• Discrete Stochastic Processes Tools for Machine Learning and Data Science

Discrete Stochastic Processes Tools for Machine Learning and Data Science

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Est. Date: Feb 9, 2026
Overview

This text presents selected applications of discrete-time stochastic processes that involve random interactions and algorithms, and revolve around the Markov property. It covers recurrence properties of (excited) random walks, convergence and mixing of Markov chains, distribution modeling using phase-type distributions, applications to search engines and probabilistic automata, and an introduction to the Ising model used in statistical physics. Applications to data science are also considered via hidden Markov models and Markov decision processes. A total of 32 exercises and 17 longer problems are provided with detailed solutions and cover various topics of interest, including statistical learning.

Product Details

ISBN-13: 9783031658198
ISBN-10: 3031658191
Publisher: Springer Nature Switzerland
Publication date: 2024-10-13
Edition description: 2024
Pages: 288
Author: Nicolas Privault
Language: en
Binding: Paperback

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