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New framework improves automated ICD coding using multimodal data and LLM re-ranking

Researchers have developed a novel two-stage framework for automated ICD coding, addressing limitations in current methods. This new approach integrates multimodal patient data, including structured electronic health records and unstructured clinical notes, through a gated fusion mechanism. The first stage retrieves potential ICD codes using a dual-encoder retrieval model, while the second stage employs an LLM-based re-ranker to provide refined, ranked codes with explanations. Experiments indicate improved Micro-F1 and Precision scores compared to existing multimodal classifiers, suggesting a practical alternative for automated ICD coding. AI

IMPACT This research offers a more accurate and transparent method for automated ICD coding, potentially improving clinical research and billing processes.

RANK_REASON This is a research paper detailing a new framework for automated ICD coding. [lever_c_demoted from research: ic=1 ai=1.0]

Read on arXiv cs.IR (Information Retrieval) →

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New framework improves automated ICD coding using multimodal data and LLM re-ranking

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This is a research paper detailing a new framework for automated ICD coding. [lever_c_demoted from research: ic=1 ai=1.0]
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COVERAGE [1]

  1. arXiv cs.IR (Information Retrieval) TIER_1 English(EN) · Anuj Bohra ·

    Multimodal Dual-Encoder Retrieval for Automated ICD Coding

    Accurate International Classification of Diseases (ICD) coding is crucial for large-scale clinical research, documentation, and billing. There are three primary problems with current ICD prediction methods: (1) They are unable to comprehend multimodal patient data because they re…