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Algorithms and programs of dynamic mixture estimation: unified approach to different types of components

This book provides a general theoretical background for constructing the recursive Bayesian estimation algorithms for mixture models. It collects the recursive algorithms for estimating dynamic mixtures of various distributions and brings them in the unified form, providing a scheme for constructing...

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Detalles Bibliográficos
Autores principales: Nagy, Ivan, Suzdaleva, Evgenia
Lenguaje:eng
Publicado: Springer 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1007/978-3-319-64671-8
http://cds.cern.ch/record/2282084
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author Nagy, Ivan
Suzdaleva, Evgenia
author_facet Nagy, Ivan
Suzdaleva, Evgenia
author_sort Nagy, Ivan
collection CERN
description This book provides a general theoretical background for constructing the recursive Bayesian estimation algorithms for mixture models. It collects the recursive algorithms for estimating dynamic mixtures of various distributions and brings them in the unified form, providing a scheme for constructing the estimation algorithm for a mixture of components modeled by distributions with reproducible statistics. It offers the recursive estimation of dynamic mixtures, which are free of iterative processes and close to analytical solutions as much as possible. In addition, these methods can be used online and simultaneously perform learning, which improves their efficiency during estimation. The book includes detailed program codes for solving the presented theoretical tasks. Codes are implemented in the open source platform for engineering computations. The program codes given serve to illustrate the theory and demonstrate the work of the included algorithms.
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institution Organización Europea para la Investigación Nuclear
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spelling cern-22820842021-04-21T19:05:06Zdoi:10.1007/978-3-319-64671-8http://cds.cern.ch/record/2282084engNagy, IvanSuzdaleva, EvgeniaAlgorithms and programs of dynamic mixture estimation: unified approach to different types of componentsMathematical Physics and MathematicsThis book provides a general theoretical background for constructing the recursive Bayesian estimation algorithms for mixture models. It collects the recursive algorithms for estimating dynamic mixtures of various distributions and brings them in the unified form, providing a scheme for constructing the estimation algorithm for a mixture of components modeled by distributions with reproducible statistics. It offers the recursive estimation of dynamic mixtures, which are free of iterative processes and close to analytical solutions as much as possible. In addition, these methods can be used online and simultaneously perform learning, which improves their efficiency during estimation. The book includes detailed program codes for solving the presented theoretical tasks. Codes are implemented in the open source platform for engineering computations. The program codes given serve to illustrate the theory and demonstrate the work of the included algorithms.Springeroai:cds.cern.ch:22820842017
spellingShingle Mathematical Physics and Mathematics
Nagy, Ivan
Suzdaleva, Evgenia
Algorithms and programs of dynamic mixture estimation: unified approach to different types of components
title Algorithms and programs of dynamic mixture estimation: unified approach to different types of components
title_full Algorithms and programs of dynamic mixture estimation: unified approach to different types of components
title_fullStr Algorithms and programs of dynamic mixture estimation: unified approach to different types of components
title_full_unstemmed Algorithms and programs of dynamic mixture estimation: unified approach to different types of components
title_short Algorithms and programs of dynamic mixture estimation: unified approach to different types of components
title_sort algorithms and programs of dynamic mixture estimation: unified approach to different types of components
topic Mathematical Physics and Mathematics
url https://dx.doi.org/10.1007/978-3-319-64671-8
http://cds.cern.ch/record/2282084
work_keys_str_mv AT nagyivan algorithmsandprogramsofdynamicmixtureestimationunifiedapproachtodifferenttypesofcomponents
AT suzdalevaevgenia algorithmsandprogramsofdynamicmixtureestimationunifiedapproachtodifferenttypesofcomponents