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中国四川、云南和北京护士人工智能使用意图形成机制:通过自我效能感-态度路径的人工智能素养中介作用

Mechanisms of nurses' AI use intention formation in Sichuan, Yunnan, and Beijing, China: mediating effects of AI literacy via self-efficacy-to-attitude pathways.

作者信息

Zeng Qin, Huang Xi, Zhu Jun, Su Shaoyu, Hu Yanling, Zhang Xiujuan

机构信息

Department of Pediatrics Nursing, West China Second University Hospital, Sichuan University, Chengdu, China.

Key Laboratory of Birth Defects and Related Diseases of Women and Children, Sichuan University, Ministry of Education, Chengdu, China.

出版信息

Front Public Health. 2025 Jul 10;13:1622802. doi: 10.3389/fpubh.2025.1622802. eCollection 2025.

Abstract

AIM

This study aimed to explore the formation mechanism of artificial intelligence (AI) usage intention among nurses in public hospitals in Beijing, Sichuan, and Yunnan, China, analyzing the influence of AI literacy on usage intention through AI self-efficacy and general attitudes.

METHODS

A multi-center cross-sectional design was adopted, surveying 901 registered nurses via the Wenjuanxing platform from December 26, 2024, to February 25, 2025, with 878 valid questionnaires returned (effective rate 97.45%). Data were collected using the AI Literacy Scale (AILS), General Attitudes toward AI Scale (GAAIS), AI Self-Efficacy Scale (AISES), and AI Usage Intention Scale. Descriptive statistics, correlation analysis, and structural equation modeling (SEM) analysis were conducted using SPSS 26.0 and AMOS 26.0, with case weighting adjustments based on the total number of nurses in each region.

RESULTS

Of the respondents, females accounted for 94.08%, those aged 40 and below accounted for 84.03%, and only 14.24% of nurses had received AI training. The average scores for GAAIS, AILS, and AISES were 69.33 ± 10.31, 56.27 ± 8.60, and 107.92 ± 22.35, respectively, with higher scores observed among nurses with master's degrees or above, preceptors, and those in Beijing. GAAIS showed strong positive correlations with AILS (r = 0.549), GAAIS with AISES (r = 0.567), and AILS with AISES (r = 0.684,  < 0.001), and AI usage intention was closely correlated with all three ( < 0.001). Structural equation modeling analysis indicated that the direct effect of AI literacy on usage intention accounted for 30.51%, with indirect effects through AI self-efficacy (21.41%) and general attitudes (14.58%), resulting in a total effect of 0.967 ( < 0.001).

CONCLUSION

AI literacy effectively promotes nurses' AI usage intention by enhancing their self-efficacy and improving their attitudes toward AI, with self-efficacy being particularly crucial. This mechanism, combining both direct and indirect effects, suggests that enhancing confidence and knowledge is key to promoting AI acceptance. Given the low training participation rate (14.24%) and regional disparities (Beijing outperforming Yunnan), it is recommended that hospitals implement systematic AI training, prioritizing groups with low training exposure and underdeveloped regions, while simultaneously improving attitudes through promotional activities to advance the widespread adoption of AI in nursing and elevate patient care standards.

摘要

目的

本研究旨在探讨中国北京、四川和云南公立医院护士人工智能(AI)使用意愿的形成机制,通过AI自我效能感和总体态度分析AI素养对使用意愿的影响。

方法

采用多中心横断面设计,于2024年12月26日至2025年2月25日通过问卷星平台对901名注册护士进行调查,共回收有效问卷878份(有效率97.45%)。使用AI素养量表(AILS)、对AI的总体态度量表(GAAIS)、AI自我效能量表(AISES)和AI使用意愿量表收集数据。使用SPSS 26.0和AMOS 26.0进行描述性统计、相关性分析和结构方程模型(SEM)分析,并根据各地区护士总数进行案例加权调整。

结果

受访者中,女性占94.08%,40岁及以下者占84.03%,只有14.24%的护士接受过AI培训。GAAIS、AILS和AISES的平均得分分别为69.33±10.31、56.27±8.60和107.92±22.35,硕士及以上学历护士、带教老师和北京地区护士得分较高。GAAIS与AILS呈强正相关(r = 0.549),GAAIS与AISES呈强正相关(r = 0.567),AILS与AISES呈强正相关(r = 0.684,P < 0.001),且AI使用意愿与这三者均密切相关(P < 0.001)。结构方程模型分析表明,AI素养对使用意愿的直接效应占30.51%,通过AI自我效能感的间接效应占21.41%,通过总体态度的间接效应占14.58%,总效应为0.967(P < 0.001)。

结论

AI素养通过增强护士的自我效能感和改善其对AI的态度,有效促进了护士的AI使用意愿,其中自我效能感尤为关键。这种直接和间接效应相结合的机制表明,增强信心和知识是促进AI接受的关键。鉴于培训参与率较低(14.24%)且存在地区差异(北京优于云南),建议医院开展系统的AI培训,优先考虑培训机会少的群体和欠发达地区,同时通过宣传活动改善态度,以推动AI在护理中的广泛应用并提高患者护理标准。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9fae/12287104/b2a00bb10028/fpubh-13-1622802-g001.jpg

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