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Test on TVM

Supported Models

Model Codebase Model config
RetinaNet MMDetection config
Faster R-CNN MMDetection config
YOLOv3 MMDetection config
YOLOX MMDetection config
Mask R-CNN MMDetection config
SSD MMDetection config
ResNet MMPretrain config
ResNeXt MMPretrain config
SE-ResNet MMPretrain config
MobileNetV2 MMPretrain config
ShuffleNetV1 MMPretrain config
ShuffleNetV2 MMPretrain config
VisionTransformer MMPretrain config
FCN MMSegmentation config
PSPNet MMSegmentation config
DeepLabV3 MMSegmentation config
DeepLabV3+ MMSegmentation config
UNet MMSegmentation config

The table above list the models that we have tested. Models not listed on the table might still be able to converted. Please have a try.

Test

  • Ubuntu 20.04

  • tvm 0.9.0

mmpretrain metric PyTorch TVM
ResNet-18 top-1 69.90 69.90
ResNeXt-50 top-1 77.90 77.90
ShuffleNet V2 top-1 69.55 69.55
MobileNet V2 top-1 71.86 71.86
mmdet(*) metric PyTorch TVM
SSD box AP 25.5 25.5

*: We only test model on ssd since dynamic shape is not supported for now.

mmseg metric PyTorch TVM
FCN mIoU 72.25 72.36
PSPNet mIoU 78.55 77.90
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