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3 months ago

Multi-modal Text Recognition Networks: Interactive Enhancements between Visual and Semantic Features

Byeonghu Na Yoonsik Kim Sungrae Park

Multi-modal Text Recognition Networks: Interactive Enhancements between Visual and Semantic Features

Abstract

Linguistic knowledge has brought great benefits to scene text recognition by providing semantics to refine character sequences. However, since linguistic knowledge has been applied individually on the output sequence, previous methods have not fully utilized the semantics to understand visual clues for text recognition. This paper introduces a novel method, called Multi-modAl Text Recognition Network (MATRN), that enables interactions between visual and semantic features for better recognition performances. Specifically, MATRN identifies visual and semantic feature pairs and encodes spatial information into semantic features. Based on the spatial encoding, visual and semantic features are enhanced by referring to related features in the other modality. Furthermore, MATRN stimulates combining semantic features into visual features by hiding visual clues related to the character in the training phase. Our experiments demonstrate that MATRN achieves state-of-the-art performances on seven benchmarks with large margins, while naive combinations of two modalities show less-effective improvements. Further ablative studies prove the effectiveness of our proposed components. Our implementation is available at https://github.com/wp03052/MATRN.

Code Repositories

byeonghu-na/matrn
pytorch
Mentioned in GitHub
wp03052/MATRN
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
scene-text-recognition-on-cute80MATRN
Accuracy: 93.5
scene-text-recognition-on-icdar2013MATRN
Accuracy: 97.9
scene-text-recognition-on-icdar2015MATRN
Accuracy: 86.6
scene-text-recognition-on-iiit5kMATRN
Accuracy: 96.6
scene-text-recognition-on-svtMATRN
Accuracy: 95
scene-text-recognition-on-svtpMATRN
Accuracy: 90.6

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Multi-modal Text Recognition Networks: Interactive Enhancements between Visual and Semantic Features | Papers | HyperAI