Towards Value-Sensitive Learning Analytics Design

Bodong Chen, Haiyi Zhu
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引用次数: 43

Abstract

To support ethical considerations and system integrity in learning analytics, this paper introduces two cases of applying the Value Sensitive Design methodology to learning analytics design. The first study applied two methods of Value Sensitive Design, namely stakeholder analysis and value analysis, to a conceptual investigation of an existing learning analytics tool. This investigation uncovered a number of values and value tensions, leading to design trade-offs to be considered in future tool refinements. The second study holistically applied Value Sensitive Design to the design of a recommendation system for the Wikipedia WikiProjects. To proactively consider values among stakeholders, we derived a multi-stage design process that included literature analysis, empirical investigations, prototype development, community engagement, iterative testing and refinement, and continuous evaluation. By reporting on these two cases, this paper responds to a need of practical means to support ethical considerations and human values in learning analytics systems. These two cases demonstrate that Value Sensitive Design could be a viable approach for balancing a wide range of human values, which tend to encompass and surpass ethical issues, in learning analytics design.
对价值敏感的学习分析设计
为了支持学习分析中的道德考虑和系统完整性,本文介绍了将价值敏感设计方法应用于学习分析设计的两个案例。第一项研究应用价值敏感设计的两种方法,即利益相关者分析和价值分析,对现有的学习分析工具进行概念性调查。这项调查揭示了许多价值和价值紧张关系,导致在未来的工具改进中考虑设计权衡。第二项研究将价值敏感设计整体应用于维基百科维基项目推荐系统的设计。为了主动考虑利益相关者之间的价值,我们推导了一个多阶段的设计过程,包括文献分析、实证调查、原型开发、社区参与、迭代测试和改进以及持续评估。通过对这两个案例的报道,本文回应了在学习分析系统中支持伦理考虑和人类价值观的实际手段的需求。这两个案例表明,在学习分析设计中,价值敏感设计可能是平衡广泛的人类价值的可行方法,这些价值往往包含并超越了道德问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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