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MATLAB for Machine Learning

You're reading from   MATLAB for Machine Learning Practical examples of regression, clustering and neural networks

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Product type Paperback
Published in Aug 2017
Publisher Packt
ISBN-13 9781788398435
Length 382 pages
Edition 1st Edition
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Authors (2):
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Pavan Kumar Kolluru Pavan Kumar Kolluru
Author Profile Icon Pavan Kumar Kolluru
Pavan Kumar Kolluru
Giuseppe Ciaburro Giuseppe Ciaburro
Author Profile Icon Giuseppe Ciaburro
Giuseppe Ciaburro
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Toc

Table of Contents (10) Chapters Close

Preface 1. Getting Started with MATLAB Machine Learning FREE CHAPTER 2. Importing and Organizing Data in MATLAB 3. From Data to Knowledge Discovery 4. Finding Relationships between Variables - Regression Techniques 5. Pattern Recognition through Classification Algorithms 6. Identifying Groups of Data Using Clustering Methods 7. Simulation of Human Thinking - Artificial Neural Networks 8. Improving the Performance of the Machine Learning Model - Dimensionality Reduction 9. Machine Learning in Practice

Summary

In this chapter, we learned how to simulate typical human brain activities through the ANN. We understood the basic concept of ANN. We saw how to build a simple neural network architecture. We explored topics such as input, hidden, and output layers; weights of connections; and the activation function.

We learned how to choose the number of hidden layers, the number of nodes within each layer, and the network training algorithm. Then, we took a tour into of the Neural Network Toolbox (which provides algorithms), pre-trained models, and apps to create, train, visualize, and simulate shallow, as well as deep, neural networks. We checked out the neural network getting started GUI, the starting point for our neural network fitting, pattern recognition, clustering, and time series analysis.

Finally, we focused on fitting data with a neural network. We saw how to use the...

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