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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

Formulating the cost function

It is easier to work with the architecture where we get the Q values for all the actions for a given state the network is fed with. The same is illustrated in the right-hand side of Figure 9.3. We would let the agent interact with the environment and collect states and rewards based on which we will learn the Q functions. In fact, the network would learn the Q function by minimizing the predicted Q values for all actions for a given state s with those of the target Q values. Each training record is a tuple (s(t), a(t), r(t), s(t+1)).

Bear in mind that the target Q values are to be computed based on the network itself. Let's consider the fact that the network is parametrized by the W ∈ Rd weights and we learn mapping from the states to the Q values for each action given the state. For n set of actions the network would predict i Q values...

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