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Advancing Continuous Predictive Analytics Monitoring

Authors :
Kevin Sullivan
J. Randall Moorman
James Forrest Calland
Rebecca R. Kitzmiller
Angela D. Skeeles-Worley
Jessica Keim-Malpass
Matthew T. Clark
Curt Lindberg
Robert H. Tai
Ruth A. Anderson
Source :
Critical Care Nursing Clinics of North America. 30:273-287
Publication Year :
2018
Publisher :
Elsevier BV, 2018.

Abstract

In the intensive care unit, clinicians monitor a diverse array of data inputs to detect early signs of impending clinical demise or improvement. Continuous predictive analytics monitoring synthesizes data from a variety of inputs into a risk estimate that clinicians can observe in a streaming environment. For this to be useful, clinicians must engage with the data in a way that makes sense for their clinical workflow in the context of a learning health system (LHS). This article describes the processes needed to evoke clinical action after initiation of continuous predictive analytics monitoring in an LHS.

Details

ISSN :
08995885
Volume :
30
Database :
OpenAIRE
Journal :
Critical Care Nursing Clinics of North America
Accession number :
edsair.doi...........d6b44ddb8a70a45836c45ee2b64efe58
Full Text :
https://doi.org/10.1016/j.cnc.2018.02.009