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      Predicting prolonged length of hospital stay in older emergency department users: use of a novel analysis method, the Artificial Neural Network.

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          Abstract

          To examine performance criteria (i.e., sensitivity, specificity, positive predictive value [PPV], negative predictive value [NPV], likelihood ratios [LR], area under receiver operating characteristic curve [AUROC]) of a 10-item brief geriatric assessment (BGA) for the prediction of prolonged length hospital stay (LHS) in older patients hospitalized in acute care wards after an emergency department (ED) visit, using artificial neural networks (ANNs); and to describe the contribution of each BGA item to the predictive accuracy using the AUROC value.

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          Author and article information

          Journal
          Eur. J. Intern. Med.
          European journal of internal medicine
          1879-0828
          0953-6205
          Sep 2015
          : 26
          : 7
          Affiliations
          [1 ] Department of Neuroscience, Division of Geriatric Medicine, UPRES EA 4638, UNAM, Angers University Hospital, Angers, France.
          [2 ] Department of Neuroscience, Division of Geriatric Medicine, UPRES EA 4638, UNAM, Angers University Hospital, Angers, France; Department of Medicine, Division of Geriatrics, Jewish General Hospital, McGill University, Montreal, Canada; Biomathics, Paris, France. Electronic address: olbeauchet@chu-angers.fr.
          Article
          S0953-6205(15)00207-1
          10.1016/j.ejim.2015.06.002
          26142183
          dd57cb7c-55c2-438b-865c-949b6a908157
          Copyright © 2015 European Federation of Internal Medicine. Published by Elsevier B.V. All rights reserved.
          History

          Artificial neural network,Elderly,Inpatients,Length of hospital stay,Screening

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