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Mobile Artificial Intelligence Projects

You're reading from   Mobile Artificial Intelligence Projects Develop seven projects on your smartphone using artificial intelligence and deep learning techniques

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Product type Paperback
Published in Mar 2019
Publisher Packt
ISBN-13 9781789344073
Length 312 pages
Edition 1st Edition
Languages
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Authors (3):
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Arun Padmanabhan Arun Padmanabhan
Author Profile Icon Arun Padmanabhan
Arun Padmanabhan
Karthikeyan NG Karthikeyan NG
Author Profile Icon Karthikeyan NG
Karthikeyan NG
Matt Cole Matt Cole
Author Profile Icon Matt Cole
Matt Cole
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Table of Contents (12) Chapters Close

Preface 1. Artificial Intelligence Concepts and Fundamentals 2. Creating a Real-Estate Price Prediction Mobile App FREE CHAPTER 3. Implementing Deep Net Architectures to Recognize Handwritten Digits 4. Building a Machine Vision Mobile App to Classify Flower Species 5. Building an ML Model to Predict Car Damage Using TensorFlow 6. PyTorch Experiments on NLP and RNN 7. TensorFlow on Mobile with Speech-to-Text with the WaveNet Model 8. Implementing GANs to Recognize Handwritten Digits 9. Sentiment Analysis over Text Using LinearSVC 10. What is Next? 11. Other Books You May Enjoy

Introduction to GANs

GANs are a class of machine learning (ML) algorithm that's used in unsupervised ML. They are comprised of two deep neural networks that are competing against each other (so it is termed as adversarial). GANs were introduced at the University of Montreal in 2014 by Ian Goodfellow and other researchers, including Yoshua Bengio.

Ian Goodfellow's paper on GANs can be found at https://arxiv.org/abs/1406.2661.

GANs have the potential to mimic any data. This means that GANs can be trained to create similar versions of any data, such as images, audio, or text. A simple workflow of a GAN is shown in the following diagram:

The workflow of the GAN will be explained in the following sections.

Generative versus discriminative algorithms

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