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韩国公司采用和使用生成式人工智能系统的决定因素:应用UTAUT模型

Determinants of Generative AI System Adoption and Usage Behavior in Korean Companies: Applying the UTAUT Model.

作者信息

Kim Youngsoo, Blazquez Victor, Oh Taeyeon

机构信息

Seoul Business School, aSSIST University, Seoul 03767, Republic of Korea.

Department of Business Economics, Health and Social Care, University of Applied Sciences and Arts of Southern Switzerland, 6928 Manno, Switzerland.

出版信息

Behav Sci (Basel). 2024 Nov 4;14(11):1035. doi: 10.3390/bs14111035.

Abstract

This study addresses the academic gap in the adoption of generative AI systems by investigating the factors influencing technology acceptance and usage behavior in Korean firms. Although recent advancements in AI are accelerating digital transformation and innovation, empirical research on the adoption of these systems remains scarce. To fill this gap, this study applies the Unified Theory of Acceptance and Use of Technology (UTAUT) model, surveying 300 employees from both large and small enterprises in South Korea. The findings reveal that effort expectancy and social influence significantly influence employees' behavioral intention to use generative AI systems. Specifically, effort expectancy plays a critical role in the early stages of adoption, while social influence, including support from supervisors and peers, strongly drives the adoption process. In contrast, performance expectancy and facilitating conditions show no significant impact. The study also highlights the differential effects of age and work experience on behavioral intention and usage behavior. For older employees, social support is a key factor in technology acceptance, whereas employees with more experience exhibit a more positive attitude toward adopting new technologies. Conversely, facilitating conditions are more critical for younger employees. This study contributes to the understanding of the interaction between various factors in AI technology adoption and offers strategic insights for the successful implementation of AI systems in Korean companies.

摘要

本研究通过调查影响韩国企业技术接受和使用行为的因素,来解决在采用生成式人工智能系统方面存在的学术差距。尽管人工智能领域的最新进展正在加速数字转型和创新,但关于采用这些系统的实证研究仍然很少。为了填补这一空白,本研究应用技术接受与使用统一理论(UTAUT)模型,对韩国大中小企业的300名员工进行了调查。研究结果表明,努力期望和社会影响显著影响员工使用生成式人工智能系统的行为意向。具体而言,努力期望在采用的早期阶段起着关键作用,而包括上级和同事支持在内的社会影响则有力地推动了采用过程。相比之下,绩效期望和便利条件没有显著影响。该研究还强调了年龄和工作经验对行为意向和使用行为的不同影响。对于年长员工来说,社会支持是技术接受的关键因素,而经验更丰富的员工对采用新技术表现出更积极的态度。相反,便利条件对年轻员工更为关键。本研究有助于理解人工智能技术采用中各种因素之间的相互作用,并为韩国公司成功实施人工智能系统提供战略见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8528/11591487/8d06485d46ed/behavsci-14-01035-g001.jpg

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