STS 2300 INTRODUCTION TO DATA ANALYTICS

This course will introduce students to a cutting edge statistical programming language, such as R, and will provide foundational statistical tools for data analytics. Students will learn to apply computer-intensive randomization-based approaches to statistical inference for a range of scenarios that build upon and expand topics covered in introductory Statistics classes. Key data analytics topics will include importing data from a wide variety of sources, data wrangling, data visualization, and exploratory data analysis. Simple and multiple linear regression will be introduced from a predictive modeling perspective. Throughout the course, students will learn to generate reproducible and dynamic statistical reports, with emphasis placed on communicating data analytic results to non-statistical audiences.

Credits

4 sh

Prerequisite

STS 2120 (pre or corequisite), or by permission of the Statistics Program Coordinator.

Course Types

First-Year Foundation; Science

Offered

  • Fall
  • Spring

  1. This course will enable students to improve their data competencies using leading statistical software for data analytics, such as R. Specific outcomes that should prove valuable include the ability to:
    - Import various types of data;
    - Wrangle data into a format appropriate for conducting planned analyses;
    - Build multi-layered data visualizations that transcend the default visualizations typically provided by statistical software;
    - Generate reproducible and dynamic statistical reports and presentations using R Markdown, or a comparable platform;
    - Fit simple and multiple linear regression models for the purpose of predicting a quantitative response variable;
    - Test statistical hypotheses and generate confidence intervals for a broad range of data measures using randomization- and permutation-based approaches;
    - Conceptualize, plan, and conduct a data analytics project, from beginning to end;
    - Effectively communicate data analytic results orally, visually, and in writing.

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