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Related Concept Videos

Classification of Illness01:17

Classification of Illness

The meaning of illness is individualized to each person who experiences an alteration in health. In contrast, disease is a medical term indicating a pathological change in the structure and function of the body or mind. It is a condition that has specific symptoms and boundaries.
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A Metadata Extraction Approach for Clinical Case Reports to Enable Advanced Understanding of Biomedical Concepts
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Automatic inference of ICD-10 codes from German ophthalmologic physicians' letters using natural language processing.

D Böhringer1, P Angelova2, L Fuhrmann3

  • 1Eye Center of the University Hospital Freiburg, Medical Faculty of the Albert-Ludwigs-University Freiburg, Freiburg, Germany. daniel.boehringer@uniklinik-freiburg.de.

Scientific Reports
|April 19, 2024
PubMed
Summary

This study presents an algorithm to automatically infer International Classification of Diseases, 10th Revision (ICD-10) codes from German physicians' letters, improving data for medical registries.

Keywords:
Artificial intelligenceClinical registriesDiagnosis codingNatural language processing

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Area of Science:

  • Medical Informatics
  • Natural Language Processing
  • Ophthalmology

Background:

  • Physicians' letters are rich diagnostic sources but often lack standardized codes.
  • Medical registries frequently require diagnosis codes like ICD-10 for data analysis.
  • Bridging the gap between free-text clinical notes and structured coding is crucial for data utilization.

Purpose of the Study:

  • To develop and evaluate an algorithm for inferring ICD-10 codes from German ophthalmologic physicians' letters.
  • To assess the accuracy of the algorithm across multiple clinical settings.
  • To determine the feasibility of using this method for improving registry data quality.

Main Methods:

  • An algorithm based on the nearest-neighbor method and a comprehensive ICD-10 thesaurus was developed.
  • The thesaurus was embedded into a Word2Vec space using anonymized physician reports.
  • The algorithm's performance was evaluated on diagnoses from 100 letters each at three German eye hospitals.

Main Results:

  • The algorithm successfully inferred ICD-10 codes from 2806 natural language diagnoses across three hospitals.
  • Accuracy reached 98% for fully correct codes and 99% for superordinate concepts in the first hospital.
  • Accuracy varied across hospitals, with 69%-91% correct codes, suggesting domain-specific embedding benefits.

Conclusions:

  • The developed algorithm effectively infers ICD-10 codes from German clinical text, particularly when trained on local data.
  • This method offers a viable solution for enhancing medical registry data quality.
  • The approach is adaptable to other languages and medical specialties.