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# Copyright (c) Meta Platforms, Inc. and affiliates. | |
# All rights reserved. | |
# | |
# This source code is licensed under the BSD-style license found in the | |
# LICENSE file in the root directory of this source tree. | |
from itertools import product | |
from fvcore.common.benchmark import benchmark | |
from tests.test_iou_box3d import TestIoU3D | |
def bm_iou_box3d() -> None: | |
# Realistic use cases | |
N = [30, 100] | |
M = [5, 10, 100] | |
kwargs_list = [] | |
test_cases = product(N, M) | |
for case in test_cases: | |
n, m = case | |
kwargs_list.append({"N": n, "M": m, "device": "cuda:0"}) | |
benchmark(TestIoU3D.iou, "3D_IOU", kwargs_list, warmup_iters=1) | |
# Comparison of C++/CUDA | |
kwargs_list = [] | |
N = [1, 4, 8, 16] | |
devices = ["cpu", "cuda:0"] | |
test_cases = product(N, N, devices) | |
for case in test_cases: | |
n, m, d = case | |
kwargs_list.append({"N": n, "M": m, "device": d}) | |
benchmark(TestIoU3D.iou, "3D_IOU", kwargs_list, warmup_iters=1) | |
# Naive PyTorch | |
N = [1, 4] | |
kwargs_list = [] | |
test_cases = product(N, N) | |
for case in test_cases: | |
n, m = case | |
kwargs_list.append({"N": n, "M": m, "device": "cuda:0"}) | |
benchmark(TestIoU3D.iou_naive, "3D_IOU_NAIVE", kwargs_list, warmup_iters=1) | |
# Sampling based method | |
num_samples = [2000, 5000] | |
kwargs_list = [] | |
test_cases = product(N, N, num_samples) | |
for case in test_cases: | |
n, m, s = case | |
kwargs_list.append({"N": n, "M": m, "num_samples": s, "device": "cuda:0"}) | |
benchmark(TestIoU3D.iou_sampling, "3D_IOU_SAMPLING", kwargs_list, warmup_iters=1) | |
if __name__ == "__main__": | |
bm_iou_box3d() | |