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__global__ void three_nn_kernel_fast(int b, int n, int m, const float *__restrict__ unknown, | |
const float *__restrict__ known, float *__restrict__ dist2, int *__restrict__ idx) { | |
// unknown: (B, N, 3) | |
// known: (B, M, 3) | |
// output: | |
// dist2: (B, N, 3) | |
// idx: (B, N, 3) | |
int bs_idx = blockIdx.y; | |
int pt_idx = blockIdx.x * blockDim.x + threadIdx.x; | |
if (bs_idx >= b || pt_idx >= n) return; | |
unknown += bs_idx * n * 3 + pt_idx * 3; | |
known += bs_idx * m * 3; | |
dist2 += bs_idx * n * 3 + pt_idx * 3; | |
idx += bs_idx * n * 3 + pt_idx * 3; | |
float ux = unknown[0]; | |
float uy = unknown[1]; | |
float uz = unknown[2]; | |
double best1 = 1e40, best2 = 1e40, best3 = 1e40; | |
int besti1 = 0, besti2 = 0, besti3 = 0; | |
for (int k = 0; k < m; ++k) { | |
float x = known[k * 3 + 0]; | |
float y = known[k * 3 + 1]; | |
float z = known[k * 3 + 2]; | |
float d = (ux - x) * (ux - x) + (uy - y) * (uy - y) + (uz - z) * (uz - z); | |
if (d < best1) { | |
best3 = best2; besti3 = besti2; | |
best2 = best1; besti2 = besti1; | |
best1 = d; besti1 = k; | |
} | |
else if (d < best2) { | |
best3 = best2; besti3 = besti2; | |
best2 = d; besti2 = k; | |
} | |
else if (d < best3) { | |
best3 = d; besti3 = k; | |
} | |
} | |
dist2[0] = best1; dist2[1] = best2; dist2[2] = best3; | |
idx[0] = besti1; idx[1] = besti2; idx[2] = besti3; | |
} | |
void three_nn_kernel_launcher_fast(int b, int n, int m, const float *unknown, | |
const float *known, float *dist2, int *idx, cudaStream_t stream) { | |
// unknown: (B, N, 3) | |
// known: (B, M, 3) | |
// output: | |
// dist2: (B, N, 3) | |
// idx: (B, N, 3) | |
cudaError_t err; | |
dim3 blocks(DIVUP(n, THREADS_PER_BLOCK), b); // blockIdx.x(col), blockIdx.y(row) | |
dim3 threads(THREADS_PER_BLOCK); | |
three_nn_kernel_fast<<<blocks, threads, 0, stream>>>(b, n, m, unknown, known, dist2, idx); | |
err = cudaGetLastError(); | |
if (cudaSuccess != err) { | |
fprintf(stderr, "CUDA kernel failed : %s\n", cudaGetErrorString(err)); | |
exit(-1); | |
} | |
} | |
__global__ void three_interpolate_kernel_fast(int b, int c, int m, int n, const float *__restrict__ points, | |
const int *__restrict__ idx, const float *__restrict__ weight, float *__restrict__ out) { | |
// points: (B, C, M) | |
// idx: (B, N, 3) | |
// weight: (B, N, 3) | |
// output: | |
// out: (B, C, N) | |
int bs_idx = blockIdx.z; | |
int c_idx = blockIdx.y; | |
int pt_idx = blockIdx.x * blockDim.x + threadIdx.x; | |
if (bs_idx >= b || c_idx >= c || pt_idx >= n) return; | |
weight += bs_idx * n * 3 + pt_idx * 3; | |
points += bs_idx * c * m + c_idx * m; | |
idx += bs_idx * n * 3 + pt_idx * 3; | |
out += bs_idx * c * n + c_idx * n; | |
out[pt_idx] = weight[0] * points[idx[0]] + weight[1] * points[idx[1]] + weight[2] * points[idx[2]]; | |
} | |
void three_interpolate_kernel_launcher_fast(int b, int c, int m, int n, | |
const float *points, const int *idx, const float *weight, float *out, cudaStream_t stream) { | |
// points: (B, C, M) | |
// idx: (B, N, 3) | |
// weight: (B, N, 3) | |
// output: | |
// out: (B, C, N) | |
cudaError_t err; | |
dim3 blocks(DIVUP(n, THREADS_PER_BLOCK), c, b); // blockIdx.x(col), blockIdx.y(row) | |
dim3 threads(THREADS_PER_BLOCK); | |
three_interpolate_kernel_fast<<<blocks, threads, 0, stream>>>(b, c, m, n, points, idx, weight, out); | |
err = cudaGetLastError(); | |
if (cudaSuccess != err) { | |
fprintf(stderr, "CUDA kernel failed : %s\n", cudaGetErrorString(err)); | |
exit(-1); | |
} | |
} | |
__global__ void three_interpolate_grad_kernel_fast(int b, int c, int n, int m, const float *__restrict__ grad_out, | |
const int *__restrict__ idx, const float *__restrict__ weight, float *__restrict__ grad_points) { | |
// grad_out: (B, C, N) | |
// weight: (B, N, 3) | |
// output: | |
// grad_points: (B, C, M) | |
int bs_idx = blockIdx.z; | |
int c_idx = blockIdx.y; | |
int pt_idx = blockIdx.x * blockDim.x + threadIdx.x; | |
if (bs_idx >= b || c_idx >= c || pt_idx >= n) return; | |
grad_out += bs_idx * c * n + c_idx * n + pt_idx; | |
weight += bs_idx * n * 3 + pt_idx * 3; | |
grad_points += bs_idx * c * m + c_idx * m; | |
idx += bs_idx * n * 3 + pt_idx * 3; | |
atomicAdd(grad_points + idx[0], grad_out[0] * weight[0]); | |
atomicAdd(grad_points + idx[1], grad_out[0] * weight[1]); | |
atomicAdd(grad_points + idx[2], grad_out[0] * weight[2]); | |
} | |
void three_interpolate_grad_kernel_launcher_fast(int b, int c, int n, int m, const float *grad_out, | |
const int *idx, const float *weight, float *grad_points, cudaStream_t stream) { | |
// grad_out: (B, C, N) | |
// weight: (B, N, 3) | |
// output: | |
// grad_points: (B, C, M) | |
cudaError_t err; | |
dim3 blocks(DIVUP(n, THREADS_PER_BLOCK), c, b); // blockIdx.x(col), blockIdx.y(row) | |
dim3 threads(THREADS_PER_BLOCK); | |
three_interpolate_grad_kernel_fast<<<blocks, threads, 0, stream>>>(b, c, n, m, grad_out, idx, weight, grad_points); | |
err = cudaGetLastError(); | |
if (cudaSuccess != err) { | |
fprintf(stderr, "CUDA kernel failed : %s\n", cudaGetErrorString(err)); | |
exit(-1); | |
} | |
} |