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Regression Analysis with R

You're reading from   Regression Analysis with R Design and develop statistical nodes to identify unique relationships within data at scale

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Product type Paperback
Published in Jan 2018
Publisher Packt
ISBN-13 9781788627306
Length 422 pages
Edition 1st Edition
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Author (1):
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Giuseppe Ciaburro Giuseppe Ciaburro
Author Profile Icon Giuseppe Ciaburro
Giuseppe Ciaburro
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Table of Contents (11) Chapters Close

Preface 1. Getting Started with Regression 2. Basic Concepts – Simple Linear Regression FREE CHAPTER 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 10. Other Books You May Enjoy

Regularization

As an alternative to the selection methods discussed in the previous sections (forward, backward, stepwise), it is possible to adopt methods that use all predictors but bind or adjust the coefficients by bringing them to very small or zero values (shrinkage). These methods are actually defined as automatic feature selection methods, as they improve generalization. They are called regularization methods and involve modifying the performance function, normally selected as the sum of the squares of regression errors on the training set.

When a large number of variables are available, the least square estimates of a linear model often have a low bias but a high variance with respect to models with fewer variables. Under these conditions, as we have seen in previous sections, there is an overfitting problem. To improve precision prediction by allowing greater...

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