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The Statistics and Machine Learning with R Workshop

You're reading from  The Statistics and Machine Learning with R Workshop

Product type Book
Published in Oct 2023
Publisher Packt
ISBN-13 9781803240305
Pages 516 pages
Edition 1st Edition
Languages
Author (1):
Liu Peng Liu Peng
Profile icon Liu Peng

Table of Contents (20) Chapters

Preface 1. Part 1:Statistics Essentials
2. Chapter 1: Getting Started with R 3. Chapter 2: Data Processing with dplyr 4. Chapter 3: Intermediate Data Processing 5. Chapter 4: Data Visualization with ggplot2 6. Chapter 5: Exploratory Data Analysis 7. Chapter 6: Effective Reporting with R Markdown 8. Part 2:Fundamentals of Linear Algebra and Calculus in R
9. Chapter 7: Linear Algebra in R 10. Chapter 8: Intermediate Linear Algebra in R 11. Chapter 9: Calculus in R 12. Part 3:Fundamentals of Mathematical Statistics in R
13. Chapter 10: Probability Basics 14. Chapter 11: Statistical Estimation 15. Chapter 12: Linear Regression in R 16. Chapter 13: Logistic Regression in R 17. Chapter 14: Bayesian Statistics 18. Index 19. Other Books You May Enjoy

Solving a system of linear equations

The matrix-vector multiplication operation gives rise to a system of equations. In a typical machine learning algorithm, data comes in the form of a matrix, X, and the target outcome is a vector, y. When the model that’s used is a straightforward linear model, we assume the input-output relationship as Xw = y, where w represents the vector of features/coefficients. An n x p matrix of input data multiplies a p x 1 vector, w, of features to produce, as expected, an n x 1 output vector, y. The essence of linear regress is thus to solve for the exact values in w such that the system of linear equations in Xw = y are satisfied.

The equivalence between matrix-vector multiplication and the system of linear equations may take some time to become noticeable. Let’s pause and look at this equivalence.

System of linear equations

We are already familiar with the process of calculating a matrix-vector multiplication operation. A 2x2 matrix...

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