The Landscape of College-level Data Visualization Courses, and the Benefits of Incorporating Statistical Thinking

Fuente: arXiv
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Main Authors: Branson, Zach, Parra, Monica Paz, Yurko, Ronald
Format: Preprint
Published: 2024
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author Branson, Zach
Parra, Monica Paz
Yurko, Ronald
author_facet Branson, Zach
Parra, Monica Paz
Yurko, Ronald
contents Data visualization is a core part of statistical practice and is ubiquitous in many fields. Although there are numerous books on data visualization, instructors in statistics and data science may be unsure how to teach data visualization, because it is such a broad discipline. To give guidance on teaching data visualization from a statistical perspective, we make two contributions. First, we conduct a survey of data visualization courses at top colleges and universities in the United States, in order to understand the landscape of data visualization courses. We find that most courses are not taught by statistics and data science departments and do not focus on statistical topics, especially those related to inference. Instead, most courses focus on visual storytelling, aesthetic design, dashboard design, and other topics specialized for other disciplines. Second, we outline three teaching principles for incorporating statistical inference in data visualization courses, and provide several examples that demonstrate how to follow these principles. The dataset from our survey allows others to explore the diversity of data visualization courses, and our teaching principles give guidance for encouraging statistical thinking when teaching data visualization.
format Preprint
id arxiv_https___arxiv_org_abs_2412_16402
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle The Landscape of College-level Data Visualization Courses, and the Benefits of Incorporating Statistical Thinking
Branson, Zach
Parra, Monica Paz
Yurko, Ronald
Other Statistics
Human-Computer Interaction
Data visualization is a core part of statistical practice and is ubiquitous in many fields. Although there are numerous books on data visualization, instructors in statistics and data science may be unsure how to teach data visualization, because it is such a broad discipline. To give guidance on teaching data visualization from a statistical perspective, we make two contributions. First, we conduct a survey of data visualization courses at top colleges and universities in the United States, in order to understand the landscape of data visualization courses. We find that most courses are not taught by statistics and data science departments and do not focus on statistical topics, especially those related to inference. Instead, most courses focus on visual storytelling, aesthetic design, dashboard design, and other topics specialized for other disciplines. Second, we outline three teaching principles for incorporating statistical inference in data visualization courses, and provide several examples that demonstrate how to follow these principles. The dataset from our survey allows others to explore the diversity of data visualization courses, and our teaching principles give guidance for encouraging statistical thinking when teaching data visualization.
title The Landscape of College-level Data Visualization Courses, and the Benefits of Incorporating Statistical Thinking
topic Other Statistics
Human-Computer Interaction
url https://arxiv.org/abs/2412.16402