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Building new computational models to support health behavior change and maintenance: new opportunities in behavioral research. | LitMetric

AI Article Synopsis

  • Adverse health behaviors contribute to about 40% of preventable deaths and negatively impact quality of life and the economy.
  • Current research primarily relies on static views of behavior, neglecting the complex, dynamic interactions between individuals and their environments.
  • The paper proposes utilizing new technologies and modeling techniques to create dynamic models for behavior, detailing steps for development such as establishing standardized measures, creating a shared behavioral language, improving data sharing, and organizing knowledge in a cohesive system.

Article Abstract

Adverse and suboptimal health behaviors and habits are responsible for approximately 40 % of preventable deaths, in addition to their unfavorable effects on quality of life and economics. Our current understanding of human behavior is largely based on static "snapshots" of human behavior, rather than ongoing, dynamic feedback loops of behavior in response to ever-changing biological, social, personal, and environmental states. This paper first discusses how new technologies (i.e., mobile sensors, smartphones, ubiquitous computing, and cloud-enabled processing/computing) and emerging systems modeling techniques enable the development of new, dynamic, and empirical models of human behavior that could facilitate just-in-time adaptive, scalable interventions. The paper then describes concrete steps to the creation of robust dynamic mathematical models of behavior including: (1) establishing "gold standard" measures, (2) the creation of a behavioral ontology for shared language and understanding tools that both enable dynamic theorizing across disciplines, (3) the development of data sharing resources, and (4) facilitating improved sharing of mathematical models and tools to support rapid aggregation of the models. We conclude with the discussion of what might be incorporated into a "knowledge commons," which could help to bring together these disparate activities into a unified system and structure for organizing knowledge about behavior.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4537459PMC
http://dx.doi.org/10.1007/s13142-015-0324-1DOI Listing

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