Design of Efficient Point-Mass Filter for Linear and Nonlinear Dynamic Models

dc.contributor.authorDuník, Jindřich
dc.contributor.authorMatoušek, Jakub
dc.contributor.authorStraka, Ondřej
dc.date.accessioned2025-06-20T08:49:41Z
dc.date.available2025-06-20T08:49:41Z
dc.date.issued2023
dc.date.updated2025-06-20T08:49:41Z
dc.description.abstracthis letter deals with the state estimation of nonlinear stochastic dynamic systems in the Bayesian framework. The emphasis is laid on the numerical solution to the Chapman-Kolmogorov equation by the widely-used point-mass method. It is shown, that the standard prediction step of the point-mass filter can be decomposed into two parts; advection and diffusion solution. This decomposition allows application of the fast Fourier transform, which speeds up the prediction step by several orders of magnitude making the point-mass filter attractive even for higher dimensional models. The proposed efficient point-mass filter is illustrated in a numerical simulation with available source codes and is compared with the particle filter.en
dc.format6
dc.identifier.document-number001017367300015
dc.identifier.doi10.1109/LCSYS.2023.3283555
dc.identifier.issn2475-1456
dc.identifier.obd43940671
dc.identifier.orcidDuník, Jindřich 0000-0003-1460-8845
dc.identifier.orcidMatoušek, Jakub 0000-0001-5014-1088
dc.identifier.orcidStraka, Ondřej 0000-0003-3066-5882
dc.identifier.urihttp://hdl.handle.net/11025/61320
dc.language.isoen
dc.project.IDSGS-2022-022
dc.project.IDGA22-11101S
dc.relation.ispartofseriesIEEE Control Systems Letters
dc.rights.accessC
dc.subjectstate estimationen
dc.subjectstochastic systemsen
dc.subjectnonlinear systemsen
dc.subjectpoint-mass filter, convolutionen
dc.titleDesign of Efficient Point-Mass Filter for Linear and Nonlinear Dynamic Modelsen
dc.typeČlánek v databázi WoS (Jimp)
dc.typeČLÁNEK
dc.type.statusPublished Version
local.files.count1*
local.files.size1711503*
local.has.filesyes*
local.identifier.eid2-s2.0-85161546813

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