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Main Authors: Munzir, Syed I., Hier, Daniel B., Carrithers, Michael D.
Format: Preprint
Published: 2024
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Online Access:https://arxiv.org/abs/2403.05920
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author Munzir, Syed I.
Hier, Daniel B.
Carrithers, Michael D.
author_facet Munzir, Syed I.
Hier, Daniel B.
Carrithers, Michael D.
contents Deep phenotyping is the detailed description of patient signs and symptoms using concepts from an ontology. The deep phenotyping of the numerous physician notes in electronic health records requires high throughput methods. Over the past thirty years, progress toward making high throughput phenotyping feasible. In this study, we demonstrate that a large language model and a hybrid NLP model (combining word vectors with a machine learning classifier) can perform high throughput phenotyping on physician notes with high accuracy. Large language models will likely emerge as the preferred method for high throughput deep phenotyping of physician notes.
format Preprint
id arxiv_https___arxiv_org_abs_2403_05920
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle High Throughput Phenotyping of Physician Notes with Large Language and Hybrid NLP Models
Munzir, Syed I.
Hier, Daniel B.
Carrithers, Michael D.
Computation and Language
Artificial Intelligence
I.2; J.2
Deep phenotyping is the detailed description of patient signs and symptoms using concepts from an ontology. The deep phenotyping of the numerous physician notes in electronic health records requires high throughput methods. Over the past thirty years, progress toward making high throughput phenotyping feasible. In this study, we demonstrate that a large language model and a hybrid NLP model (combining word vectors with a machine learning classifier) can perform high throughput phenotyping on physician notes with high accuracy. Large language models will likely emerge as the preferred method for high throughput deep phenotyping of physician notes.
title High Throughput Phenotyping of Physician Notes with Large Language and Hybrid NLP Models
topic Computation and Language
Artificial Intelligence
I.2; J.2
url https://arxiv.org/abs/2403.05920