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MATLAB Machine Learning Recipes: A Problem-Solution Approach

MATLAB Machine Learning Recipes: A Problem-Solution Approach

          
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Harness the power of MATLAB to resolve a wide range of machine learning challenges. This new and updated third edition provides examples of technologies critical to machine learning. Each example solves a real-world problem, and all code provided is executable. You can easily look up a particular problem and follow the steps in the solution.
This book has something for everyone interested in machine learning. It also has material that will allow those with an interest in other technology areas to see how machine learning and MATLAB can help them solve problems in their areas of expertise. The chapter on data representation and MATLAB graphics includes new data types and additional graphics. Chapters on fuzzy logic, simple neural nets, and autonomous driving have new examples added. And there is a new chapter on spacecraft attitude determination using neural nets. Authors Michael Paluszek and Stephanie Thomas show how all of these technologies allow you to build sophisticated applications to solve problems with pattern recognition, autonomous driving, expert systems, and much more.
What You Will Learn

  • Write code for machine learning, adaptive control, and estimation using MATLAB
  • Use MATLAB graphics and visualization tools for machine learning
  • Become familiar with neural nets
  • Build expert systems
  • Understand adaptive control
  • Gain knowledge of Kalman Filters

Who This Book Is For
Software engineers, control engineers, university faculty, undergraduate and graduate students, hobbyists.

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About the Book

Harness the power of MATLAB to resolve a wide range of machine learning challenges. This book provides a series of examples of technologies critical to machine learning. Each example solves a real-world problem. All code in MATLAB Machine Learning Recipes: A Problem-Solution Approach is executable. The toolbox that the code uses provides a complete set of functions needed to implement all aspects of machine learning. Authors Michael Paluszek and Stephanie Thomas show how all of these technologies allow the reader to build sophisticated applications to solve problems with pattern recognition, autonomous driving, expert systems, and much more.
What you'll learn:

  • How to write code for machine learning, adaptive control and estimation using MATLAB
  • How these three areas complement each other
  • How these three areas are needed for robust machine learning applications
  • How to use MATLAB graphics and visualization tools for machine learning
  • How to code real world examples in MATLAB for major applications of machine learning in big data
Who is this book for: The primary audiences are engineers, data scientists and students wanting a comprehensive and code cookbook rich in examples on machine learning using MATLAB.


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Product Details
  • ISBN-13: 9781484239155
  • Publisher: Apress
  • Publisher Imprint: Apress
  • Height: 254 mm
  • No of Pages: 347
  • Spine Width: 19 mm
  • Weight: 639 gr
  • ISBN-10: 1484239156
  • Publisher Date: 01 Jan 2019
  • Binding: Paperback
  • Language: English
  • Returnable: Y
  • Sub Title: A Problem-Solution Approach
  • Width: 178 mm


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