Application and Challenges of the Technology Acceptance Model in Elderly Healthcare: Insights from ChatGPT

Sang Dol Kim
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Abstract

The Technology Acceptance Model (TAM) plays a pivotal role in elderly healthcare, serving as a theoretical framework. This study aimed to identify TAM’s core components, practical applications, challenges arising from its applications, and propose countermeasures in elderly healthcare. This descriptive study was conducted by utilizing OpenAI’s ChatGPT, with an access date of 10 January 2024. The three open-ended questions administered to ChatGPT and its responses were collected and qualitatively evaluated for reliability through previous studies. The core components of TAMs were identified as perceived usefulness, perceived ease of use, attitude toward use, behavioral intention to use, subjective norms, image, and facilitating conditions. TAM’s application areas span various technologies in elderly healthcare, such as telehealth, wearable devices, mobile health apps, and more. Challenges arising from TAM applications include technological literacy barriers, digital divide concerns, privacy and security apprehensions, resistance to change, limited awareness and information, health conditions and cognitive impairment, trust and reliability concerns, a lack of tailored interventions, overcoming age stereotypes, and integration with traditional healthcare. In conclusion, customized interventions are crucial for successful tech acceptance among the elderly population. The findings of this study are expected to enhance understanding of elderly healthcare and technology adoption, with insights gained through natural language processing models like ChatGPT anticipated to provide a fresh perspective.
技术接受模型在老年医疗保健中的应用与挑战:来自 ChatGPT 的启示
技术接受模型(TAM)作为一种理论框架,在老年医疗保健领域发挥着举足轻重的作用。本研究旨在确定 TAM 的核心要素、实际应用、应用中出现的挑战,并提出老年医疗保健领域的对策建议。本描述性研究利用 OpenAI 的 ChatGPT 进行,访问日期为 2024 年 1 月 10 日。我们收集了 ChatGPT 中的三个开放式问题及其回答,并通过以往的研究对其可靠性进行了定性评估。TAM 的核心要素包括感知有用性、感知易用性、使用态度、使用行为意向、主观规范、形象和便利条件。TAM 的应用领域涵盖老年医疗保健领域的各种技术,如远程医疗、可穿戴设备、移动医疗应用程序等。TAM 应用所面临的挑战包括技术扫盲障碍、数字鸿沟问题、隐私和安全担忧、变革阻力、有限的意识和信息、健康状况和认知障碍、信任和可靠性问题、缺乏量身定制的干预措施、克服年龄刻板印象以及与传统医疗保健的整合。总之,量身定制的干预措施是老年人成功接受科技的关键。通过 ChatGPT 等自然语言处理模型获得的洞察力有望提供全新的视角,从而加深对老年人医疗保健和技术应用的理解。
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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