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Machine Learning with R Quick Start Guide

You're reading from   Machine Learning with R Quick Start Guide A beginner's guide to implementing machine learning techniques from scratch using R 3.5

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Product type Paperback
Published in Mar 2019
Publisher Packt
ISBN-13 9781838644338
Length 250 pages
Edition 1st Edition
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Author (1):
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Iván Pastor Sanz Iván Pastor Sanz
Author Profile Icon Iván Pastor Sanz
Iván Pastor Sanz
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Deep learning in neural networks

For machine learning, we need systems that can process nonlinear and unrelated sets of data. This is very important so that we can make predictions for bankruptcy problems, since the relationship between the default and explanatory variables will rarely be linear. Therefore, using neural networks is the best possible solution.

Artificial neural networks (ANNs) have long since been used to solve bankruptcy problems. An ANN is a computer system that has a number of interconnected processors. These processors provide outputs by processing information and by responding dynamically to the inputs that are provided. A prominent and basic example of ANN is the multilayer perceptron (MLP). An MLP can be represented as follows:

Except for the input nodes, each node is a neuron that uses a nonlinear activation function, which was sent in.

As is evident from...

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