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Intelligent Projects Using Python

You're reading from   Intelligent Projects Using Python 9 real-world AI projects leveraging machine learning and deep learning with TensorFlow and Keras

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Product type Paperback
Published in Jan 2019
Publisher Packt
ISBN-13 9781788996921
Length 342 pages
Edition 1st Edition
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Author (1):
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Santanu Pattanayak Santanu Pattanayak
Author Profile Icon Santanu Pattanayak
Santanu Pattanayak
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Table of Contents (12) Chapters Close

Preface 1. Foundations of Artificial Intelligence Based Systems FREE CHAPTER 2. Transfer Learning 3. Neural Machine Translation 4. Style Transfer in Fashion Industry using GANs 5. Video Captioning Application 6. The Intelligent Recommender System 7. Mobile App for Movie Review Sentiment Analysis 8. Conversational AI Chatbots for Customer Service 9. Autonomous Self-Driving Car Through Reinforcement Learning 10. CAPTCHA from a Deep-Learning Perspective 11. Other Books You May Enjoy

The discriminators of the DiscoGAN

The discriminators of the DiscoGAN would learn to distinguish the real images from the fake ones in a specific domain. We will have two discriminators: one for domain A, and one for domain B. The discriminators are also convolutional networks that can perform binary classification. Unlike the traditional classification-based convolutional networks, the discriminators don't have any fully connected layers. The input images are down-sampled using convolution with a stride of two until the final layer, where the output is 1 x 1. Again, we use leaky ReLU as the activation function and batch normalization for stable and fast convergence. The following code shows the discriminator build function implementation in TensorFlow:

def build_discriminator(self,image,reuse=False,name='discriminator'):
with tf.variable_scope(name):
...
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