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Hands-On Markov Models with Python

You're reading from   Hands-On Markov Models with Python Implement probabilistic models for learning complex data sequences using the Python ecosystem

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Product type Paperback
Published in Sep 2018
Publisher Packt
ISBN-13 9781788625449
Length 178 pages
Edition 1st Edition
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Authors (2):
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Ankur Ankan Ankur Ankan
Author Profile Icon Ankur Ankan
Ankur Ankan
Abinash Panda Abinash Panda
Author Profile Icon Abinash Panda
Abinash Panda
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Toc

Markov Decision Process

In this chapter, we will talk about another application of HMMs known as Markov Decision Process (MDP). In the case of MDPs, we introduce a reward to our model, and any sequence of states taken by the process results in a specific reward. We will also introduce the concept of discounts, which will allow us to control how short-sighted or far-sighted we want our agent to be. The goal of the agent would be to maximize the total reward that it can get.

In this chapter, we will be covering the following topics:

  • Reinforcement learning
  • The Markov reward process
  • Markov decision processes
  • Code example
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