A Bayesian Statistics Course for Undergraduates: Bayesian Thinking, Computing, and Research

IF 2.2 Q3 Social Sciences
Jingchen Hu
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引用次数: 8

Abstract

Abstract We propose a semester-long Bayesian statistics course for undergraduate students with calculus and probability background. We cultivate students’ Bayesian thinking with Bayesian methods applied to real data problems. We leverage modern Bayesian computing techniques not only for implementing Bayesian methods, but also to deepen students’ understanding of the methods. Collaborative case studies further enrich students’ learning and provide experience to solve open-ended applied problems. The course has an emphasis on undergraduate research, where accessible academic journal articles are read, discussed, and critiqued in class. With increased confidence and familiarity, students take the challenge of reading, implementing, and sometimes extending methods in journal articles for their course projects. Supplementary materials for this article are available online.
本科贝叶斯统计课程:贝叶斯思维、计算与研究
我们为具有微积分和概率论背景的本科生开设一学期的贝叶斯统计课程。通过贝叶斯方法在实际数据问题中的应用,培养学生的贝叶斯思维。我们利用现代贝叶斯计算技术,不仅实现贝叶斯方法,而且加深学生对方法的理解。合作案例研究进一步丰富学生的学习,并为解决开放式应用问题提供经验。本课程强调本科生的研究,在课堂上阅读、讨论和评论可访问的学术期刊文章。随着信心和熟悉程度的提高,学生们接受了阅读、实施和有时扩展期刊文章方法的挑战,以用于他们的课程项目。本文的补充材料可在网上获得。
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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来源期刊
Journal of Statistics Education
Journal of Statistics Education EDUCATION, SCIENTIFIC DISCIPLINES-
CiteScore
1.20
自引率
0.00%
发文量
0
审稿时长
12 weeks
期刊介绍: The "Datasets and Stories" department of the Journal of Statistics Education provides a forum for exchanging interesting datasets and discussing ways they can be used effectively in teaching statistics. This section of JSE is described fully in the article "Datasets and Stories: Introduction and Guidelines" by Robin H. Lock and Tim Arnold (1993). The Journal of Statistics Education maintains a Data Archive that contains the datasets described in "Datasets and Stories" articles, as well as additional datasets useful to statistics teachers. Lock and Arnold (1993) describe several criteria that will be considered before datasets are placed in the JSE Data Archive.
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