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resnet-50.md

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resnet-50

Use Case and High-Level Description

ResNet-50

Example

Specification

Metric Value
Type Classification
GFLOPs 6.996
MParams 25.53
Source framework Caffe*

Accuracy

Performance

Input

Original Model

Image, name: data, shape: 1,3,224,224, format is B,C,H,W where:

  • B - batch size
  • C - channel
  • H - height
  • W - width

Channel order is BGR. Mean values: [104, 117, 123].

Converted Model

Image, name: data, shape: 1,3,224,224, format is B,C,H,W where:

  • B - batch size
  • C - channel
  • H - height
  • W - width

Channel order is BGR.

Output

Original Model

Object classifier according to ImageNet classes, name: prob, shape: 1,1000, output data format is B,C where:

  • B - batch size
  • C - predicted probabilities for each class in [0, 1] range

Converted Model

Object classifier according to ImageNet classes, name: prob, shape: 1,1000, output data format is B,C where:

  • B - batch size
  • C - predicted probabilities for each class in [0, 1] range

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