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Linking Free Text Documentation of Functioning and Disability to the ICF With Natural Language Processing.

Denis Newman-Griffis1,2, Jonathan Camacho Maldonado1, Pei-Shu Ho1

  • 1Rehabilitation Medicine Department, National Institutes of Health Clinical Center, Bethesda, MD, United States.

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|June 13, 2022
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Summary

Natural language processing (NLP) effectively extracts patient functioning details from clinical notes using the International Classification of Functioning, Disability, and Health (ICF) framework. This technology achieves over 80% accuracy, improving disability benefits management and clinical research.

Keywords:
ICFartificial intelligenceclinical codingdisability evaluationelectronic health recordsfunctional statusinternational classification of functioning disability and healthnatural language processing

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Area of Science:

  • Medical Informatics
  • Computational Linguistics
  • Rehabilitation Medicine

Background:

  • Electronic Health Records (EHRs) contain unstructured free text with valuable patient functioning information.
  • Extracting and organizing this data is crucial for clinical decision-making and research.
  • Natural Language Processing (NLP) is key to unlocking insights from clinical documentation.

Purpose of the Study:

  • To apply NLP methods to analyze patient functioning information within clinical documents.
  • To utilize the International Classification of Functioning, Disability, and Health (ICF) framework for classifying functioning data.
  • To develop and evaluate machine learning-based NLP models for automated ICF coding of functional status.

Main Methods:

  • Analysis of clinical documents from U.S. Social Security Administration disability benefits claims.
  • Annotation of functional status information by expert clinicians, focusing on mobility, self-care, and domestic life.
  • Training machine learning NLP models to automatically assign ICF categories to documented functional activities.

Main Results:

  • Extensive and varied patient functioning data identified in free-text records.
  • Over 2,400 Mobility and 3,900 Self-Care/Domestic Life activity mentions were annotated.
  • NLP models achieved over 80% macro-averaged F-measure, demonstrating strong performance in automated ICF coding.

Conclusions:

  • NLP facilitates the use of expressive clinical documentation for standardized, comparable data analysis.
  • The ICF provides a valuable, though practically limited, framework for organizing patient functioning information.
  • Developed ICF-based NLP technologies have significant implications for disability management, clinical care, and research.