StructuralLM: Structural Pre-training for Form Understanding
Chenliang Li, Bin Bi, Ming Yan, Wei Wang, Songfang Huang, Fei Huang, Luo Si
摘要
Large pre-trained language models achieve state-of-the-art results when fine-tuned on downstream NLP tasks. However, they almost exclusively focus on text-only representation, while neglecting cell-level layout information that is important for form image understanding. In this paper, we propose a new pre-training approach, StructuralLM, to jointly leverage cell and layout information from scanned documents. Specifically, we pre-train StructuralLM with two new designs to make the most of the interactions of cell and layout information: 1) each cell as a semantic unit; 2) classification of cell positions. The pre-trained StructuralLM achieves new state-of-the-art results in different types of downstream tasks, including form understanding (from 78.95 to 85.14), document visual question answering (from 72.59 to 83.94) and document image classification (from 94.43 to 96.08).
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引用它的顶会 Paper25
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- BROS: A Pre-trained Language Model Focusing on Text and Layout for Better Key Information Extraction from DocumentsTeakgyu Hong, Donghyun Kim, Mingi Ji, Wonseok Hwang 等AAAI 2022 · 被引用 186 次
- DiT: Self-supervised Pre-training for Document Image TransformerJunlong Li, Yiheng Xu, Tengchao Lv, Lei Cui 等ACM MM 2022 · 被引用 184 次
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- MarkupLM: Pre-training of Text and Markup Language for Visually Rich Document UnderstandingJunlong Li, Yiheng Xu, Lei Cui, Furu WeiACL 2022 · 被引用 75 次
它引用的顶会 Paper3
- LayoutLM: Pre-training of Text and Layout for Document Image UnderstandingYiheng Xu, Minghao Li, Lei Cui, Shaohan Huang 等KDD 2020 · 被引用 575 次
- StructBERT: Incorporating Language Structures into Pre-training for Deep Language UnderstandingWei Wang, Bin Bi, Ming Yan, Chen Wu 等ICLR 2020 · 被引用 297 次
- TRIE: End-to-End Text Reading and Information Extraction for Document UnderstandingPeng Zhang, Yunlu Xu, Zhanzhan Cheng, Shiliang Pu 等ACM MM 2020 · 被引用 113 次
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