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
123 lines
3.9 KiB
Plaintext
123 lines
3.9 KiB
Plaintext
#include <thrust/extrema.h>
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#include <thrust/functional.h>
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#include <thrust/iterator/retag.h>
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#include <thrust/iterator/transform_iterator.h>
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#include <cuda/iterator>
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#include <unittest/unittest.h>
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template <class Vector>
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void TestMaxElementSimple()
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{
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using T = typename Vector::value_type;
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Vector data{3, 5, 1, 2, 5, 1};
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ASSERT_EQUAL(*thrust::max_element(data.begin(), data.end()), 5);
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ASSERT_EQUAL(thrust::max_element(data.begin(), data.end()) - data.begin(), 1);
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ASSERT_EQUAL(*thrust::max_element(data.begin(), data.end(), ::cuda::std::greater<T>()), 1);
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ASSERT_EQUAL(thrust::max_element(data.begin(), data.end(), ::cuda::std::greater<T>()) - data.begin(), 2);
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}
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DECLARE_VECTOR_UNITTEST(TestMaxElementSimple);
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template <class Vector>
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void TestMaxElementWithTransform()
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{
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using T = typename Vector::value_type;
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Vector data{3, 5, 1, 2, 5, 1};
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ASSERT_EQUAL(*thrust::max_element(thrust::make_transform_iterator(data.begin(), ::cuda::std::negate<T>()),
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thrust::make_transform_iterator(data.end(), ::cuda::std::negate<T>())),
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-1);
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ASSERT_EQUAL(*thrust::max_element(thrust::make_transform_iterator(data.begin(), ::cuda::std::negate<T>()),
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thrust::make_transform_iterator(data.end(), ::cuda::std::negate<T>()),
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::cuda::std::greater<T>()),
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-5);
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}
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DECLARE_VECTOR_UNITTEST(TestMaxElementWithTransform);
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template <typename T>
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void TestMaxElement(const size_t n)
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{
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thrust::host_vector<T> h_data = unittest::random_samples<T>(n);
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thrust::device_vector<T> d_data = h_data;
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typename thrust::host_vector<T>::iterator h_max = thrust::max_element(h_data.begin(), h_data.end());
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typename thrust::device_vector<T>::iterator d_max = thrust::max_element(d_data.begin(), d_data.end());
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ASSERT_EQUAL(h_max - h_data.begin(), d_max - d_data.begin());
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typename thrust::host_vector<T>::iterator h_min =
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thrust::max_element(h_data.begin(), h_data.end(), ::cuda::std::greater<T>());
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typename thrust::device_vector<T>::iterator d_min =
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thrust::max_element(d_data.begin(), d_data.end(), ::cuda::std::greater<T>());
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ASSERT_EQUAL(h_min - h_data.begin(), d_min - d_data.begin());
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}
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DECLARE_VARIABLE_UNITTEST(TestMaxElement);
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template <typename ForwardIterator>
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ForwardIterator max_element(my_system& system, ForwardIterator first, ForwardIterator)
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{
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system.validate_dispatch();
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return first;
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}
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void TestMaxElementDispatchExplicit()
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{
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thrust::device_vector<int> vec(1);
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my_system sys(0);
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thrust::max_element(sys, vec.begin(), vec.end());
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ASSERT_EQUAL(true, sys.is_valid());
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}
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DECLARE_UNITTEST(TestMaxElementDispatchExplicit);
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template <typename ForwardIterator>
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ForwardIterator max_element(my_tag, ForwardIterator first, ForwardIterator)
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{
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*first = 13;
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return first;
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}
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void TestMaxElementDispatchImplicit()
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{
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thrust::device_vector<int> vec(1);
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thrust::max_element(thrust::retag<my_tag>(vec.begin()), thrust::retag<my_tag>(vec.end()));
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ASSERT_EQUAL(13, vec.front());
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}
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DECLARE_UNITTEST(TestMaxElementDispatchImplicit);
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void TestMaxElementWithBigIndexesHelper(int magnitude)
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{
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thrust::counting_iterator<long long> begin(1);
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thrust::counting_iterator<long long> end = begin + (1ll << magnitude);
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ASSERT_EQUAL(::cuda::std::distance(begin, end), 1ll << magnitude);
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ASSERT_EQUAL(*thrust::max_element(thrust::device, begin, end), (1ll << magnitude));
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}
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void TestMaxElementWithBigIndexes()
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{
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TestMaxElementWithBigIndexesHelper(30);
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#ifndef THRUST_FORCE_32_BIT_OFFSET_TYPE
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TestMaxElementWithBigIndexesHelper(31);
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TestMaxElementWithBigIndexesHelper(32);
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TestMaxElementWithBigIndexesHelper(33);
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#endif
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}
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DECLARE_UNITTEST(TestMaxElementWithBigIndexes);
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void TestMaxElementCudaIterator()
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{
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auto pos = thrust::max_element(thrust::device, cuda::counting_iterator{0}, cuda::counting_iterator{0} + 100);
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ASSERT_EQUAL(*pos, 99);
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}
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DECLARE_UNITTEST(TestMaxElementCudaIterator);
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