Literature DB >> 27745682

Advancing Models and Theories for Digital Behavior Change Interventions.

Eric B Hekler1, Susan Michie2, Misha Pavel3, Daniel E Rivera4, Linda M Collins5, Holly B Jimison3, Claire Garnett6, Skye Parral7, Donna Spruijt-Metz7.   

Abstract

To be suitable for informing digital behavior change interventions, theories and models of behavior change need to capture individual variation and changes over time. The aim of this paper is to provide recommendations for development of models and theories that are informed by, and can inform, digital behavior change interventions based on discussions by international experts, including behavioral, computer, and health scientists and engineers. The proposed framework stipulates the use of a state-space representation to define when, where, for whom, and in what state for that person, an intervention will produce a targeted effect. The "state" is that of the individual based on multiple variables that define the "space" when a mechanism of action may produce the effect. A state-space representation can be used to help guide theorizing and identify crossdisciplinary methodologic strategies for improving measurement, experimental design, and analysis that can feasibly match the complexity of real-world behavior change via digital behavior change interventions.
Copyright © 2016 American Journal of Preventive Medicine. Published by Elsevier Inc. All rights reserved.

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Year:  2016        PMID: 27745682      PMCID: PMC5506832          DOI: 10.1016/j.amepre.2016.06.013

Source DB:  PubMed          Journal:  Am J Prev Med        ISSN: 0749-3797            Impact factor:   5.043


  29 in total

1.  Using engineering control principles to inform the design of adaptive interventions: a conceptual introduction.

Authors:  Daniel E Rivera; Michael D Pew; Linda M Collins
Journal:  Drug Alcohol Depend       Date:  2006-12-13       Impact factor: 4.492

Review 2.  Does theory influence the effectiveness of health behavior interventions? Meta-analysis.

Authors:  Andrew Prestwich; Falko F Sniehotta; Craig Whittington; Stephan U Dombrowski; Lizzie Rogers; Susan Michie
Journal:  Health Psychol       Date:  2013-06-03       Impact factor: 4.267

3.  Current Issues and Future Directions for Research Into Digital Behavior Change Interventions.

Authors:  Lucy Yardley; Tanzeem Choudhury; Kevin Patrick; Susan Michie
Journal:  Am J Prev Med       Date:  2016-11       Impact factor: 5.043

4.  A control systems engineering approach for adaptive behavioral interventions: illustration with a fibromyalgia intervention.

Authors:  Sunil Deshpande; Daniel E Rivera; Jarred W Younger; Naresh N Nandola
Journal:  Transl Behav Med       Date:  2014-09       Impact factor: 3.046

5.  Hybrid Model Predictive Control for Optimizing Gestational Weight Gain Behavioral Interventions.

Authors:  Yuwen Dong; Daniel E Rivera; Danielle S Downs; Jennifer S Savage; Diana M Thomas; Linda M Collins
Journal:  Proc Am Control Conf       Date:  2013

Review 6.  Health behavior models in the age of mobile interventions: are our theories up to the task?

Authors:  William T Riley; Daniel E Rivera; Audie A Atienza; Wendy Nilsen; Susannah M Allison; Robin Mermelstein
Journal:  Transl Behav Med       Date:  2011-03       Impact factor: 3.046

7.  Mobile health technology evaluation: the mHealth evidence workshop.

Authors:  Santosh Kumar; Wendy J Nilsen; Amy Abernethy; Audie Atienza; Kevin Patrick; Misha Pavel; William T Riley; Albert Shar; Bonnie Spring; Donna Spruijt-Metz; Donald Hedeker; Vasant Honavar; Richard Kravitz; R Craig Lefebvre; David C Mohr; Susan A Murphy; Charlene Quinn; Vladimir Shusterman; Dallas Swendeman
Journal:  Am J Prev Med       Date:  2013-08       Impact factor: 5.043

8.  An Improved Formulation of Hybrid Model Predictive Control With Application to Production-Inventory Systems.

Authors:  Naresh N Nandola; Daniel E Rivera
Journal:  IEEE Trans Control Syst Technol       Date:  2013-01-01       Impact factor: 5.485

9.  Development of a smartphone application to measure physical activity using sensor-assisted self-report.

Authors:  Genevieve Fridlund Dunton; Eldin Dzubur; Keito Kawabata; Brenda Yanez; Bin Bo; Stephen Intille
Journal:  Front Public Health       Date:  2014-02-28

10.  "Is there nothing more practical than a good theory?": Why innovations and advances in health behavior change will arise if interventions are used to test and refine theory.

Authors:  Alexander J Rothman
Journal:  Int J Behav Nutr Phys Act       Date:  2004-07-27       Impact factor: 6.457

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  43 in total

1.  Development of a Control-Oriented Model of Social Cognitive Theory for Optimized mHealth Behavioral Interventions.

Authors:  César A Martín; Daniel E Rivera; Eric B Hekler; William T Riley; Matthew P Buman; Marc A Adams; Alicia B Magann
Journal:  IEEE Trans Control Syst Technol       Date:  2018-11-12       Impact factor: 5.485

2.  Prediction of stress and drug craving ninety minutes in the future with passively collected GPS data.

Authors:  David H Epstein; Matthew Tyburski; William J Kowalczyk; Albert J Burgess-Hull; Karran A Phillips; Brenda L Curtis; Kenzie L Preston
Journal:  NPJ Digit Med       Date:  2020-03-04

Review 3.  The conceptualization of a Just-In-Time Adaptive Intervention (JITAI) for the reduction of sedentary behavior in older adults.

Authors:  Andre Matthias Müller; Ann Blandford; Lucy Yardley
Journal:  Mhealth       Date:  2017-09-12

4.  Collecting outcome data of a text messaging smoking cessation intervention with in-program text assessments: How reliable are the results?

Authors:  Johannes Thrul; Judith A Mendel; Samuel J Simmens; Lorien C Abroms
Journal:  Addict Behav       Date:  2018-05-18       Impact factor: 3.913

5.  Context and craving during stressful events in the daily lives of drug-dependent patients.

Authors:  Kenzie L Preston; William J Kowalczyk; Karran A Phillips; Michelle L Jobes; Massoud Vahabzadeh; Jia-Ling Lin; Mustapha Mezghanni; David H Epstein
Journal:  Psychopharmacology (Berl)       Date:  2017-06-08       Impact factor: 4.530

6.  Toward Usable Evidence: Optimizing Knowledge Accumulation in HCI Research on Health Behavior Change.

Authors:  Predrag Klasnja; Eric B Hekler; Elizabeth V Korinek; John Harlow; Sonali R Mishra
Journal:  Proc SIGCHI Conf Hum Factor Comput Syst       Date:  2017-05

7.  Description, characterization, and evaluation of an online social networking community: the American Cancer Society's Cancer Survivors Network®.

Authors:  E A Fallon; D Driscoll; T S Smith; K Richardson; K Portier
Journal:  J Cancer Surviv       Date:  2018-08-06       Impact factor: 4.442

8.  Exacerbated Craving in the Presence of Stress and Drug Cues in Drug-Dependent Patients.

Authors:  Kenzie L Preston; William J Kowalczyk; Karran A Phillips; Michelle L Jobes; Massoud Vahabzadeh; Jia-Ling Lin; Mustapha Mezghanni; David H Epstein
Journal:  Neuropsychopharmacology       Date:  2017-11-06       Impact factor: 7.853

9.  Personalized models of physical activity responses to text message micro-interventions: A proof-of-concept application of control systems engineering methods.

Authors:  David E Conroy; Sarah Hojjatinia; Constantino M Lagoa; Chih-Hsiang Yang; Stephanie T Lanza; Joshua M Smyth
Journal:  Psychol Sport Exerc       Date:  2018-06-28

10.  Applying and advancing behavior change theories and techniques in the context of a digital health revolution: proposals for more effectively realizing untapped potential.

Authors:  Arlen C Moller; Gina Merchant; David E Conroy; Robert West; Eric Hekler; Kari C Kugler; Susan Michie
Journal:  J Behav Med       Date:  2017-01-05
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