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Regression Analysis with R

You're reading from  Regression Analysis with R

Product type Book
Published in Jan 2018
Publisher Packt
ISBN-13 9781788627306
Pages 422 pages
Edition 1st Edition
Languages
Author (1):
Giuseppe Ciaburro Giuseppe Ciaburro
Profile icon Giuseppe Ciaburro

Table of Contents (15) Chapters

Title Page
Packt Upsell
Contributors
Preface
1. Getting Started with Regression 2. Basic Concepts – Simple Linear Regression 3. More Than Just One Predictor – MLR 4. When the Response Falls into Two Categories – Logistic Regression 5. Data Preparation Using R Tools 6. Avoiding Overfitting Problems - Achieving Generalization 7. Going Further with Regression Models 8. Beyond Linearity – When Curving Is Much Better 9. Regression Analysis in Practice 1. Other Books You May Enjoy Index

Bayesian linear regression


In Chapter 3, More Than Just One Predictor – MLR, we have seen that the general Multiple Linear Regression (MLR) model for n variables is of the form:

Here, x1, x2,.. xn are the n predictors and y is the only response variable. The coefficients β measure the change in the y value associated with a change of xi, keeping all the other variables constant.

In order to estimate β, we minimized the following term:

The general linear regression model can be expressed using a condensed formulation:

Here, β =[β0, β1, β2,…, βn]. To determine the intercept and the slope through the least squares method, we have to solve the previous equation with respect to β, as follows (we must estimate the coefficients with the normal equation):

To predict a new value of the response variable, given some new predictors data, we simply multiply the components of the new predictors by the associated β coefficients. So, in estimating a new observation, the β coefficients are treated as fixed values...

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