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project_6/cccl_upstream/thrust/testing/zip_iterator_scan.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

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#include <thrust/iterator/zip_iterator.h>
#include <thrust/scan.h>
#include <unittest/unittest.h>
#if THRUST_DEVICE_SYSTEM == THRUST_DEVICE_SYSTEM_CUDA
# include <unittest/cuda/testframework.h>
#endif
using namespace unittest;
template <typename Tuple>
struct TuplePlus
{
_CCCL_HOST_DEVICE Tuple operator()(Tuple x, Tuple y) const
{
return cuda::std::make_tuple(
cuda::std::get<0>(x) + cuda::std::get<0>(y), cuda::std::get<1>(x) + cuda::std::get<1>(y));
}
}; // end SumTuple
template <typename T>
struct TestZipIteratorScan
{
void operator()(const size_t n)
{
thrust::host_vector<T> h_data0 = unittest::random_samples<T>(n);
thrust::host_vector<T> h_data1 = unittest::random_samples<T>(n);
thrust::device_vector<T> d_data0 = h_data0;
thrust::device_vector<T> d_data1 = h_data1;
using Tuple = cuda::std::tuple<T, T>;
thrust::host_vector<Tuple> h_result(n);
thrust::device_vector<Tuple> d_result(n);
// inclusive_scan (tuple output)
thrust::inclusive_scan(
thrust::make_zip_iterator(h_data0.begin(), h_data1.begin()),
thrust::make_zip_iterator(h_data0.end(), h_data1.end()),
h_result.begin(),
TuplePlus<Tuple>());
thrust::inclusive_scan(
thrust::make_zip_iterator(d_data0.begin(), d_data1.begin()),
thrust::make_zip_iterator(d_data0.end(), d_data1.end()),
d_result.begin(),
TuplePlus<Tuple>());
ASSERT_EQUAL_QUIET(h_result, d_result);
// exclusive_scan (tuple output)
thrust::exclusive_scan(
thrust::make_zip_iterator(h_data0.begin(), h_data1.begin()),
thrust::make_zip_iterator(h_data0.end(), h_data1.end()),
h_result.begin(),
cuda::std::make_tuple<T, T>(0, 0),
TuplePlus<Tuple>());
thrust::exclusive_scan(
thrust::make_zip_iterator(d_data0.begin(), d_data1.begin()),
thrust::make_zip_iterator(d_data0.end(), d_data1.end()),
d_result.begin(),
cuda::std::make_tuple<T, T>(0, 0),
TuplePlus<Tuple>());
ASSERT_EQUAL_QUIET(h_result, d_result);
thrust::host_vector<T> h_result0(n);
thrust::host_vector<T> h_result1(n);
thrust::device_vector<T> d_result0(n);
thrust::device_vector<T> d_result1(n);
// inclusive_scan (zip_iterator output)
thrust::inclusive_scan(
thrust::make_zip_iterator(h_data0.begin(), h_data1.begin()),
thrust::make_zip_iterator(h_data0.end(), h_data1.end()),
thrust::make_zip_iterator(h_result0.begin(), h_result1.begin()),
TuplePlus<Tuple>());
thrust::inclusive_scan(
thrust::make_zip_iterator(d_data0.begin(), d_data1.begin()),
thrust::make_zip_iterator(d_data0.end(), d_data1.end()),
thrust::make_zip_iterator(d_result0.begin(), d_result1.begin()),
TuplePlus<Tuple>());
ASSERT_EQUAL_QUIET(h_result0, d_result0);
ASSERT_EQUAL_QUIET(h_result1, d_result1);
// exclusive_scan (zip_iterator output)
thrust::exclusive_scan(
thrust::make_zip_iterator(h_data0.begin(), h_data1.begin()),
thrust::make_zip_iterator(h_data0.end(), h_data1.end()),
thrust::make_zip_iterator(h_result0.begin(), h_result1.begin()),
cuda::std::make_tuple<T, T>(0, 0),
TuplePlus<Tuple>());
thrust::exclusive_scan(
thrust::make_zip_iterator(d_data0.begin(), d_data1.begin()),
thrust::make_zip_iterator(d_data0.end(), d_data1.end()),
thrust::make_zip_iterator(d_result0.begin(), d_result1.begin()),
cuda::std::make_tuple<T, T>(0, 0),
TuplePlus<Tuple>());
ASSERT_EQUAL_QUIET(h_result0, d_result0);
ASSERT_EQUAL_QUIET(h_result1, d_result1);
}
};
VariableUnitTest<TestZipIteratorScan, SignedIntegralTypes> TestZipIteratorScanInstance;