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利用扩展技术接受模型评估基于物联网的健康管理工具的采用意向。

Using Extended Technology Acceptance Model to Assess the Adopt Intention of a Proposed IoT-Based Health Management Tool.

机构信息

School of Management, Nanjing University of Posts and Telecommunications, Nanjing 210003, China.

School of Economic Management, Tongji University, Shanghai 200092, China.

出版信息

Sensors (Basel). 2022 Aug 15;22(16):6092. doi: 10.3390/s22166092.

Abstract

Advancements in IoT technology contribute to the digital progress of health science. This paper proposes a cloud-centric IoT-based health management framework and develops a system prototype that integrates sensors and digital technology. The IoT-based health management tool can collect real-time health data and transmit it to the cloud, thus transforming the signals of various sensors into shared content that users can understand. This study explores whether individuals in need tend to use the proposed IoT-based technology for health management, which may lead to the new development of digital healthcare in the direction of sensors. The novelty of this research lies in extending the research perspective of sensors from the technical level to the user level and explores how individuals understand and adopt sensors based on innovatively applying the IoT to health management systems. By organically combining TAM with MOA theory, we propose a comprehensive model to explain why individuals develop perceptions of usefulness, ease of use, and risk regarding systems based on factors related to motivation, opportunity, and ability. Structural equation modeling was used to analyze the online survey data collected from respondents. The results showed that perceived usefulness and ease of use positively impacted adoption intention, Perceived ease of use positively affected perceived usefulness. Perceived risk had a negative impact on adoption intention. Readiness was only positively related to perceived usefulness, while external benefits were positively related to perceived ease of use and negatively related to perceived risk. Facilitative conditions were positively correlated with perceived ease of use and negatively correlated with perceived risk. Technical efficacy was positively related to perceived ease of use and perceived usefulness. Overall, the research model revealed the cognitive mechanism that affects the intention of individuals to use the system combining sensors and the IoT and guides the digital transformation of health science.

摘要

物联网技术的进步推动了健康科学的数字化发展。本文提出了一种基于云的物联网健康管理框架,并开发了一个集成传感器和数字技术的系统原型。基于物联网的健康管理工具可以收集实时健康数据并将其传输到云端,从而将各种传感器的信号转换为用户可以理解的共享内容。本研究探讨了有需要的个体是否倾向于使用基于物联网的技术进行健康管理,这可能会导致数字医疗朝着传感器方向的新发展。本研究的新颖之处在于将传感器的研究视角从技术层面扩展到用户层面,并探讨了个体如何基于物联网在健康管理系统中的创新应用来理解和采用传感器。通过将 TAM 与 MOA 理论有机结合,我们提出了一个综合模型,以解释为什么个体基于与动机、机会和能力相关的因素,对系统的有用性感知、易用性感知和风险感知产生看法。我们使用结构方程模型分析了从受访者那里收集的在线调查数据。结果表明,感知有用性和易用性对采用意图有积极影响,感知易用性对感知有用性有积极影响。感知风险对采用意图有负面影响。准备度仅与感知有用性呈正相关,而外部效益与感知易用性呈正相关,与感知风险呈负相关。促进条件与感知易用性呈正相关,与感知风险呈负相关。技术效能与感知易用性和感知有用性呈正相关。总的来说,该研究模型揭示了影响个体使用结合传感器和物联网的系统的意图的认知机制,并指导了健康科学的数字化转型。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e6a8/9415274/0ea85d92298d/sensors-22-06092-g001.jpg

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