Dilranjan S. Wickramasuriya Rose T. Faghih Wickramasuriya Bayesian Filter Design for Computational Medicine

Bayesian Filter Design for Computational Medicine

von Dilranjan S. Wickramasuriya Rose T. Faghih

A State-Space Estimation Framework

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Beschreibung

This book serves as a tutorial that explains how different state estimators (Bayesian filters) can be built when all or part of the observations are binary. The book begins by briefly motivating the need for point process state estimation followed by an introduction to the overall approach, as well as some basic background material in statistics that are necessary for the equation derivations that are utilized in subsequent chapters. The subsequent chapters focus on different state-space models and provides step-by-step explanations on how to build the corresponding Bayesian filters.

Each of the main chapters that describes a single state-space model also describes the corresponding MATLAB code examples at the end. Descriptions are also provided regarding the code. The code contains both simulated and experimental data examples. All the experimental data examples are taken from real-world experiments. The experiments involve the recording of skin conductance, heart rate and blood cortisol data. A MATLAB toolbox of code examples that cover the different filters covered in the book is included in a companion webpage.

The book is primarily intended for graduate students in either electrical engineering or biomedical engineering who will be beginning research in state estimation related to point process data or mixed data (i.e., point processes and other types of observations). The book can also be used by practicing researchers who measure skin conductance and heart rate or pulsatile hormones in their own work (e.g. in psychology).

This is an open access book.


This book serves as a tutorial that explains how different state estimators (Bayesian filters) can be built when all or part of the observations are binary. The book begins by briefly motivating the need for point process state estimation followed by an introduction to the overall approach, as well as some basic background material in statistics that are necessary for the equation derivations that are utilized in subsequent chapters. The subsequent chapters focus on different state-space models and provide step-by-step explanations on how to build the corresponding Bayesian filters.

Each of the main chapters that describes a single state-space model also describes the corresponding MATLAB code examples at the end. Descriptions are also provided regarding the code. The code contains both simulated and experimental data examples. All the experimental data examples are taken from real-world experiments. The experiments involve the recording of skin conductance, heartrate and blood cortisol data. A MATLAB toolbox of code examples that cover the different filters covered in the book is included in a companion webpage.

The book is primarily intended for graduate students in either electrical engineering or biomedical engineering who will be beginning research in state estimation related to point process data or mixed data (i.e., point processes and other types of observations). The book can also be used by practicing researchers who measure skin conductance and heart rate or pulsatile hormones in their own work (e.g. in psychology).

This is an open access book.


Provides a tutorial-style introduction on state estimation methods based on point process observations Includes experimental data examples are taken from real-world experiments This book is open access, which means that you have free and unlimited access Provides MATLAB code examples so researchers working in emotion

Autor*in

Dilranjan S. Wickramasuriya

Themen in »Bayesian Filter Design for Computational Medicine«

State-space estimation Bayesian filtering Bayesian decoder design Physiological decoders Mixed filters Biomedical signal processing Electrodermal activity analysis skin response signal processing Galvanic skin response signal Galvanic skin response processing Bayesian Filter Design neuroengineering Bayesian Filter Design computational medicine bayesian Open Access

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Details

ISBN: 9783031471063
Verlag: Springer International Publishing
Erscheinung: 31.03.2025

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