[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
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cccl_upstream/cub/test/test_nvtx_disabled.cu
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cccl_upstream/cub/test/test_nvtx_disabled.cu
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#define _CCCL_BEFORE_NVTX_RANGE_SCOPE(name) static_assert(false);
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#define CCCL_DISABLE_NVTX
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#include <cub/device/device_for.cuh>
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#include <cuda/iterator>
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#include <cuda/std/functional>
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#if defined(CCCL_DISABLE_NVTX) && defined(NVTX_VERSION)
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# error "NVTX was included somewhere even though it is turned off via CCCL_DISABLE_NVTX"
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#endif // defined(CCCL_DISABLE_NVTX) && defined(NVTX_VERSION)
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int main()
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{
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cuda::counting_iterator<int> it{0};
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cub::DeviceFor::ForEach(it, it + 16, ::cuda::std::negate<int>{});
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cudaDeviceSynchronize();
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}
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