Students' articulations of uncertainty about big data in an integrated modeling approach learning environment

IF 1.2 Q2 EDUCATION & EDUCATIONAL RESEARCH
Ronit Gafny, D. Ben-Zvi
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引用次数: 1

Abstract

In recent years, big data has become ubiquitous in our day‐to‐day lives. Therefore, it is imperative for educators to integrate nontraditional (big) data into statistics education to ensure that students are prepared for a big data reality. This study examined graduate students' expressions of uncertainty while engaging with traditional and nontraditional big data investigation activities. We first suggest a theoretical framework based on integrated insights from statistics education and data science to analyze and describe novices' reasoning with the various uncertainties that characterize both traditional and big data—the Variability, Data, and Phenomenon (VDP) framework. We offer a case study of graduate students' participation in the integrated modeling approach (IMA) learning trajectory, illustrating the utility of the VDP framework in accounting for the different types of articulated uncertainties. We also discuss the teaching implications of the VDP.
学生在集成建模方法学习环境中对大数据不确定性的表述
近年来,大数据在我们的日常生活中无处不在。因此,教育工作者必须将非传统(大)数据整合到统计教育中,以确保学生为大数据现实做好准备。本研究考察了研究生在参与传统和非传统大数据调查活动时对不确定性的表达。我们首先提出了一个基于统计教育和数据科学的综合见解的理论框架,以分析和描述新手的推理与传统数据和大数据特征的各种不确定性-变异性,数据和现象(VDP)框架。我们提供了一个研究生参与集成建模方法(IMA)学习轨迹的案例研究,说明了VDP框架在考虑不同类型的铰接不确定性方面的效用。我们还讨论了VDP的教学意义。
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来源期刊
Teaching Statistics
Teaching Statistics EDUCATION & EDUCATIONAL RESEARCH-
CiteScore
2.10
自引率
25.00%
发文量
31
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