面向非专家的数据伦理教学模式

IASSIST quarterly Pub Date : 2022-12-28 DOI:10.29173/iq1028
L. Phan, Ibraheem Ali, S. Labou, E. Foster
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引用次数: 0

摘要

在过去十年中,基于技术和算法的解决方案在研究、经济和政策决策中的使用急剧增加,导致了一些备受关注的道德和隐私侵犯事件。目前数据和计算科学学术课程的差异导致下一代数据密集型研究人员在道德培训方面存在重大差距。图书馆经常被要求填补非数据科学学科数据科学培训的课程空白,包括在加州大学系统内。我们发现,除了不完整的计算培训外,标准课程中几乎完全没有道德培训。在本报告中,我们强调了图书馆数据服务提供商通过设计和举办两个研讨会来满足额外培训需求的经验:《数据伦理考虑》(2021)及其续集《数据伦理与正义》(2022)。我们讨论了我们的跨学科研讨会方法,以及我们为强调非专家可以用来富有成效地参与这些主题的资源所做的努力。最后,我们报告了一系列建议,供图书馆员和数据科学讲师更容易地将数据伦理概念纳入课程教学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A model for data ethics instruction for non-experts
The dramatic increase in use of technological and algorithmic-based solutions for research, economic, and policy decisions has led to a number of high-profile ethical and privacy violations in the last decade. Current disparities in academic curriculum for data and computational science result in significant gaps regarding ethics training in the next generation of data-intensive researchers. Libraries are often called to fill the curricular gaps in data science training for non-data science disciplines, including within the University of California (UC) system. We found that in addition to incomplete computational training, ethics training is almost completely absent in the standard course curricula. In this report, we highlight the experiences of library data services providers in attempting to meet the need for additional training, by designing and running two workshops: Ethical Considerations in Data (2021) and its sequel Data Ethics & Justice (2022). We discuss our interdisciplinary workshop approach and our efforts to highlight resources that can be used by non-experts to engage productively with these topics. Finally, we report a set of recommendations for librarians and data science instructors to more easily incorporate data ethics concepts into curricular instruction.
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