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Saturday 17 November 2018

Machine Learning With Random Forests And Decision Trees: A Mostly Intuitive Guide, But Also Some Python by Scott Hartshorn





Machine Learning With Random Forests And Decision Trees: A Mostly Intuitive Guide, But Also Some Python by Scott Hartshorn
Information
Random Forests are one type of machine learning algorithm. They are typically used to categorize something based on other data that you have. The purpose of this book is to help you understand how Random Forests work, as well as the different options that you have when using them to analyze a problem. Additionally, since Decision Trees are a fundamental part of Random Forests, this book explains how they work. This book is focused on understanding Random Forests at the conceptual level. Knowing how they work, why they work the way that they do, and what options are available to improve results. This book covers how Random Forests work in an intuitive way, and also explains the equations behind many of the functions, but it only has a small amount of actual code (in python). This book is focused on giving examples and providing analogies for the most fundamental aspects of how random forests and decision trees work. The reason is that those are easy to understand and they stick with you. There are also some really interesting aspects of random forests, such as information gain, feature importances, or out of bag error, that simply cannot be well covered without diving into the equations of how they work. For those the focus is providing the information in a straight forward and easy to understand way.
Pages
76
Publisher
August 12th 2016
Language
English
Type
azw3
Size
1.3 MB
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