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Mastering Java Machine Learning

You're reading from   Mastering Java Machine Learning A Java developer's guide to implementing machine learning and big data architectures

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Product type Paperback
Published in Jul 2017
Publisher Packt
ISBN-13 9781785880513
Length 556 pages
Edition 1st Edition
Languages
Concepts
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Authors (2):
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Uday Kamath Uday Kamath
Author Profile Icon Uday Kamath
Uday Kamath
Krishna Choppella Krishna Choppella
Author Profile Icon Krishna Choppella
Krishna Choppella
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Table of Contents (13) Chapters Close

Preface 1. Machine Learning Review 2. Practical Approach to Real-World Supervised Learning FREE CHAPTER 3. Unsupervised Machine Learning Techniques 4. Semi-Supervised and Active Learning 5. Real-Time Stream Machine Learning 6. Probabilistic Graph Modeling 7. Deep Learning 8. Text Mining and Natural Language Processing 9. Big Data Machine Learning – The Final Frontier A. Linear Algebra B. Probability Index

Appendix A. Linear Algebra

Linear algebra is of primary importance in machine learning and it gives us an array of tools that are especially handy for the purpose of manipulating data and extracting patterns from it. Moreover, when data must be processed in batches as in much machine learning, great runtime efficiencies are gained from using the "vectorized" form as an alternative to traditional looping constructs when implementing software solutions in optimization or data pre-processing or any number of operations in analytics.

We will consider only the domain of real numbers in what follows. Thus, a vector Linear Algebra represents an array of n real-valued numbers. A matrix Linear Algebra is a two-dimensional array of m rows and n columns of real-valued numbers.

Some key concepts from the foundation of linear algebra are presented here.

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