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Hands-On Automated Machine Learning

You're reading from   Hands-On Automated Machine Learning A beginner's guide to building automated machine learning systems using AutoML and Python

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Product type Paperback
Published in Apr 2018
Publisher Packt
ISBN-13 9781788629898
Length 282 pages
Edition 1st Edition
Languages
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Authors (2):
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Umit Mert Cakmak Umit Mert Cakmak
Author Profile Icon Umit Mert Cakmak
Umit Mert Cakmak
Sibanjan Das Sibanjan Das
Author Profile Icon Sibanjan Das
Sibanjan Das
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Toc

Table of Contents (10) Chapters Close

Preface 1. Introduction to AutoML FREE CHAPTER 2. Introduction to Machine Learning Using Python 3. Data Preprocessing 4. Automated Algorithm Selection 5. Hyperparameter Optimization 6. Creating AutoML Pipelines 7. Dive into Deep Learning 8. Critical Aspects of ML and Data Science Projects 9. Other Books You May Enjoy

Hyperparameter Optimization

The auto-sklearn library uses Bayesian optimization to tune the hyperparameters of machine learning (ML) pipelines. You will learn the inner workings of Bayesian optimization, but let's first review the basics of mathematical optimization.

In simple terms, optimization deals with selecting the best values to minimize or maximize a given function. A function is called a loss function or a cost function if our objective is minimization. If you are trying to maximize it, then it's called a utility function or a fitness function. For example, when you are building ML models, a loss function helps you to minimize the prediction error during the training phase.

When you look at this whole process from a wider angle, there are many variables that come into play.

First, you may work on a system to decide the type of problem, such as an unsupervised...

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