TRIE: End-to-End Text Reading and Information Extraction for Document Understanding
Peng Zhang, Yunlu Xu, Zhanzhan Cheng, Shiliang Pu, Jing Lu, Liang Qiao, Yi Niu, Fei Wu
Abstract
Since real-world ubiquitous documents (e.g., invoices, tickets, resumes and leaflets) contain rich information, automatic document image understanding has become a hot topic. Most existing works decouple the problem into two separate tasks, (1) text reading for detecting and recognizing texts in images and (2) information extraction for analyzing and extracting key elements from previously extracted plain text. However, they mainly focus on improving information extraction task, while neglecting the fact that text reading and information extraction are mutually correlated. In this paper, we propose a unified end-to-end text reading and information extraction network, where the two tasks can reinforce each other. Specifically, the multimodal visual and textual features of text reading are fused for information extraction and in turn, the semantics in information extraction contribute to the optimization of text reading. On three real-world datasets with diverse document images (from fixed layout to variable layout, from structured text to semi-structured text), our proposed method significantly outperforms the state-of-the-art methods in both efficiency and accuracy.
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Install the CLIlune papers fulltext 46b25bc0-7a70-41c9-b95c-6c15a81152e2Cited by top-tier papers17
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Builds on5
- LayoutLM: Pre-training of Text and Layout for Document Image UnderstandingYiheng Xu, Minghao Li, Lei Cui, Shaohan Huang et al.KDD 2020 · 575 citations
- TextDragon: An End-to-End Framework for Arbitrary Shaped Text SpottingWei Feng, Wenhao He, Fei Yin, Xu-Yao Zhang et al.ICCV 2019 · 212 citations
- All You Need Is Boundary: Toward Arbitrary-Shaped Text SpottingHao Wang, Pu Lu, Hui Zhang, Mingkun Yang et al.AAAI 2020 · 145 citations
- Text Perceptron: Towards End-to-End Arbitrary-Shaped Text SpottingLiang Qiao, Sanli Tang, Zhanzhan Cheng, Yunlu Xu et al.AAAI 2020 · 128 citations
- Representation Learning for Information Extraction from Form-like DocumentsBodhisattwa Prasad Majumder, Navneet Potti, Sandeep Tata, James Bradley Wendt et al.ACL 2020 · 111 citations
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