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Benchmarking various Computer Vision models on TinyImageNet Dataset

License: MIT License

Python 100.00%
tinyimagenet benchmark tensorflow python implementation deep-learning paper paper-implementations learning-rate classifier

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tinyimagenet-benchmarks's Issues

Batch norm in Mobilenet v2.

As per the architecture definition provided here, it is shown that the batch normalization is used in inverted-residual blocks as below.

  1. Bottleneck layer which is normal convolutional layer is equipped with batch norm
  2. Depthwise layer is also equipped with batch norm
  3. Pointwise layer is also equipped with batch norm.
    Even in their paper they mentioned that they use batch norm after every layer.

But when we download a pretrained model from tensorflow and visualize it in Netron, it is as per below.

  1. Bottleneck layer doesnt use batch norm instead use bias.
  2. Depthwise is equipped with batch norm.
  3. Pointwise layer doesnt use batch norm instead use bias.

So this make a huge difference in number of parameters and final accuracy.

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