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What’s in a Note? Unpacking Predictive Value in Clinical Note Representations

Electronic Health Records (EHRs) have seen a rapid increase in adoption during the last decade. The narrative prose contained in clinical notes is unstructured and unlocking its full potential has proved challenging. Many studies incorporating clinical notes have applied simple information extractio...

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Detalles Bibliográficos
Autores principales: Boag, Willie, Doss, Dustin, Naumann, Tristan, Szolovits, Peter
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Medical Informatics Association 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5961801/
https://www.ncbi.nlm.nih.gov/pubmed/29888035
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author Boag, Willie
Doss, Dustin
Naumann, Tristan
Szolovits, Peter
author_facet Boag, Willie
Doss, Dustin
Naumann, Tristan
Szolovits, Peter
author_sort Boag, Willie
collection PubMed
description Electronic Health Records (EHRs) have seen a rapid increase in adoption during the last decade. The narrative prose contained in clinical notes is unstructured and unlocking its full potential has proved challenging. Many studies incorporating clinical notes have applied simple information extraction models to build representations that enhance a downstream clinical prediction task, such as mortality or readmission. Improved predictive performance suggests a “good” representation. However, these extrinsic evaluations are blind to most of the insight contained in the notes. In order to better understand the power of expressive clinical prose, we investigate both intrinsic and extrinsic methods for understanding several common note representations. To ensure replicability and to support the clinical modeling community, we run all experiments on publicly-available data and provide our code.
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spelling pubmed-59618012018-06-08 What’s in a Note? Unpacking Predictive Value in Clinical Note Representations Boag, Willie Doss, Dustin Naumann, Tristan Szolovits, Peter AMIA Jt Summits Transl Sci Proc Articles Electronic Health Records (EHRs) have seen a rapid increase in adoption during the last decade. The narrative prose contained in clinical notes is unstructured and unlocking its full potential has proved challenging. Many studies incorporating clinical notes have applied simple information extraction models to build representations that enhance a downstream clinical prediction task, such as mortality or readmission. Improved predictive performance suggests a “good” representation. However, these extrinsic evaluations are blind to most of the insight contained in the notes. In order to better understand the power of expressive clinical prose, we investigate both intrinsic and extrinsic methods for understanding several common note representations. To ensure replicability and to support the clinical modeling community, we run all experiments on publicly-available data and provide our code. American Medical Informatics Association 2018-05-18 /pmc/articles/PMC5961801/ /pubmed/29888035 Text en ©2018 AMIA - All rights reserved. This is an Open Access article: verbatim copying and redistribution of this article are permitted in all media for any purpose
spellingShingle Articles
Boag, Willie
Doss, Dustin
Naumann, Tristan
Szolovits, Peter
What’s in a Note? Unpacking Predictive Value in Clinical Note Representations
title What’s in a Note? Unpacking Predictive Value in Clinical Note Representations
title_full What’s in a Note? Unpacking Predictive Value in Clinical Note Representations
title_fullStr What’s in a Note? Unpacking Predictive Value in Clinical Note Representations
title_full_unstemmed What’s in a Note? Unpacking Predictive Value in Clinical Note Representations
title_short What’s in a Note? Unpacking Predictive Value in Clinical Note Representations
title_sort what’s in a note? unpacking predictive value in clinical note representations
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5961801/
https://www.ncbi.nlm.nih.gov/pubmed/29888035
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