eBook: Control Systems and Reinforcement Learning (DRM PDF)
 
電子書格式: DRM PDF
作者: Sean Meyn 
分類: Econometrics ,
Probability & statistics ,
Mathematical modelling ,
Stochastics ,
Algorithms & data structures ,
Machine learning  
書城編號: 25932051


售價: $650.00

購買後立即進貨, 約需 1-4 天

 
 
製造商: Cambridge University Press
出版日期: 2022/06/09
ISBN: 9781009063395
 
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商品簡介
A high school student can create deep Q-learning code to control her robot, without any understanding of the meaning of 'deep' or 'Q', or why the code sometimes fails. This book is designed to explain the science behind reinforcement learning and optimal control in a way that is accessible to students with a background in calculus and matrix algebra. A unique focus is algorithm design to obtain the fastest possible speed of convergence for learning algorithms, along with insight into why reinforcement learning sometimes fails. Advanced stochastic process theory is avoided at the start by substituting random exploration with more intuitive deterministic probing for learning. Once these ideas are understood, it is not difficult to master techniques rooted in stochastic control. These topics are covered in the second part of the book, starting with Markov chain theory and ending with a fresh look at actor-critic methods for reinforcement learning.
Sean Meyn 作者作品表

eBook: Control Systems and Reinforcement Learning (DRM PDF)

Control Systems and Reinforcement Learning (Hardcover)

Markov Chains and Stochastic Stability (Paperback)

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