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  • June 2021
  • Technical Note
  • HBS Case Collection

Introduction to Linear Regression

By: Michael Parzen and Paul J. Hamilton
  • Format:Print
  • | Language:English
  • | Pages:15
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Abstract

This technical note introduces (from an applied point of view) the theory and application of simple and multiple linear regression. The motivation for the model is introduced, as well as how to interpret the summary output with regard to prediction and statistical inference. Using salary data from Glassdoor, the note provides a broad overview of correlation, simple linear regression, and multiple regression. Students will learn how to interpret regression coefficients and their corresponding p-values. The note also describes evaluation metrics such as r-squared and residual squared error. Finally, the note introduces students to diagnostic plots and reinforces the important concept that correlation is not causation. Throughout, the note demonstrates how these concepts can be implemented using the R statistical programming language.

Keywords

Analysis; Forecasting and Prediction; Risk and Uncertainty; Theory

Citation

Parzen, Michael, and Paul J. Hamilton. "Introduction to Linear Regression." Harvard Business School Technical Note 621-086, June 2021.
  • Educators

About The Author

Michael I. Parzen

Technology and Operations Management
→More Publications

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    Linear Regression

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  • Prediction & Machine Learning By: Iavor I. Bojinov, Michael Parzen and Paul J. Hamilton
  • Linear Regression By: Iavor I. Bojinov, Michael Parzen and Paul J. Hamilton
  • Statistical Inference By: Iavor I. Bojinov, Michael Parzen and Paul J. Hamilton
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