masahi commented on issue #10223:
URL: https://github.com/apache/tvm/issues/10223#issuecomment-1052837280
https://github.com/apache/tvm/tree/main/gallery/how_to/tune_with_autoscheduler
has e2e examples of using the auto scheduler. But yeah, I don't expect it to
beat cuDNN, unless cuDNN im
masahi commented on issue #10223:
URL: https://github.com/apache/tvm/issues/10223#issuecomment-1051988687
oops good find! Can you send a PR? I can quickly merge it (if I do it you
need to wait until next week).
> Sadly I'm still just a few FPS shy of my performance target so I'll hav
masahi commented on issue #10223:
URL: https://github.com/apache/tvm/issues/10223#issuecomment-1039219766
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masahi commented on issue #10223:
URL: https://github.com/apache/tvm/issues/10223#issuecomment-1039788394
Are you sure you can run your PT model on cuda via cudnn? I'm getting
`CUDNN_STATUS_BAD_PARAM` when trying to run your model with cudnn. A WIP branch
https://github.com/apache/tvm/comp
masahi commented on issue #10223:
URL: https://github.com/apache/tvm/issues/10223#issuecomment-1039219766
Yeah, cuda backend doesnt support groups. You can try the cpu backend to
verify the result. If you are ok with using cudnn, I can quickly enable groups
support for cudnn conv transpose
masahi commented on issue #10223:
URL: https://github.com/apache/tvm/issues/10223#issuecomment-1037881211
Fixed in https://github.com/apache/tvm/pull/10235. You shouldn't be using
`torch.jit.optimize_for_inference`, it does no good for us and it even
introduces `aten::conv2d` etc that we d
masahi commented on issue #10223:
URL: https://github.com/apache/tvm/issues/10223#issuecomment-1037881211
Fixed in https://github.com/apache/tvm/pull/10235. You shouldn't be using
`torch.jit.optimize_for_inference`, it does no good for us and it even
introduces `aten::conv2d` etc that we d
masahi commented on issue #10223:
URL: https://github.com/apache/tvm/issues/10223#issuecomment-1036489478
Thanks, yes `conv2d_transpose` with group was only recently fixed and
supported in https://github.com/apache/tvm/pull/9465. I think we haven't
updated our PyTorch frontend to benefit f