Studies of Psychology and Behavior ›› 2026, Vol. 24 ›› Issue (4): 525-532.DOI: 10.12139/j.1672-0628.2026.04.012

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AI-Assisted Learning: The Relationship Between Chatbot Novelty - Individual Innovativeness Congruence and Learning Engagement

Xingyu LUO1,2, Peipei MAO1,2, Gengfeng NIU1,2, Peipei ZHAI3, Xiaojun SUN*,1,2()   

  1. 1. Key Laboratory of Adolescent Cyberpsychology and Behavior (CCNU), Ministry of Education, Wuhan 430079
    2. Key Laboratory of Human Development and Mental Health of Hubei Province, School of Psychology, Central China Normal University, Wuhan 430079
    3. Institute of Psychology and Behavior, Henan University, Kaifeng 475004
  • Received:2025-02-28 Online:2026-07-21 Published:2026-07-20
  • Contact: Xiaojun SUN

人工智能辅助学习:聊天机器人新颖性和个体创新性的匹配与学习投入的关系

罗星雨1,2, 毛佩佩1,2, 牛更枫1,2, 翟培培3, 孙晓军*,1,2()   

  1. 1. 青少年网络心理与行为教育部重点实验室,武汉 430079
    2. 人的发展与心理健康湖北省重点实验室,华中师范大学心理学院,武汉 430079
    3. 河南大学心理与行为研究所,开封 475004
  • 通讯作者: 孙晓军
  • 基金资助:
    国家社会科学基金项目(23BSH118)。

Abstract:

Although AI chatbots have demonstrated positive effects on students’ learning engagement, the underlying factors that govern these benefits remain underspecified. Guided by person-environment fit and self-determination theories, this study employed response surface analysis to explore the relationship between individual innovativeness, chatbot novelty, and learning engagement. A sample of 511 college students participated in the study, with questionnaires assessing individual innovativeness, perceived chatbot novelty, and learning engagement. The results revealed that: 1) engagement increased as perceived novelty and innovativeness converged; 2) engagement was higher when both dimensions were high rather than low; and 3) learning engagement was greater when chatbot novelty exceeded individual innovativeness than in the reverse scenario. These findings extend the chatbot-education literature and provide evidence-based guidance for optimizing AI chatbots to foster engaged learning in the digital era.

Key words: artificial intelligence, chatbot novelty, individual innovativeness, learning engagement, response surface analysis

摘要:

使用人工智能(AI)聊天机器人辅助学习被证实对学习投入有积极作用,但对相关影响因素缺乏深入研究。本研究基于人−环境匹配理论和自我决定理论,通过响应面分析建模的方式探讨聊天机器人新颖性和个体创新性的匹配与学习投入的关系。以511名在校大学生为被试,使用问卷评估感知聊天机器人新颖性、个体创新性和学习投入。结果表明:(1)聊天机器人新颖性与个体创新性越一致,学习投入程度越高;(2)相对于聊天机器人新颖性和个体创新性均低,二者均高时个体学习投入程度更高;(3)相对于聊天机器人新颖性低于个体创新性,前者高于后者时学习投入程度更高。本研究不仅丰富了相关主题研究,还为人工智能时代如何有效利用智能聊天机器人辅助学习提供了实证依据。

关键词: 人工智能, 聊天机器人新颖性, 个体创新性, 学习投入, 响应面分析

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