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[Improved Mental Health Clinical Practice Informed by Digital Phenotyping].

Alan Bougeard1, Rose Guay Hottin1, Valérie Houde1

  • 1Centre de recherche de l'Institut universitaire en santé mentale de Montréal.

Sante Mentale Au Quebec
|October 1, 2021
PubMed
Summary
This summary is machine-generated.

Digital phenotyping using smartphones and machine learning can improve mental health clinical decisions. However, challenges in interpretability and adoption barriers need addressing for widespread use.

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Area of Science:

  • Digital phenotyping in mental health research.
  • Machine learning applications in psychiatry.

Background:

  • Clinical decision-making in mental health is hindered by subjective interview data and poor predictive accuracy.
  • Accurate prediction of patient future mental states remains a significant clinical challenge.

Purpose of the Study:

  • To review the potential of digital phenotyping and machine learning to enhance mental health clinical decision-making.
  • To highlight the current limitations and barriers to adopting these technologies in clinical practice.

Main Methods:

  • A non-systematic narrative review of literature on smartphone-based digital phenotyping in psychiatric populations.
  • Analysis of machine learning's utility and limitations for clinical prediction and decision support.
  • Exploration of barriers to the adoption of digital phenotyping tools by patients and clinicians.

Main Results:

  • Smartphone sensor data effectively quantifies the human phenotype across behavioral, cognitive, emotional, and social domains relevant to mental disorders.
  • Machine learning enables accurate clinical predictions from digital phenotyping data, but lacks interpretability for near-term clinical use.
  • Significant patient- and clinician-side barriers impede the adoption of these monitoring and decision support tools.

Conclusions:

  • Digital phenotyping combined with machine learning holds substantial promise for advancing mental health clinical practice.
  • The immaturity of these technologies necessitates a guided maturation process involving all stakeholders to realize their full potential.