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Using a Real-Time Locating System to Measure Walking Activity Associated with Wandering Behaviors Among Institutionalized Older Adults
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Prediction or Prevention? Nurse Interactions with an Electronic Early Warning System for Fall Risk.

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    This summary is machine-generated.

    Machine learning fall alerts in hospitals are common but often dismissed by nurses. Most patient falls occurred without the primary nurse seeing the alert, indicating a need for workflow optimization.

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    Area of Science:

    • Nursing informatics
    • Clinical decision support systems
    • Machine learning in healthcare

    Background:

    • Machine learning (ML) models are increasingly integrated into electronic health records for risk assessment and adverse outcome prediction.
    • Limited research exists on how ML technology impacts nursing workflows, nurse behaviors, and patient outcomes.

    Purpose of the Study:

    • To explore nurse interactions with ML-generated fall alerts.
    • To examine the relationship between alerts and patient falls within the nursing workflow.

    Main Methods:

    • Retrospective analysis of data from four medical/surgical units.
    • Examination of nurse interactions with interruptive alerts from a predictive fall model.
    • Chronological correlation of alerts with actual patient falls.

    Main Results:

    • 87.0% of admissions generated at least one fall alert; 1.5% resulted in a fall.
    • Most alerts (57.3%) were snoozed; 22.0% were seen by non-primary nurses.
    • 89.3% of falls were preceded by any staff seeing an alert, but only 38.7% by the primary nurse.

    Conclusions:

    • Primary nurses were often not exposed to alerts preceding patient falls.
    • Alert dismissal via "Snooze to Review" was common.
    • Further research is required to optimize ML technology for nursing workflows and patient safety.