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[ARTICLE · art-78056] src=arxiv.org ↗ pub= topic=machine-learning verified=true sentiment=↑ positive

Deep Label-Wise Attentive Temporal Convolutional Networks Improve Medical Coding

A deep neural model combining multi-layer temporal convolution networks with label-wise attention improves medical coding accuracy, achieving a 9% increase in F-1 scores and a 28% increase in recall over the previous state-of-the-art, according to a new arXiv preprint (2607.25129v1). The model addresses the challenge of aggregating information from different parts of clinical notes for each diagnosis and procedure code.

read1 min views1 publishedJul 29, 2026

arXiv:2607.25129v1 Announce Type: new Abstract: Medical coding is the task of assigning a set of diagnosis and procedure codes for a hospitalization using recorded notes. It requires aggregating information from different parts of the text and focus to different sections for each individual code, making it a very difficult problem even for professional human coders. We model the task as a multi-label text classification problem. To overcome the mentioned difficulties, we propose a deep neural model consisting of a multi-layer temporal convolution network (TCN) followed by label-wise attention. While multi-layer TCN helps extract a global document representation with the ability to learn relations over very long sequences, label-specific attention mechanism allows the model to focus on different aspects of the same document for each individual label. Our method achieves significantly better F-1 scores (9% increase) compared to the previous state-of-the-art model, with a remarkable increase in recall score (28% increase), which we believe is the more important metric for a clinical decision support setting.

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