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Framework for improving outcome prediction for acute to chronic low back pain transitions

Steven Z. George, Trevor A. Lentz, Jason M. Beneciuk, Nrupen A. Bhavsar, Jennifer M. Mundt, Jeff Boissoneault

2020PAIN Reports33 citationsDOIOpen Access PDF

Abstract

Clinical practice guidelines and the Federal Pain Research Strategy (United States) have recently highlighted research priorities to lessen the public health impact of low back pain (LBP). It may be necessary to improve existing predictive approaches to meet these research priorities for the transition from acute to chronic LBP. In this article, we first present a mapping review of previous studies investigating this transition and, from the characterization of the mapping review, present a predictive framework that accounts for limitations in the identified studies. Potential advantages of implementing this predictive framework are further considered. These advantages include (1) leveraging routinely collected health care data to improve prediction of the development of chronic LBP and (2) facilitating use of advanced analytical approaches that may improve prediction accuracy. Furthermore, successful implementation of this predictive framework in the electronic health record would allow for widespread testing of accuracy resulting in validated clinical decision aids for predicting chronic LBP development.

Topics & Concepts

Chronic painHealth careOutcome (game theory)Low back painClinical PracticeMedicinePredictive modellingPhysical therapyComputer scienceAlternative medicineMachine learningPolitical scienceLawMathematicsPathologyMathematical economicsMusculoskeletal pain and rehabilitationHealth Systems, Economic Evaluations, Quality of LifeClinical practice guidelines implementation
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