Automatic ICD Coding via Interactive Shared Representation Networks with Self-distillation Mechanism
Tong Zhou, Pengfei Cao, Yubo Chen, Kang Liu, Jun Zhao, Kun Niu, Weifeng Chong, Shengping Liu
Abstract
The ICD coding task aims at assigning codes of the International Classification of Diseases in clinical notes. Since manual coding is very laborious and prone to errors, many methods have been proposed for the automatic ICD coding task. However, existing works either ignore the long-tail of code frequency or the noisy clinical notes. To address the above issues, we propose an Interactive Shared Representation Network with Self-Distillation mechanism. Specifically, an interactive shared representation network targets building connections among codes while modeling the cooccurrence, consequently alleviating the longtail problem. Moreover, to cope with the noisy text issue, we encourage the model to focus on the clinical note's noteworthy part and extract valuable information through a self-distillation learning mechanism. Experimental results on two MIMIC datasets demonstrate the effectiveness of our method.
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Install the CLIlune papers fulltext ee7ccabe-4e60-443e-be9c-a93aa3f2cdb8Cited by top-tier papers7
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Builds on3
- ICD Coding from Clinical Text Using Multi-Filter Residual Convolutional Neural NetworkFei Li, Hong YuAAAI 2020 · 201 citations
- HyperCore: Hyperbolic and Co-graph Representation for Automatic ICD CodingPengfei Cao, Yubo Chen, Kang Liu, Jun Zhao et al.ACL 2020 · 104 citations
- A Shared Multi-Attention Framework for Multi-Label Zero-Shot LearningDat Huynh, Ehsan ElhamifarCVPR 2020
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