Created
July 21, 2022 21:42
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An example to reproduce the CUDNN kernel compilation leading to performance issues
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from torch import profiler | |
import torch | |
import torch.nn.functional as F | |
import argparse | |
def profile(input_shape, weight_shape, other_args, profile_folder): | |
activity_groups = [] | |
activity_groups.append(profiler.ProfilerActivity.CUDA) | |
activity_groups.append(profiler.ProfilerActivity.CPU) | |
profile_detailed = True | |
input = torch.ones(input_shape, dtype=torch.float32, device='cuda') | |
weight = torch.ones(weight_shape, dtype=torch.float32, device='cuda') | |
bias = other_args[0] | |
stride = other_args[1] | |
padding = other_args[2] | |
dilation = other_args[3] | |
groups = other_args[4] | |
with profiler.profile( | |
schedule=profiler.schedule(wait=0, warmup=0, active=1), | |
activities=activity_groups, | |
record_shapes=profile_detailed, | |
profile_memory=profile_detailed, | |
with_stack=profile_detailed, | |
with_flops=profile_detailed, | |
on_trace_ready=profiler.tensorboard_trace_handler(profile_folder) | |
) as prof: | |
x = F.conv2d(input, weight, bias, stride, padding, dilation, groups) | |
return x | |
if __name__ == "__main__": | |
parser = argparse.ArgumentParser(__doc__) | |
SUPPORT_BATCHSIZE_LIST = ['32', '64'] | |
parser.add_argument("--bs", choices=SUPPORT_BATCHSIZE_LIST, required=True, | |
help="Specify batch size to the test.") | |
parser.add_argument("--profile-folder", default="./logs", help="Save profiling model traces to this directory.") | |
args, extra_args = parser.parse_known_args() | |
if args.bs == '64': | |
input_shape = (64, 224, 112, 112) | |
other_args = [None, (2, 2), (1, 1), (1, 1), 2] | |
else: | |
input_shape = (32, 224, 56, 56) | |
other_args = [None, (1, 1), (1, 1), (1, 1), 2] | |
weight_shape = (224, 112, 3, 3) | |
profile(input_shape, weight_shape, other_args, args.profile_folder) |
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