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Masked Vision-Language Transformers for Scene Text Recognition

2022-11-09 10:28:23
Jie Wu, Ying Peng, Shengming Zhang, Weigang Qi, Jian Zhang

Abstract

Scene text recognition (STR) enables computers to recognize and read the text in various real-world scenes. Recent STR models benefit from taking linguistic information in addition to visual cues into consideration. We propose a novel Masked Vision-Language Transformers (MVLT) to capture both the explicit and the implicit linguistic information. Our encoder is a Vision Transformer, and our decoder is a multi-modal Transformer. MVLT is trained in two stages: in the first stage, we design a STR-tailored pretraining method based on a masking strategy; in the second stage, we fine-tune our model and adopt an iterative correction method to improve the performance. MVLT attains superior results compared to state-of-the-art STR models on several benchmarks. Our code and model are available at this https URL.

Abstract (translated)

URL

https://arxiv.org/abs/2211.04785

PDF

https://arxiv.org/pdf/2211.04785.pdf


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