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  • Dashboarding to Monitor Mac... Dashboarding to Monitor Machine-Learning-Based Clinical Decision Support Interventions
    Hekman, Daniel J; Barton, Hanna J; Maru, Apoorva P ... Applied clinical informatics, 01/2024, Volume: 15, Issue: 1
    Journal Article
    Peer reviewed

    Existing monitoring of machine-learning-based clinical decision support (ML-CDS) is focused predominantly on the ML outputs and accuracy thereof. Improving patient care requires not only accurate ...
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  • Multimethod Process Evaluat... Multimethod Process Evaluation of a Community Paramedic Delivered Care Transitions Intervention for Older Emergency Department Patients
    Costa Jacobsohn, Gwen; Maru, Apoorva P.; Green, Rebecca K. ... Prehospital emergency care, 2023, Volume: ahead-of-print, Issue: ahead-of-print
    Journal Article
    Peer reviewed

    We assessed fidelity of delivery and participant engagement in the implementation of a community paramedic coach-led Care Transitions Intervention (CTI) program adapted for use following emergency ...
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  • Collaborative design and im... Collaborative design and implementation of a clinical decision support system for automated fall-risk identification and referrals in emergency departments
    Jacobsohn, Gwen Costa; Leaf, Margaret; Liao, Frank ... Healthcare : the journal of delivery science and innovation, 03/2022, Volume: 10, Issue: 1
    Journal Article
    Peer reviewed
    Open access

    Of the 3 million older adults seeking fall-related emergency care each year, nearly one-third visited the Emergency Department (ED) in the previous 6 months. ED providers have a great opportunity to ...
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  • Effectiveness of an Emergen... Effectiveness of an Emergency Department-Based Machine Learning Clinical Decision Support Tool to Prevent Outpatient Falls Among Older Adults: Protocol for a Quasi-Experimental Study
    Hekman, Daniel J; Cochran, Amy L; Maru, Apoorva P ... JMIR research protocols, 08/2023, Volume: 12
    Journal Article
    Peer reviewed
    Open access

    Emergency department (ED) providers are important collaborators in preventing falls for older adults because they are often the first health care providers to see a patient after a fall and because ...
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