2/ EfficientNets come to mind- I just have not been seeing the benefits relative to the classification performance. But this really applies generally, even within a set of architectures that have been trained the same way (FaceBook's wsl models, BiTM, etc).
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3/ In those cases, you just don't really know until you actually try. You may be surprised, I can tell you that much! So don't just pick the one with the highest Top-1 accuracy in ImageNet...
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