将数据科学工具整合到研究生水平的数据管理课程

P. Pascuzzi, Megan Sapp Nelson
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引用次数: 4

摘要

目的:本文描述了一个修改现有研究数据管理(RDM)课程的项目,以包括使用强大的数据科学工具的计算机技能的指导。环境:卡内基大学。简介:研究生研究人员需要在RDM的基本概念方面进行培训。然而,他们通常缺乏使用健壮的数据科学工具来全面实现这些概念的经验。两位图书馆讲师从根本上重新设计了现有的研究RDM课程,以包括使用这些工具的教学。这门课分为讲课和实验两部分,以减轻增加的教学负担。学习目标和评估的设计是为了让学生证明他们不仅理解课程概念,而且可以使用他们的计算机技能来实现这些概念。结果:12名学生完成了课程的第一次迭代。这些学生的反馈非常积极,他们对理论概念、计算机技能和实践活动的结合表示赞赏。根据学生的反馈,课程的未来迭代将包括更多的“翻转”内容,包括视频讲座和交互式计算机教程,以最大限度地提高课堂和实验室的主动学习时间。
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Integrating Data Science Tools into a Graduate Level Data Management Course
Objective : This paper describes a project to revise an existing research data management (RDM) course to include instruction in computer skills with robust data science tools. Setting : A Carnegie R1 university. Brief Description : Graduate student researchers need training in the basic concepts of RDM. However, they generally lack experience with robust data science tools to implement these concepts holistically. Two library instructors fundamentally redesigned an existing research RDM course to include instruction with such tools. The course was divided into lecture and lab sections to facilitate the increased instructional burden. Learning objectives and assessments were designed at a higher order to allow students to demonstrate that they not only understood course concepts but could use their computer skills to implement these concepts. Results : Twelve students completed the first iteration of the course. Feedback from these students was very positive, and they appreciated the combination of theoretical concepts, computer skills and hands-on activities. Based on student feedback, future iterations of the course will include more “flipped” content including video lectures and interactive computer tutorials to maximize active learning time in both lecture and lab.
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