Nonlinear distributed state estimation on the Stiefel manifold using diffusion particle filters
Many relevant problems in engineering demand the estimation of dynamic system states that are constrained to non-Euclidean spaces. Furthermore, it is generally advantageous to implement estimation methods in a network of cooperating nodes instead of relying on a single data fusion center. With this...
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Published in | Digital signal processing Vol. 122; p. 103354 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Elsevier Inc
15.04.2022
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Online Access | Get full text |
ISSN | 1051-2004 1095-4333 |
DOI | 10.1016/j.dsp.2021.103354 |
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Abstract | Many relevant problems in engineering demand the estimation of dynamic system states that are constrained to non-Euclidean spaces. Furthermore, it is generally advantageous to implement estimation methods in a network of cooperating nodes instead of relying on a single data fusion center. With this in mind, we propose in this paper two new distributed particle filtering methods to track the states of a dynamic system that evolves on the Stiefel manifold, which arises naturally when the states are subject to nonlinear orthogonal constraints. The proposed algorithms are based on the Random Exchange and Adapt-then-Combine diffusion techniques, and perform parametric approximations using the matrix von Mises-Fisher distribution to compress information exchanged between network nodes. Estimates of the state are then determined via an empirical averaging method that approximates the centroid (Karcher mean) of the particle set. As we verify via numerical simulations, the proposed methods show improved performance compared to previous Particle and Extended Kalman filters designed for Euclidean state variables, and compared to a non-cooperative particle filtering algorithm. |
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AbstractList | Many relevant problems in engineering demand the estimation of dynamic system states that are constrained to non-Euclidean spaces. Furthermore, it is generally advantageous to implement estimation methods in a network of cooperating nodes instead of relying on a single data fusion center. With this in mind, we propose in this paper two new distributed particle filtering methods to track the states of a dynamic system that evolves on the Stiefel manifold, which arises naturally when the states are subject to nonlinear orthogonal constraints. The proposed algorithms are based on the Random Exchange and Adapt-then-Combine diffusion techniques, and perform parametric approximations using the matrix von Mises-Fisher distribution to compress information exchanged between network nodes. Estimates of the state are then determined via an empirical averaging method that approximates the centroid (Karcher mean) of the particle set. As we verify via numerical simulations, the proposed methods show improved performance compared to previous Particle and Extended Kalman filters designed for Euclidean state variables, and compared to a non-cooperative particle filtering algorithm. |
ArticleNumber | 103354 |
Author | Bruno, Marcelo G.S. de Figueredo, Caio G. Bordin, Claudio J. |
Author_xml | – sequence: 1 givenname: Caio G. surname: de Figueredo fullname: de Figueredo, Caio G. email: caiofigueredo@gmail.com organization: Instituto Tecnológico de Aeronáutica, Pça. Mal. Eduardo Gomes, 50, São José dos Campos, 12228-900, SP, Brazil – sequence: 2 givenname: Claudio J. orcidid: 0000-0002-7016-5922 surname: Bordin fullname: Bordin, Claudio J. email: claudio.bordin@ufabc.edu.br organization: Universidade Federal do ABC, Av. dos Estados, 5001, Santo André, 09210-580, SP, Brazil – sequence: 3 givenname: Marcelo G.S. orcidid: 0000-0003-2269-4018 surname: Bruno fullname: Bruno, Marcelo G.S. email: bruno@ita.br organization: Instituto Tecnológico de Aeronáutica, Pça. Mal. Eduardo Gomes, 50, São José dos Campos, 12228-900, SP, Brazil |
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Cites_doi | 10.1162/089976601750265036 10.1109/TPAMI.2011.52 10.1109/MSP.2018.2791632 10.1016/j.sysconle.2004.02.022 10.1109/TIT.2011.2133650 10.1109/TAC.2018.2797162 10.1109/TSP.2021.3058442 10.1109/TSP.2012.2226167 10.1198/jcgs.2009.07177 10.1109/TSP.2007.913164 10.1109/TSP.2016.2641380 10.1109/TSP.2012.2196697 10.1016/j.neucom.2004.11.035 10.1109/TAC.2019.2960265 10.1137/S0895479895290954 10.1109/TSP.2003.816754 10.1017/S0263574708004475 10.1186/1687-6180-2014-19 10.1137/16M1074485 10.1080/03610919408813161 10.1186/s12859-021-04195-4 10.1214/18-AOS1692 10.1109/TMI.2020.3029063 10.1016/j.sigpro.2015.11.012 10.1109/LSP.2015.2464154 10.1111/j.2517-6161.1977.tb01610.x 10.1109/TSP.2020.2975346 10.1109/LSP.2020.2988421 10.1109/TCSVT.2011.2181452 10.1016/j.dsp.2016.09.011 10.1109/TAC.2010.2042987 |
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Keywords | Distributed estimation Stiefel manifold State estimation Particle filter Diffusion algorithms |
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