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A Network-Theoretic Analysis of Hospital Admission, Transfer, and Discharge Data

Comprehending complex behavior of flow within a graph is of interest to clinicians and mathematicians alike. In this study we examine admission, discharge, and transfer data of patients within a hospital system, and process the importance of nodes through several graph metrics. One common metric, wh...

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Detalles Bibliográficos
Autores principales: Cioffi, Maria, Mukhtar, Naba, Ryan, Nathan C., Klobusicky, Joe J.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Medical Informatics Association 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5961785/
https://www.ncbi.nlm.nih.gov/pubmed/29888038
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author Cioffi, Maria
Mukhtar, Naba
Ryan, Nathan C.
Klobusicky, Joe J.
author_facet Cioffi, Maria
Mukhtar, Naba
Ryan, Nathan C.
Klobusicky, Joe J.
author_sort Cioffi, Maria
collection PubMed
description Comprehending complex behavior of flow within a graph is of interest to clinicians and mathematicians alike. In this study we examine admission, discharge, and transfer data of patients within a hospital system, and process the importance of nodes through several graph metrics. One common metric, which measures population densities through a continuous time Markov process, will be compared against centrality measures, a technique more often used in social media studies. Our findings show that centrality measures capture behavior related to the topology of the network that may be missed by Markov processes. This suggests that, for determining the allocation of resources between departments of a hospital, centrality measures in some cases may prove more suitable for interpreting patient flow data. Departmental rankings and suitable instances for the application for each graph metric are provided.
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spelling pubmed-59617852018-06-08 A Network-Theoretic Analysis of Hospital Admission, Transfer, and Discharge Data Cioffi, Maria Mukhtar, Naba Ryan, Nathan C. Klobusicky, Joe J. AMIA Jt Summits Transl Sci Proc Articles Comprehending complex behavior of flow within a graph is of interest to clinicians and mathematicians alike. In this study we examine admission, discharge, and transfer data of patients within a hospital system, and process the importance of nodes through several graph metrics. One common metric, which measures population densities through a continuous time Markov process, will be compared against centrality measures, a technique more often used in social media studies. Our findings show that centrality measures capture behavior related to the topology of the network that may be missed by Markov processes. This suggests that, for determining the allocation of resources between departments of a hospital, centrality measures in some cases may prove more suitable for interpreting patient flow data. Departmental rankings and suitable instances for the application for each graph metric are provided. American Medical Informatics Association 2018-05-18 /pmc/articles/PMC5961785/ /pubmed/29888038 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
Cioffi, Maria
Mukhtar, Naba
Ryan, Nathan C.
Klobusicky, Joe J.
A Network-Theoretic Analysis of Hospital Admission, Transfer, and Discharge Data
title A Network-Theoretic Analysis of Hospital Admission, Transfer, and Discharge Data
title_full A Network-Theoretic Analysis of Hospital Admission, Transfer, and Discharge Data
title_fullStr A Network-Theoretic Analysis of Hospital Admission, Transfer, and Discharge Data
title_full_unstemmed A Network-Theoretic Analysis of Hospital Admission, Transfer, and Discharge Data
title_short A Network-Theoretic Analysis of Hospital Admission, Transfer, and Discharge Data
title_sort network-theoretic analysis of hospital admission, transfer, and discharge data
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5961785/
https://www.ncbi.nlm.nih.gov/pubmed/29888038
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