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Leveraging Mobile Sensing and Machine Learning for Personalized Mental Health Care

    1. [1] University of Virginia

      University of Virginia

      Estados Unidos

  • Localización: Ergonomics in Design: The Quaterly of Human Factors Applications, ISSN 1064-8046, Vol. 28, Nº. 4, 2020, págs. 18-23
  • Idioma: inglés
  • Texto completo no disponible (Saber más ...)
  • Resumen
    • Mental illness is widespread in our society, yet remains difficult to treat due to challenges such as stigma and overburdened health care systems. New paradigms are needed for treating mental illness outside the practitioner’s office. We propose a framework to guide the design of mobile sensing systems for personalized mental health interventions. This framework guides researchers in constructing interventions from the ground up through four phases: sensor data collection, digital biomarker extraction, health state detection, and intervention deployment. We highlight how this framework advances research in personalized mHealth and address remaining challenges, such as ground truth fidelity and missing data.


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