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4 months ago

Robust Scene Text Recognition with Automatic Rectification

Baoguang Shi; Xinggang Wang; Pengyuan Lyu; Cong Yao; Xiang Bai

Robust Scene Text Recognition with Automatic Rectification

Abstract

Recognizing text in natural images is a challenging task with many unsolved problems. Different from those in documents, words in natural images often possess irregular shapes, which are caused by perspective distortion, curved character placement, etc. We propose RARE (Robust text recognizer with Automatic REctification), a recognition model that is robust to irregular text. RARE is a specially-designed deep neural network, which consists of a Spatial Transformer Network (STN) and a Sequence Recognition Network (SRN). In testing, an image is firstly rectified via a predicted Thin-Plate-Spline (TPS) transformation, into a more "readable" image for the following SRN, which recognizes text through a sequence recognition approach. We show that the model is able to recognize several types of irregular text, including perspective text and curved text. RARE is end-to-end trainable, requiring only images and associated text labels, making it convenient to train and deploy the model in practical systems. State-of-the-art or highly-competitive performance achieved on several benchmarks well demonstrates the effectiveness of the proposed model.

Code Repositories

iwyoo/tf_thinplatespline
tf
Mentioned in GitHub
WarBean/tps_stn_pytorch
pytorch
Mentioned in GitHub
PaddlePaddle/PaddleOCR
paddle
Mentioned in GitHub
Media-Smart/vedastr
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
scene-text-recognition-on-icdar-2003RARE
Accuracy: 90.1
scene-text-recognition-on-icdar2013RARE
Accuracy: 88.6
scene-text-recognition-on-svtRARE
Accuracy: 81.9

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