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Hands-On Deep Learning for Images with TensorFlow

You're reading from   Hands-On Deep Learning for Images with TensorFlow Build intelligent computer vision applications using TensorFlow and Keras

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Product type Paperback
Published in Jul 2018
Publisher Packt
ISBN-13 9781789538670
Length 96 pages
Edition 1st Edition
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Author (1):
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Will Ballard Will Ballard
Author Profile Icon Will Ballard
Will Ballard
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Classical Neural Network

Now that we've prepared our image data, it's time to take what we've learned and use it to build a classical, or dense neural network. In this chapter, we will cover the following topics:

  • First, we'll look at classical, dense neural networks and their structure.
  • Then, we'll talk about activation functions and nonlinearity.
  • When we come to actually classify, we need another piece of math, softmax. We'll discuss why this matters later in this chapter.
  • We'll look at training and testing data, as well as Dropout and Flatten, which are new network components, designed to make the networks work better.
  • Then, we'll look at how machine learners actually solve.
  • Finally, we'll learn about the concepts of hyperparameters and grid searches in order to fine-tune and build the best neural network that we can.

Let's...

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