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"""This file is for benchmark data loading process. It can also be used to |
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refresh the memcached cache. The command line to run this file is: |
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$ python -m cProfile -o program.prof tools/analysis/benchmark_processing.py |
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configs/task/method/[config filename] |
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Note: When debugging, the `workers_per_gpu` in the config should be set to 0 |
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during benchmark. |
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It use cProfile to record cpu running time and output to program.prof |
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To visualize cProfile output program.prof, use Snakeviz and run: |
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$ snakeviz program.prof |
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""" |
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import argparse |
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import mmcv |
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from mmcv import Config |
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from mmdet.datasets import build_dataloader |
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from mmocr.datasets import build_dataset |
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assert build_dataset is not None |
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def main(): |
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parser = argparse.ArgumentParser(description='Benchmark data loading') |
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parser.add_argument('config', help='Train config file path.') |
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args = parser.parse_args() |
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cfg = Config.fromfile(args.config) |
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dataset = build_dataset(cfg.data.train) |
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if 'imgs_per_gpu' in cfg.data: |
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cfg.data.samples_per_gpu = cfg.data.imgs_per_gpu |
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data_loader = build_dataloader( |
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dataset, |
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cfg.data.samples_per_gpu, |
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cfg.data.workers_per_gpu, |
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1, |
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dist=False, |
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seed=None) |
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prog_bar = mmcv.ProgressBar( |
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len(dataset) - 5 * cfg.data.samples_per_gpu, start=False) |
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for i, data in enumerate(data_loader): |
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if i == 5: |
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prog_bar.start() |
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for _ in range(len(data['img'])): |
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if i < 5: |
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continue |
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prog_bar.update() |
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if __name__ == '__main__': |
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main() |
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