Exploring Smart Health Wearable Adoption Among Singaporean Older Adults Based on Self-Determination Theory: Web-Based Survey Study.

IF 5 Q1 GERIATRICS & GERONTOLOGY
JMIR Aging Pub Date : 2025-03-19 DOI:10.2196/69008
Hyunjin Kang, Tingting Yang, Nazira Banu, Sheryl Wei Ting Ng, Jeong Kyu Lee
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引用次数: 0

Abstract

Background: Smart health wearables offer significant benefits for older adults, enabling seamless health monitoring and personalized suggestions based on real-time data. Promoting adoption and sustained use among older adults is essential to empower autonomous health management, leading to better health outcomes, improved quality of life, and reduced strain on health care systems.

Objective: This study investigates how autonomy-related contextual factors, including artificial intelligence (AI) anxiety, perceived privacy risks, and health consciousness, are related to older adults' psychological needs of competence, autonomy, and relatedness (RQ1). We then examined whether the fulfillment of these needs positively predicts older adults' intentions to adopt these devices (H1), and how they mediate the relationship between these factors and older adults' intentions to use smart health wearables (RQ2). Additionally, it compares experienced and nonexperienced older adult users regarding the influence of these psychological needs on use intentions (RQ3).

Methods: A web-based survey was conducted with individuals aged 60 years and above in Singapore, using a Qualtrics survey panel. A total of 306 participants (177 male; mean age of 65.47 years, age range 60-85 years) completed the survey. A structural equation model was used to analyze associations among AI anxiety, perceived privacy risks, and health consciousness, and the mediating factors of competence, autonomy, and relatedness, as well as their relationship to smart health wearable use intention.

Results: Health consciousness positively influenced all intrinsic motivation factors-competence, autonomy, and relatedness-while perceived privacy risks negatively affected all three. AI anxiety was negatively associated with competence only. Both privacy risk perceptions and health consciousness were indirectly linked to older adults' intentions to use smart health wearables through competence and relatedness. No significant differences were found in motivational structures between older adults with prior experience and those without.

Conclusions: This study contributes to the application of self-determination theory in promoting the use of smart technology for health management among older adults. The results highlight the critical role of intrinsic motivation-particularly competence-in older adults' adoption of smart health wearables. While privacy concerns diminish motivation, health consciousness fosters it. The study results offer valuable implications for designing technologies that align with older adults' motivations, potentially benefiting aging populations in other technologically advanced societies. Developers should focus on intuitive design, transparent privacy practices, and social features to encourage adoption, empowering older adults to use smart wearables for proactive health management.

基于自我决定理论探索新加坡老年人智能健康可穿戴设备的采用:基于网络的调查研究。
背景:智能健康可穿戴设备为老年人提供了显著的好处,实现了无缝的健康监测和基于实时数据的个性化建议。促进老年人的采用和持续使用对于增强自主健康管理能力、改善健康结果、提高生活质量和减轻卫生保健系统的压力至关重要。目的:研究自主相关的情境因素,包括人工智能(AI)焦虑、感知隐私风险和健康意识,如何与老年人的能力、自主性和相关性心理需求(RQ1)相关。然后,我们研究了这些需求的满足是否能积极预测老年人采用这些设备的意图(H1),以及它们如何调解这些因素与老年人使用智能健康可穿戴设备的意图之间的关系(RQ2)。此外,它比较了有经验和没有经验的老年用户关于这些心理需求对使用意图的影响(RQ3)。方法:使用Qualtrics调查面板,对新加坡60岁及以上的个人进行了基于网络的调查。共有306名参与者(男性177名;平均年龄65.47岁,年龄范围60-85岁)完成调查。采用结构方程模型分析人工智能焦虑、感知隐私风险、健康意识之间的关系,以及能力、自主性、相关性的中介因素,以及它们与智能健康可穿戴设备使用意愿的关系。结果:健康意识正向影响能力、自主性和亲缘性三个内在动机因素,而感知隐私风险负向影响这三个内在动机因素。人工智能焦虑仅与能力呈负相关。隐私风险感知和健康意识都通过能力和相关性与老年人使用智能健康可穿戴设备的意图间接相关。有经验的老年人和没有经验的老年人在动机结构上没有显著差异。结论:本研究有助于自我决定理论在促进老年人使用智能技术进行健康管理中的应用。研究结果强调了内在动机——尤其是能力——在老年人采用智能健康可穿戴设备方面的关键作用。隐私问题削弱了积极性,而健康意识则促进了积极性。研究结果为设计符合老年人动机的技术提供了有价值的启示,这可能使其他技术发达社会的老年人受益。开发人员应该专注于直观的设计、透明的隐私实践和社交功能,以鼓励采用,使老年人能够使用智能可穿戴设备进行主动健康管理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
JMIR Aging
JMIR Aging Social Sciences-Health (social science)
CiteScore
6.50
自引率
4.10%
发文量
71
审稿时长
12 weeks
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