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Details for:
Lorenz U. Reinforcement Learning From Scratch...2022
lorenz u reinforcement learning from scratch 2022
Type:
E-books
Files:
1
Size:
7.8 MB
Uploaded On:
Oct. 29, 2022, 3:30 p.m.
Added By:
andryold1
Seeders:
3
Leechers:
0
Info Hash:
BFA68C465B2ECD9D38EF931DA99ADCFB7AB8794B
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Textbook in PDF format In ancient games such as chess or Go, the most brilliant players can improve by studying the strategies produced by a machine. Robotic systems practice their own movements. In arcade games, agents capable of learning reach superhuman levels within a few hours. How do these spectacular reinforcement learning algorithms work ? With easy-to-understand explanations and clear examples in Java and Greenfoot, you can acquire the principles of reinforcement learning and apply them in your own intelligent agents. Greenfoot (M.Kölling, King's College London) and the hamster model (D. Bohles, University of Oldenburg) are simple but also powerful didactic tools that were developed to convey basic programming concepts. The result is an accessible introduction into machine learning that concentrates on reinforcement learning. Taking the reader through the steps of developing intelligent agents, from the very basics to advanced aspects, touching on a variety of machine learning algorithms along the way, one is allowed to play along, experiment, and add their own ideas and experiments. Reinforcement Learning as a Subfield of Machine Learning. Basic Concepts of Reinforcement Learning. Optimal Decision-Making in a Known Environment. Decision-Making and Learning in an Unknown Environment. Artificial Neural Networks as Estimators for State Values and the Action Selection. Guiding Ideas in Artificial Intelligence over Time
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Lorenz U. Reinforcement Learning From Scratch...2022.pdf
7.8 MB