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Neural Networks with Keras Cookbook

Neural Networks with Keras Cookbook

By : V Kishore Ayyadevara
3.3 (8)
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Neural Networks with Keras Cookbook

Neural Networks with Keras Cookbook

3.3 (8)
By: V Kishore Ayyadevara

Overview of this book

This book will take you from the basics of neural networks to advanced implementations of architectures using a recipe-based approach. We will learn about how neural networks work and the impact of various hyper parameters on a network's accuracy along with leveraging neural networks for structured and unstructured data. Later, we will learn how to classify and detect objects in images. We will also learn to use transfer learning for multiple applications, including a self-driving car using Convolutional Neural Networks. We will generate images while leveraging GANs and also by performing image encoding. Additionally, we will perform text analysis using word vector based techniques. Later, we will use Recurrent Neural Networks and LSTM to implement chatbot and Machine Translation systems. Finally, you will learn about transcribing images, audio, and generating captions and also use Deep Q-learning to build an agent that plays Space Invaders game. By the end of this book, you will have developed the skills to choose and customize multiple neural network architectures for various deep learning problems you might encounter.
Table of Contents (18 chapters)
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Image Generation

In the previous chapters, we learned about predicting the class of an image and detecting where the object is located in the whole image. If we work backwards, we should be in a position to generate an image if we are given a class. Generative networks come in handy in this scenario, where we try to create new images that look very similar to the original image.

In this chapter, we will cover the following recipes:

  • Generating images that can fool a neural network using an adversarial attack
  • DeepDream algorithm to generate images
  • Neural style transfer between images
  • Generating images of digits using Generative Adversarial Networks
  • Generating images of digits using a Deep Convolutional GAN
  • Face generation using a Deep Convolutional GAN
  • Face transition from one to another
  • Performing vector arithmetic on generated images
...

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