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Report for googlenet

Model params 51 MB

Estimates for a single full pass of model at input size 224 x 224:

  • Memory required for features: 26 MB
  • Flops: 2 GFLOPs

Estimates are given below of the burden of computing the icp9_out features in the network for different input sizes using a batch size of 128:

input size feature size feature memory flops
112 x 112 3 x 3 x 1024 805 MB 50 GFLOPs
224 x 224 7 x 7 x 1024 3 GB 205 GFLOPs
336 x 336 10 x 10 x 1024 7 GB 457 GFLOPs
448 x 448 14 x 14 x 1024 13 GB 819 GFLOPs
560 x 560 17 x 17 x 1024 20 GB 1 TFLOPs
672 x 672 21 x 21 x 1024 29 GB 2 TFLOPs

A rough outline of where in the network memory is allocated to parameters and features and where the greatest computational cost lies is shown below. The x-axis does not show labels (it becomes hard to read for networks containing hundreds of layers) - it should be interpreted as depicting increasing depth from left to right. The goal is simply to give some idea of the overall profile of the model:

googlenet profile