论文标题

AI教育的透明度指数框架

A Transparency Index Framework for AI in Education

论文作者

Chaudhry, Muhammad Ali, Cukurova, Mutlu, Luckin, Rose

论文摘要

已经提出了许多AI伦理清单和框架,重点关注伦理AI的不同维度,例如公平,解释性和安全性。然而,对于开发用于现实世界教育场景的透明AI系统,尚未做过这样的工作。本文提出了一个透明度指数框架,该框架已与AI的不同利益相关者在教育领域(包括教育工作者,ED-Tech专家和AI从业人员)进行了迭代共同设计。我们绘制了AI中不同类别的AI利益相关者的透明度要求,并证明透明度考虑已嵌入到整个AI开发过程中,从数据收集阶段到AI系统部署在现实世界中并迭代改进。我们还展示了透明度如何在教育中实施其他道德AI维度,例如解释性,问责制和安全。总之,我们讨论了这个新兴领域的未来研究方向。这项研究的主要贡献是,它突出了透明度在开发AI驱动的教育技术方面的重要性,并为AI在教育中的概念化提出了索引框架。

Numerous AI ethics checklists and frameworks have been proposed focusing on different dimensions of ethical AI such as fairness, explainability, and safety. Yet, no such work has been done on developing transparent AI systems for real-world educational scenarios. This paper presents a Transparency Index framework that has been iteratively co-designed with different stakeholders of AI in education, including educators, ed-tech experts, and AI practitioners. We map the requirements of transparency for different categories of stakeholders of AI in education and demonstrate that transparency considerations are embedded in the entire AI development process from the data collection stage until the AI system is deployed in the real world and iteratively improved. We also demonstrate how transparency enables the implementation of other ethical AI dimensions in Education like interpretability, accountability, and safety. In conclusion, we discuss the directions for future research in this newly emerging field. The main contribution of this study is that it highlights the importance of transparency in developing AI-powered educational technologies and proposes an index framework for its conceptualization for AI in education.

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