Detecting Text in Natural Image with Connectionist Text Proposal Network. For details see paper.
Metric | Value |
---|---|
Type | Object detection |
GFlops | 55.813 |
MParams | 17.237 |
Source framework | TensorFlow* |
Image, name: image_tensor
, shape: [1x600x600x3], format: [BxHxWxC],
where:
- B - batch size
- H - image height
- W - image width
- C - number of channels
Expected color order: BGR. Mean values: [102.9801, 115.9465, 122.7717].
Image, name: Placeholder
, shape: [1x3x600x600], format: [BxCxHxW],
where:
- B - batch size
- C - number of channels
- H - image height
- W - image width
Expected color order: BGR.
-
Detection boxes, name:
rpn_bbox_pred/Reshape_1
, contains predicted regions, in format [BxHxWxA], where:- B - batch size
- H - image height
- W - image width
- A - vector of 4*N coordinates, where N is the number of detected anchors.
-
Probability, name:
Reshape_2
, contains probabilities for predicted regions in a [0,1] range in format [BxHxWxA], where:- B - batch size
- H - image height
- W - image width
- A - vector of 4*N coordinates, where N is the number of detected anchors.
-
Detection boxes, name:
rpn_bbox_pred/Reshape_1/Transpose
, shape: [1x40x18x18] contains predicted regions, format: [BxAxHxW], where:- B - batch size
- A - vector of 4*N coordinates, where N is the number of detected anchors.
- H - image height
- W - image width
-
Probability, name:
Reshape_2/Transpose
, shape: [1x20x18x18], contains probabilities for predicted regions in a[0,1] range in format [BxAxHxW], where:- B - batch size
- A - vector of 2*N class probabilities (0 class for background, 1 class for text), where N is the number of detected anchors.
- H - image height
- W - image width
The original model is distributed under the following license:
MIT License
Copyright (c) 2017 shaohui ruan
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