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首页> 外文期刊>Telemedicine and e-health: the official journal of the American Telemedicine Association >Empirical Investigation of Factors Influencing Consumer Intention to Use an Artificial Intelligence-Powered Mobile Application for Weight Loss and Health Management
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Empirical Investigation of Factors Influencing Consumer Intention to Use an Artificial Intelligence-Powered Mobile Application for Weight Loss and Health Management

机译:影响消费者使用人工智能动力移动应用程序减肥和健康管理的实证调查

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Background: Research into interventions based on mobile health (m-Health) applications (apps) has attracted considerable attention among researchers; however, most previous studies have focused on research-led apps and their effectiveness when applied to overweight/obese adults. There remains a paucity of research on the attitudes of typical consumers toward the adoption of m-Health apps for weight management. This study adopted the tenets of the extended unified theory of acceptance and use of technology 2 (UTAUT2) as the theoretical foundation in developing a model that integrates personal innovativeness (PI) and network externality (NE) in seeking to identify the factors with the most pronounced effect on one's intention to use an artificial intelligence-powered weight loss and health management app. Materials and Methods: An online survey was conducted for Taiwanese participants aged >= 21 years from May 23 to June 30, 2018. Hypotheses were tested using structural equation modeling. Results: In the analysis of 458 responses, the proposed research model explained 75.5% of variance in behavioral intention (BI). Habit was the independent variable with the strongest performance in predicting user intention, followed by PI, NE, and performance expectancy (PE). Social influence weakly affects user intention through PE. In multi-group analysis, education was shown to exert a moderating influence on some of the relationships hypothesized in the model. Conclusions: The empirically validated model in this study provides insights into the primary determinants of user intention toward the adoption of m-Health app for weight loss and health management. The theoretical and practical implications are relevant to researchers seeking to extend the applicability of the UTAUT2 model to health apps as well as practitioners seeking to promote the adoption of m-Health apps. In the future, researchers could extend the model to assess the effects of BI on actual use behavior.
机译:背景:基于移动健康(m-health)应用程序(APP)的干预研究已经引起了研究人员的极大关注;然而,之前的大多数研究都集中在以研究为导向的应用程序及其在超重/肥胖成年人中的有效性上。关于典型消费者对采用m-Health应用程序进行体重管理的态度,目前仍缺乏研究。本研究采用扩展的统一技术接受和使用技术2(UTAUT2)理论作为开发个人创新性(PI)和网络外部性(NE)的模型的理论基础,以寻求影响使用人工智能动力减肥和健康管理的意图最显著的因素。应用程序。材料和方法:2018年5月23日至6月30日,对年龄≥21岁的台湾参与者进行在线调查。利用结构方程模型对假设进行了检验。结果:在对458个回答的分析中,提出的研究模型解释了75.5%的行为意向(BI)方差。习惯是预测用户意图的自变量,表现最强,其次是PI、NE和绩效预期(PE)。社会影响力通过体育对用户意向的影响较弱。在多组分析中,教育被证明对模型中假设的一些关系有调节作用。结论:本研究中经经验验证的模型深入了解了用户使用m-Health app进行减肥和健康管理的主要决定因素。这些理论和实践意义与寻求将UTAUT2模型的适用性扩展到健康应用程序的研究人员以及寻求推广移动健康应用程序的从业者相关。未来,研究人员可以扩展该模型,以评估BI对实际使用行为的影响。

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