Preparing K-12 Students to Meet their Data: Analyzing the Tools and Environments used in Introductory Data Science Contexts

Rotem Israel-Fishelson, Peter F. Moon, Rachel E. Tabak, David Weintrop
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Abstract

Data science education has gained momentum in recent years. Along with the development of curricula to teach data science, the number and diversity of tools for introducing data science to learners are also multiplying. The tools used to teach data science play a central role in shaping the learning experience. Therefore, it is important to carefully choose which tools to use to introduce learners to data science. This article presents a systematic review of 25 data science tools that are, or can be, used in introductory data science education for K-12 students. The identified tools list includes spreadsheets, visual analysis tools, and scripting environments. For each tool, we examine facets of its capabilities, interactions, educational support, and accessibility. This paper advances our understanding of the current state of introductory data science environments and highlights opportunities for creating new tools to better prepare learners to navigate the data-rich world surrounding them.
准备K-12学生满足他们的数据:分析入门数据科学背景中使用的工具和环境
近年来,数据科学教育势头强劲。随着数据科学课程的发展,向学习者介绍数据科学的工具的数量和多样性也在成倍增加。用于教授数据科学的工具在塑造学习体验方面发挥着核心作用。因此,仔细选择用来向学习者介绍数据科学的工具是很重要的。本文系统地回顾了25个数据科学工具,这些工具可以或可以用于K-12学生的入门数据科学教育。确定的工具列表包括电子表格、可视化分析工具和脚本环境。对于每个工具,我们检查其功能、交互、教育支持和可访问性的各个方面。本文促进了我们对数据科学环境现状的理解,并强调了创建新工具的机会,以更好地为学习者导航周围丰富的数据世界做好准备。
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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