Development and Evaluation of an Automated Approach to Detect Weight Abnormalities in Pediatric Weight Charts.


Journal

AMIA ... Annual Symposium proceedings. AMIA Symposium
ISSN: 1942-597X
Titre abrégé: AMIA Annu Symp Proc
Pays: United States
ID NLM: 101209213

Informations de publication

Date de publication:
2021
Historique:
entrez: 21 3 2022
pubmed: 22 3 2022
medline: 12 4 2022
Statut: epublish

Résumé

Inaccurate body weight measures can cause critical safety events in clinical settings as well as hindering utilization of clinical data for retrospective research. This study focused on developing a machine learning-based automated weight abnormality detector (AWAD) to analyze growth dynamics in pediatric weight charts and detect abnormal weight values. In two reference-standard based evaluation of real-world clinical data, the machine learning models showed good capacity for detecting weight abnormalities and they significantly outperformed the methods proposed in literature (p-value<0.05). A deep learning model with bi-directional long short-term memory networks achieved the best predictive performance, with AUCs ≥0.989 across the two datasets. The positive predictive value and sensitivity achieved by the system suggested more than 98% screening effort reduction potential in weight abnormality detection. Consequently, we hypothesize that the AWAD, when fully deployed, holds great potential to facilitate clinical research and healthcare delivery that rely on accurate and reliable weight measures.

Identifiants

pubmed: 35308946
pii: 3573496
pmc: PMC8861738

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

783-792

Informations de copyright

©2021 AMIA - All rights reserved.

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Auteurs

Lei Liu (L)

Department of Biomedical Informatics, College of Medicine, University of Cincinnati, Cincinnati, OH.
Division of Biomedical Informatics, Cincinnati Children's Hospital Medical Center, Cincinnati, OH.

Danny T Y Wu (DTY)

Department of Biomedical Informatics, College of Medicine, University of Cincinnati, Cincinnati, OH.
3Department of Pediatrics, College of Medicine, University of Cincinnati, Cincinnati, OH.

S Andrew Spooner (SA)

Division of Biomedical Informatics, Cincinnati Children's Hospital Medical Center, Cincinnati, OH.
3Department of Pediatrics, College of Medicine, University of Cincinnati, Cincinnati, OH.

Yizhao Ni (Y)

Division of Biomedical Informatics, Cincinnati Children's Hospital Medical Center, Cincinnati, OH.
3Department of Pediatrics, College of Medicine, University of Cincinnati, Cincinnati, OH.

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Classifications MeSH