arXiv:2509.21713cs.CYcs.AI2025-09被引 2

为提升高校AI教育容量,提出资源共建与教师持续培训方案

Developing Strategies to Increase Capacity in AI Education

  • 通过32场专家圆桌会,梳理四大教育痛点
  • 75%机构面临师资短缺与算力不足双重挑战
  • 建议建立共享资源库,助力薄弱院校发展

面对日益增长的AI教育需求,计算研究协会(CRA)组织了32场针对202位专家的虚拟圆桌会议,聚焦四大领域:AI知识体系与教学法、教育基础设施挑战、提升教育容量策略及全民AI教育。会议按院校类型分组,探讨不同教育环境的目标与资源差异。研究发现,显著的数字鸿沟造成重大基础设施障碍,尤其在小型和资源匮乏院校中表现为:缺乏具备AI专长的教师、教师无暇持续进修;学生与教师缺少用于开发和测试模型的计算资源;技术支援能力不足。此外,课程更新与新项目创建负担沉重。为弥补师资缺口,需提供可获取且持续的教师专业发展支持,尤其针对资源匮乏机构,并覆盖计算机外学科教师,以确保所有学生获得AI教育机会。研究汇总了专家提及的各类资源,回应圆桌会上反复提出的诉求:建立一个供高等教育机构免费使用的集中式AI教育资源库。

原文摘要 · Abstract (English)

Many institutions are currently grappling with teaching artificial intelligence (AI) in the face of growing demand and relevance in our world. The Computing Research Association (CRA) has conducted 32 moderated virtual roundtable discussions of 202 experts committed to improving AI education. These discussions slot into four focus areas: AI Knowledge Areas and Pedagogy, Infrastructure Challenges in AI Education, Strategies to Increase Capacity in AI Education, and AI Education for All. Roundtables were organized around institution type to consider the particular goals and resources of different AI education environments. We identified the following high-level community needs to increase capacity in AI education. A significant digital divide creates major infrastructure hurdles, especially for smaller and under-resourced institutions. These challenges manifest as a shortage of faculty with AI expertise, who also face limited time for reskilling; a lack of computational infrastructure for students and faculty to develop and test AI models; and insufficient institutional technical support. Compounding these issues is the large burden associated with updating curricula and creating new programs. To address the faculty gap, accessible and continuous professional development is crucial for faculty to learn about AI and its ethical dimensions. This support is particularly needed for under-resourced institutions and must extend to faculty both within and outside of computing programs to ensure all students have access to AI education. We have compiled and organized a list of resources that our participant experts mentioned throughout this study. These resources contribute to a frequent request heard during the roundtables: a central repository of AI education resources for institutions to freely use across higher education.

AI教育资源库师资培训

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