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      A holistic representation guided attention network for scene text recognition

      , , , ,
      Neurocomputing
      Elsevier BV

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          An End-to-End Trainable Neural Network for Image-Based Sequence Recognition and Its Application to Scene Text Recognition

          Image-based sequence recognition has been a long-standing research topic in computer vision. In this paper, we investigate the problem of scene text recognition, which is among the most important and challenging tasks in image-based sequence recognition. A novel neural network architecture, which integrates feature extraction, sequence modeling and transcription into a unified framework, is proposed. Compared with previous systems for scene text recognition, the proposed architecture possesses four distinctive properties: (1) It is end-to-end trainable, in contrast to most of the existing algorithms whose components are separately trained and tuned. (2) It naturally handles sequences in arbitrary lengths, involving no character segmentation or horizontal scale normalization. (3) It is not confined to any predefined lexicon and achieves remarkable performances in both lexicon-free and lexicon-based scene text recognition tasks. (4) It generates an effective yet much smaller model, which is more practical for real-world application scenarios. The experiments on standard benchmarks, including the IIIT-5K, Street View Text and ICDAR datasets, demonstrate the superiority of the proposed algorithm over the prior arts. Moreover, the proposed algorithm performs well in the task of image-based music score recognition, which evidently verifies the generality of it.
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            Reading Text in the Wild with Convolutional Neural Networks

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              A robust arbitrary text detection system for natural scene images

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                Author and article information

                Journal
                Neurocomputing
                Neurocomputing
                Elsevier BV
                09252312
                November 2020
                November 2020
                : 414
                : 67-75
                Article
                10.1016/j.neucom.2020.07.010
                299cd5b4-8883-4d4c-a8ed-62a75a6616c0
                © 2020

                https://www.elsevier.com/tdm/userlicense/1.0/

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