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A Tutorial on Linear Function Approximators for Dynamic Programming and Reinforcement Learning

A Tutorial on Linear Function Approximators for Dynamic Programming and Reinforcement Learning( )
Author: Geramifard, Alborz
Walsh, Thomas J.
Tellex, Stefanie
Chowdhary, Girish
How, Jonathan P.
Roy, Nicholas
Series title:Foundations and Trends in Machine Learning Ser.
ISBN:978-1-60198-760-0
Publication Date:Dec 2013
Publisher:Now Publishers
Book Format:Paperback
List Price:USD $70.00
Book Description:

This tutorial reviews techniques for planning and learning in Markov Decision Processes (MDPs) with linear function approximation of the value function. Two major paradigms for finding optimal policies were considered: dynamic programming (DP) techniques for planning and reinforcement learning (RL).

Book Details
Pages:92
Detailed Subjects: Mathematics / Optimization
Computers / Data Science / Machine Learning
Physical Dimensions (W X L X H):6.14 x 9.21 x 0.19 Inches
Book Weight:0.315 Pounds



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