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A computational cognitive model of self-efficacy and daily adherence in mHealth

机译:mHealth中自我效能和日常依从性的计算认知模型

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摘要

Mobile health (mHealth) applications provide an excellent opportunity for collecting rich, fine-grained data necessary for understanding and predicting day-to-day health behavior change dynamics. A computational predictive model (ACT-R-DStress) is presented and fit to individual daily adherence in 28-day mHealth exercise programs. The ACT-R-DStress model refines the psychological construct of self-efficacy. To explain and predict the dynamics of self-efficacy and predict individual performance of targeted behaviors, the self-efficacy construct is implemented as a theory-based neurocognitive simulation of the interaction of behavioral goals, memories of past experiences, and behavioral performance.
机译:移动健康(mHealth)应用程序为收集丰富的,细粒度的数据提供了极好的机会,这些数据对于理解和预测日常的健康行为变化动态是必需的。提出了一种计算预测模型(ACT-R-DStress),并适合28天的mHealth运动计划中的个人日常服从。 ACT-R-DStress模型完善了自我效能感的心理建构。为了解释和预测自我效能的动态变化并预测目标行为的个人表现,自我效能建构被实施为行为目标,过去经验记忆和行为表现相互作用的基于理论的神经认知模拟。

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