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#define BOX_SIZE 1024 |
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#include "cuda_runtime.h" |
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#include "device_launch_parameters.h" |
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#include "simple_knn.h" |
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#include <cub/cub.cuh> |
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#include <cub/device/device_radix_sort.cuh> |
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#include <vector> |
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#include <cuda_runtime_api.h> |
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#include <thrust/device_vector.h> |
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#include <thrust/sequence.h> |
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#define __CUDACC__ |
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#include <cooperative_groups.h> |
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#include <cooperative_groups/reduce.h> |
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namespace cg = cooperative_groups; |
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struct CustomMin |
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{ |
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__device__ __forceinline__ |
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float3 operator()(const float3& a, const float3& b) const { |
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return { min(a.x, b.x), min(a.y, b.y), min(a.z, b.z) }; |
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} |
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}; |
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struct CustomMax |
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{ |
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__device__ __forceinline__ |
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float3 operator()(const float3& a, const float3& b) const { |
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return { max(a.x, b.x), max(a.y, b.y), max(a.z, b.z) }; |
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} |
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}; |
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__host__ __device__ uint32_t prepMorton(uint32_t x) |
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{ |
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x = (x | (x << 16)) & 0x030000FF; |
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x = (x | (x << 8)) & 0x0300F00F; |
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x = (x | (x << 4)) & 0x030C30C3; |
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x = (x | (x << 2)) & 0x09249249; |
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return x; |
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} |
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__host__ __device__ uint32_t coord2Morton(float3 coord, float3 minn, float3 maxx) |
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{ |
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uint32_t x = prepMorton(((coord.x - minn.x) / (maxx.x - minn.x)) * ((1 << 10) - 1)); |
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uint32_t y = prepMorton(((coord.y - minn.y) / (maxx.y - minn.y)) * ((1 << 10) - 1)); |
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uint32_t z = prepMorton(((coord.z - minn.z) / (maxx.z - minn.z)) * ((1 << 10) - 1)); |
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return x | (y << 1) | (z << 2); |
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} |
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__global__ void coord2Morton(int P, const float3* points, float3 minn, float3 maxx, uint32_t* codes) |
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{ |
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auto idx = cg::this_grid().thread_rank(); |
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if (idx >= P) |
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return; |
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codes[idx] = coord2Morton(points[idx], minn, maxx); |
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} |
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struct MinMax |
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{ |
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float3 minn; |
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float3 maxx; |
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}; |
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__global__ void boxMinMax(uint32_t P, float3* points, uint32_t* indices, MinMax* boxes) |
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{ |
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auto idx = cg::this_grid().thread_rank(); |
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MinMax me; |
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if (idx < P) |
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{ |
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me.minn = points[indices[idx]]; |
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me.maxx = points[indices[idx]]; |
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} |
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else |
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{ |
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me.minn = { FLT_MAX, FLT_MAX, FLT_MAX }; |
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me.maxx = { -FLT_MAX,-FLT_MAX,-FLT_MAX }; |
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} |
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__shared__ MinMax redResult[BOX_SIZE]; |
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for (int off = BOX_SIZE / 2; off >= 1; off /= 2) |
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{ |
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if (threadIdx.x < 2 * off) |
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redResult[threadIdx.x] = me; |
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__syncthreads(); |
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if (threadIdx.x < off) |
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{ |
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MinMax other = redResult[threadIdx.x + off]; |
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me.minn.x = min(me.minn.x, other.minn.x); |
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me.minn.y = min(me.minn.y, other.minn.y); |
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me.minn.z = min(me.minn.z, other.minn.z); |
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me.maxx.x = max(me.maxx.x, other.maxx.x); |
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me.maxx.y = max(me.maxx.y, other.maxx.y); |
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me.maxx.z = max(me.maxx.z, other.maxx.z); |
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} |
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__syncthreads(); |
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} |
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if (threadIdx.x == 0) |
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boxes[blockIdx.x] = me; |
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} |
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__device__ __host__ float distBoxPoint(const MinMax& box, const float3& p) |
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{ |
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float3 diff = { 0, 0, 0 }; |
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if (p.x < box.minn.x || p.x > box.maxx.x) |
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diff.x = min(abs(p.x - box.minn.x), abs(p.x - box.maxx.x)); |
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if (p.y < box.minn.y || p.y > box.maxx.y) |
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diff.y = min(abs(p.y - box.minn.y), abs(p.y - box.maxx.y)); |
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if (p.z < box.minn.z || p.z > box.maxx.z) |
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diff.z = min(abs(p.z - box.minn.z), abs(p.z - box.maxx.z)); |
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return diff.x * diff.x + diff.y * diff.y + diff.z * diff.z; |
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} |
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template<int K> |
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__device__ void updateKBest(const float3& ref, const float3& point, float* knn) |
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{ |
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float3 d = { point.x - ref.x, point.y - ref.y, point.z - ref.z }; |
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float dist = d.x * d.x + d.y * d.y + d.z * d.z; |
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for (int j = 0; j < K; j++) |
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{ |
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if (knn[j] > dist) |
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{ |
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float t = knn[j]; |
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knn[j] = dist; |
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dist = t; |
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} |
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} |
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} |
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__global__ void boxMeanDist(uint32_t P, float3* points, uint32_t* indices, MinMax* boxes, float* dists) |
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{ |
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int idx = cg::this_grid().thread_rank(); |
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if (idx >= P) |
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return; |
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float3 point = points[indices[idx]]; |
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float best[3] = { FLT_MAX, FLT_MAX, FLT_MAX }; |
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for (int i = max(0, idx - 3); i <= min(P - 1, idx + 3); i++) |
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{ |
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if (i == idx) |
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continue; |
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updateKBest<3>(point, points[indices[i]], best); |
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} |
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float reject = best[2]; |
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best[0] = FLT_MAX; |
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best[1] = FLT_MAX; |
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best[2] = FLT_MAX; |
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for (int b = 0; b < (P + BOX_SIZE - 1) / BOX_SIZE; b++) |
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{ |
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MinMax box = boxes[b]; |
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float dist = distBoxPoint(box, point); |
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if (dist > reject || dist > best[2]) |
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continue; |
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for (int i = b * BOX_SIZE; i < min(P, (b + 1) * BOX_SIZE); i++) |
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{ |
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if (i == idx) |
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continue; |
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updateKBest<3>(point, points[indices[i]], best); |
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} |
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} |
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dists[indices[idx]] = (best[0] + best[1] + best[2]) / 3.0f; |
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} |
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void SimpleKNN::knn(int P, float3* points, float* meanDists) |
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{ |
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float3* result; |
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cudaMalloc(&result, sizeof(float3)); |
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size_t temp_storage_bytes; |
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float3 init = { 0, 0, 0 }, minn, maxx; |
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cub::DeviceReduce::Reduce(nullptr, temp_storage_bytes, points, result, P, CustomMin(), init); |
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thrust::device_vector<char> temp_storage(temp_storage_bytes); |
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cub::DeviceReduce::Reduce(temp_storage.data().get(), temp_storage_bytes, points, result, P, CustomMin(), init); |
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cudaMemcpy(&minn, result, sizeof(float3), cudaMemcpyDeviceToHost); |
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cub::DeviceReduce::Reduce(temp_storage.data().get(), temp_storage_bytes, points, result, P, CustomMax(), init); |
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cudaMemcpy(&maxx, result, sizeof(float3), cudaMemcpyDeviceToHost); |
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thrust::device_vector<uint32_t> morton(P); |
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thrust::device_vector<uint32_t> morton_sorted(P); |
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coord2Morton << <(P + 255) / 256, 256 >> > (P, points, minn, maxx, morton.data().get()); |
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thrust::device_vector<uint32_t> indices(P); |
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thrust::sequence(indices.begin(), indices.end()); |
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thrust::device_vector<uint32_t> indices_sorted(P); |
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cub::DeviceRadixSort::SortPairs(nullptr, temp_storage_bytes, morton.data().get(), morton_sorted.data().get(), indices.data().get(), indices_sorted.data().get(), P); |
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temp_storage.resize(temp_storage_bytes); |
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cub::DeviceRadixSort::SortPairs(temp_storage.data().get(), temp_storage_bytes, morton.data().get(), morton_sorted.data().get(), indices.data().get(), indices_sorted.data().get(), P); |
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uint32_t num_boxes = (P + BOX_SIZE - 1) / BOX_SIZE; |
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thrust::device_vector<MinMax> boxes(num_boxes); |
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boxMinMax << <num_boxes, BOX_SIZE >> > (P, points, indices_sorted.data().get(), boxes.data().get()); |
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boxMeanDist << <num_boxes, BOX_SIZE >> > (P, points, indices_sorted.data().get(), boxes.data().get(), meanDists); |
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cudaFree(result); |
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} |