release();
build_ptr->payload_size = cubin_size;
build_ptr->payload_kind = CCCL_PAYLOAD_CUBIN;
return CUDA_SUCCESS;
}
catch (const std::exception& exc)
{
printf("\nEXCEPTION in cccl_device_three_way_partition_link_ltoir(): %s\n", exc.what());
return CUDA_ERROR_UNKNOWN;
}
CUresult cccl_device_three_way_partition_serialize(
const cccl_device_three_way_partition_build_result_t* build_ptr, void** out_buf, size_t* out_size)
try
{
if (build_ptr == nullptr || out_buf == nullptr || out_size == nullptr)
{
return CUDA_ERROR_INVALID_VALUE;
}
if (build_ptr->payload == nullptr || build_ptr->payload_size == 0 || build_ptr->runtime_policy == nullptr
|| build_ptr->runtime_policy_size == 0)
{
*out_buf = nullptr;
*out_size = 0;
return CUDA_ERROR_INVALID_VALUE;
}
*out_buf = nullptr;
*out_size = 0;
using namespace cccl::serialization;
buffer_writer w;
write_header(w, CCCL_SERIALIZATION_ALGO_THREE_WAY_PARTITION, build_ptr->payload_kind, build_ptr->cc);
w.write_blob(build_ptr->payload, build_ptr->payload_size);
w.write_blob(build_ptr->runtime_policy, build_ptr->runtime_policy_size);
w.write_cstring(build_ptr->three_way_partition_init_kernel_lowered_name);
w.write_cstring(build_ptr->three_way_partition_kernel_lowered_name);
w.release(out_buf, out_size);
return CUDA_SUCCESS;
}
catch (const std::exception& exc)
{
fflush(stderr);
printf("\nEXCEPTION in cccl_device_three_way_partition_serialize(): %s\n", exc.what());
fflush(stdout);
return CUDA_ERROR_UNKNOWN;
}
CUresult cccl_device_three_way_partition_deserialize(
cccl_device_three_way_partition_build_result_t* build_ptr, const void* buf, size_t size)
try
{
if (build_ptr == nullptr || buf == nullptr || size == 0)
{
return CUDA_ERROR_INVALID_VALUE;
}
using namespace cccl::serialization;
buffer_reader r{buf, size};
const auto h = read_and_validate_header(r, CCCL_SERIALIZATION_ALGO_THREE_WAY_PARTITION);
std::unique_ptr<char[]> payload_owner;
size_t payload_size = 0;
{
void* p = nullptr;
r.read_blob_new(&p, &payload_size);
payload_owner.reset(static_cast<char*>(p));
}
if (payload_size == 0)
{
throw std::runtime_error("serialization blob: empty payload");
}
std::unique_ptr<cub::detail::three_way_partition::policy_selector, decltype(&std::free)> policy(
static_cast<cub::detail::three_way_partition::policy_selector*>(
std::malloc(sizeof(cub::detail::three_way_partition::policy_selector))),
std::free);
if (!policy)
{
return CUDA_ERROR_OUT_OF_MEMORY;
}
r.read_into(policy.get(), sizeof(cub::detail::three_way_partition::policy_selector));
std::unique_ptr<char[]> n_init{r.read_cstring_dup()};
std::unique_ptr<char[]> n_kernel{r.read_cstring_dup()};
cccl_device_three_way_partition_build_result_t result{};
result.cc = static_cast<int>(h.cc);
result.payload_kind = static_cast<cccl_payload_kind_t>(h.payload_kind);
result.payload = payload_owner.release();
result.payload_size = payload_size;
result.runtime_policy = policy.release();
result.runtime_policy_size = sizeof(cub::detail::three_way_partition::policy_selector);
result.three_way_partition_init_kernel_lowered_name = n_init.release();
result.three_way_partition_kernel_lowered_name = n_kernel.release();
*build_ptr = result;
return CUDA_SUCCESS;
}
catch (const std::exception& exc)
{
fflush(stderr);
printf("\nEXCEPTION in cccl_device_three_way_partition_deserialize(): %s\n", exc.what());
fflush(stdout);
return CUDA_ERROR_UNKNOWN;
}