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Kalman Filtering Under Information Theoretic Criteria eBook

de Jose C. Principe, Lujuan Dang, Badong Chen e Nanning Zheng
idioma: inglês
Editor: Springer International Publishing, agosto de 2023 ‧
132,49€
105,99€
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Ebook para ADE
This book provides several efficient Kalman filters (linear or nonlinear) under information theoretic criteria. They achieve excellent performance in complicated non-Gaussian noises with low computation complexity and have great practical application potential. The book combines all these perspectives and results in a single resource for students and practitioners in relevant application fields. Each chapter starts with a brief review of fundamentals, presents the material focused on the most important properties and evaluates comparatively the models discussing free parameters and their effect on the results. Proofs are provided at the end of each chapter. The book is geared to senior undergraduates with a basic understanding of linear algebra, signal processing and statistics, as well as graduate students or practitioners with experience in Kalman filtering.

Kalman Filtering Under Information Theoretic Criteria

de Jose C. Principe, Lujuan Dang, Badong Chen e Nanning Zheng

Propriedade Descrição
ISBN: 9783031337642
Editor: Springer International Publishing
Data de Lançamento: agosto de 2023
Idioma: Inglês
Tipo de produto: eBook
Formato e Compatibilidade:
Coleção: Mathematics And Statistics
Classificação Temática: eBooks em Inglês > Ciências Exatas e Naturais > Matemática
eBooks em Inglês > Economia, Finanças e Contabilidade > Economia
EAN: 9783031337642
Acessibilidade: Ver características de acessibilidade indicadas pelo editor