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Non Gaussian State Estimation and the Maximum Correntropy Approach

Gebonden Engels 2025 1e druk 9781032581972
€ 270,71
Levertijd ongeveer 11 werkdagen
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Samenvatting

This monograph aims to present the recent advances in state estimation, in terms of relaxing the conventional assumption that probability densities remain Gaussian. The book explains how MCC is integrated into the conventional Bayesian estimation framework and their implementation to real-life problems.

Features:

Reviews well-established non-Gaussian estimation methods including applications of techniques

Covers relaxation of gaussian assumption

Discusses challenges in formulating non-liner non-Gaussian estimation framework

Illustrates the applicability of the algorithms mentioned to real-life problems

Explores derivation of non-linear non-Gaussian estimation framework based on maximum correntropy criterion

This book is aimed at researchers and graduate students in electrical engineering, robotics, and dynamic systems.

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Inhoudsopgave

1. Introduction 2. Estimation With Weighted Least Squares 3. Recursive State Estimation: Linear Systems 4. Nonlinear State Estimation 5. Maximum Correntropy Algorithms For Nonlinear Systems 6. Maximum Correntropy Algorithms For Non-Gaussian Systems 7. Angles-Only Target Tracking 8. Tracking And Interception Of Ballistic Target On Re-entry 9. Application To Process Control: Quadruple Tank System

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€ 270,71
Levertijd ongeveer 11 werkdagen
Gratis verzonden

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          Non Gaussian State Estimation and the Maximum Correntropy Approach