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The Unsupervised Learning Workshop

You're reading from   The Unsupervised Learning Workshop Get started with unsupervised learning algorithms and simplify your unorganized data to help make future predictions

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Product type Paperback
Published in Jul 2020
Publisher Packt
ISBN-13 9781800200708
Length 550 pages
Edition 1st Edition
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Authors (3):
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Benjamin Johnston Benjamin Johnston
Author Profile Icon Benjamin Johnston
Benjamin Johnston
Christopher Kruger Christopher Kruger
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Christopher Kruger
Aaron Jones Aaron Jones
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Aaron Jones
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Toc

Table of Contents (11) Chapters Close

Preface
1. Introduction to Clustering 2. Hierarchical Clustering FREE CHAPTER 3. Neighborhood Approaches and DBSCAN 4. Dimensionality Reduction Techniques and PCA 5. Autoencoders 6. t-Distributed Stochastic Neighbor Embedding 7. Topic Modeling 8. Market Basket Analysis 9. Hotspot Analysis Appendix

Introduction

In the last chapter, the discussion focused on preparing data for modeling using dimensionality reduction and autoencoding. Large feature sets can be problematic when it comes to modeling because of multicollinearity and extensive computation and can thereby hinder real-time prediction. Dimensionality reduction using principal component analysis is one antidote to that problem. Similarly, autoencoders seek to find optimal feature encodings. You can think of autoencoders as a means of identifying quality interaction terms for the dataset. Let's now move past dimensionality reduction and look at some real-world modeling techniques.

Topic modeling is one facet of Natural Language Processing (NLP), the field of computer science exploring the syntactic and semantic analysis of natural language, which has been increasing in popularity with the increased availability of textual datasets. NLP can deal with language in almost any form, including text, speech, and images...

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