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PyTorch Deep Learning Hands-On

You're reading from   PyTorch Deep Learning Hands-On Build CNNs, RNNs, GANs, reinforcement learning, and more, quickly and easily

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Product type Paperback
Published in Apr 2019
Publisher Packt
ISBN-13 9781788834131
Length 250 pages
Edition 1st Edition
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Authors (2):
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Sherin Thomas Sherin Thomas
Author Profile Icon Sherin Thomas
Sherin Thomas
Sudhanshu Passi Sudhanshu Passi
Author Profile Icon Sudhanshu Passi
Sudhanshu Passi
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Summary

In this chapter, we learned about a whole new field of unsupervised learning: reinforcement learning. It is a whole different field and we have just touched on this topic in this chapter. We learned how to phrase a problem for reinforcement learning, and then we trained a model that sees a few measurements provided by the environment and can learn how to balance a cartpole. You can apply the same knowledge to teach robots to walk, to drive cars, and also to play games. This is one of the more physical applications of deep learning.

In the next and closing chapter, we'll be looking at productionizing our PyTorch models so that you can run them on any framework or language, and scale your deep learning applications.

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