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Machine Learning with scikit-learn Quick Start Guide

You're reading from   Machine Learning with scikit-learn Quick Start Guide Classification, regression, and clustering techniques in Python

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Product type Paperback
Published in Oct 2018
Publisher Packt
ISBN-13 9781789343700
Length 172 pages
Edition 1st Edition
Languages
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Author (1):
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Kevin Jolly Kevin Jolly
Author Profile Icon Kevin Jolly
Kevin Jolly
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Table of Contents (10) Chapters Close

Preface 1. Introducing Machine Learning with scikit-learn FREE CHAPTER 2. Predicting Categories with K-Nearest Neighbors 3. Predicting Categories with Logistic Regression 4. Predicting Categories with Naive Bayes and SVMs 5. Predicting Numeric Outcomes with Linear Regression 6. Classification and Regression with Trees 7. Clustering Data with Unsupervised Machine Learning 8. Performance Evaluation Methods 9. Other Books You May Enjoy

Clustering Data with Unsupervised Machine Learning

Most of the data that you will encounter out in the wild will not come with labels. It is impossible to apply supervised machine learning techniques when your data does not come with labels. Unsupervised machine learning addresses this issue by grouping data into clusters; we can then assign labels based on those clusters.

Once the data has been clustered into a specific number of groups, we can proceed to give those groups labels. Unsupervised machine learning is the first step that you, as the data scientist, will have to implement, before you can apply supervised machine learning techniques (such as classification) to make meaningful predictions.

A common application of the unsupervised machine learning algorithm is customer data, which can be found across a wide range of industries. As a data scientist, your job is to find...

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