A Comprehensive Guide to HSMM: Theory, Software, and Advanced Extensions

Author:   Nathalie Peyrard (INRAE, France) ,  Benoîte de Saporta (University of Montpellier 2, France)
Publisher:   ISTE Ltd
ISBN:  

9781836690351


Pages:   272
Publication Date:   19 December 2025
Format:   Hardback
Availability:   Awaiting stock   Availability explained
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A Comprehensive Guide to HSMM: Theory, Software, and Advanced Extensions


Overview

Hidden Semi-Markov Models (HSMMs) have been extensively used for diverse applications where the objective is to analyze time series whose dynamics can be explained by a hidden process. A Comprehensive Guide to HSMM offers an accessible introduction to the framework of HSMM, covering the main methods and theoretical results for maximum likelihood estimation in HSMM. It also includes a unique review of existing R and Python software for HSMM estimation. The book then introduces less classical related topics, such as multi-chain HSMM and controlled HSMM, with an emphasis on the challenges related to computational complexity. This book is primarily intended for master's and PhD students, researchers and academic faculty in the fields of statistics, applied probability, graphical models, computer science and connected domains. It is also meant to be accessible to practitioners involved in modeling, analysis or control of time series in the fields of reliability, theoretical ecology, signal processing, finance, medicine and epidemiology.

Full Product Details

Author:   Nathalie Peyrard (INRAE, France) ,  Benoîte de Saporta (University of Montpellier 2, France)
Publisher:   ISTE Ltd
Imprint:   ISTE Ltd
ISBN:  

9781836690351


ISBN 10:   1836690355
Pages:   272
Publication Date:   19 December 2025
Audience:   Professional and scholarly ,  Professional & Vocational
Format:   Hardback
Publisher's Status:   Active
Availability:   Awaiting stock   Availability explained
The supplier is currently out of stock of this item. It will be ordered for you and placed on backorder. Once it does come back in stock, we will ship it out for you.

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Author Information

Nathalie Peyrard is Senior Scientist at INRAE, Toulouse, France. Her research includes computational statistics in models with latent variables, with applications in ecology. Benoîte de Saporta is Professor of Applied Mathematics at the University of Montpellier, France. Her research includes applied probability (Markov processes, optimal stochastic control) and statistics (inference for partially hidden processes).

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