72位教育从业者调查显示,AI辅助教学需强化设计实践与制度支持。
Practitioner Beliefs and Behaviors in AI-Enhanced Education: DOT Framework Survey Evidence
- 基于DOT框架分析教师对AI的认知与使用行为
- 90%信度下发现三大信念维度,普遍支持人机协同教学
- 适合关注AI教育落地的教师与政策制定者参考
本研究通过对72名高等教育从业者开展横断面调查,探讨其在教学中融合人工智能(AI)时的信念、行为及机构条件。基于整合设计思维与开放系统理论的DOT框架,研究分析了AI熟悉度、使用模式、以设计为导向的实践及教学理念。对19项信念题项的探索性因子分析揭示出三个因素结构:AI功能能力、监管与治理、教师协作与规划(α = .90)。结果表明,从业者普遍将AI视为教学支持工具,同时强调人类监督与批判评估的重要性。实际做法集中于迭代提示与内容生成,但需求评估和反馈循环应用不一致。机构层面普遍存在政策、培训与基础设施不足的问题。研究为DOT框架提供了初步实证支持,并指出了理论设计与实践实施间的差距。研究提出初始测量结构,明确了后续验证研究与关联教学品质的研究方向。
原文摘要 · Abstract (English)
This study reports findings from a cross-sectional survey (n = 72) of higher education practitioners examining beliefs, behaviors, and institutional conditions related to artificial intelligence (AI) integration in teaching and learning. Grounded in the DOT Framework, which integrates design thinking and open systems theory, the study investigates AI familiarity, usage patterns, design-oriented practices, and pedagogical beliefs. Exploratory factor analysis of 19 belief items identified a three-factor structure: AI Functional Capabilities, Oversight and Governance, and Instructor Collaboration and Planning (α = .90). Results indicate that practitioners hold favorable views of AI as a pedagogical support while maintaining strong commitments to human oversight and critical evaluation. Reported practices emphasize iterative prompting and content generation, with less consistent use of needs assessment and feedback loops. Institutional barriers including limited policy, training, and infrastructure were widely reported. These findings provide preliminary empirical support for the DOT Framework as a descriptive model of practitioner beliefs and practices, while also highlighting gaps between design-oriented theory and current implementation. The study contributes an initial measurement structure and identifies directions for confirmatory validation and outcome-based research linking AI-supported design practices to instructional quality.
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