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Status已发表Published
TitleDerivation and analysis of simplified filters
Creator
Date Issued2017
Source PublicationCommunications in Mathematical Sciences
ISSN1539-6746
Volume15Issue:2Pages:413-450
Abstract

Filtering is concerned with the sequential estimation of the state, and uncertainties, of a Markovian system, given noisy observations. It is particularly difficult to achieve accurate filtering in complex dynamical systems, such as those arising in turbulence, in which effective low-dimensional representation of the desired probability distribution is challenging. Nonetheless recent advances have shown considerable success in filtering based on certain carefully chosen simplifications of the underlying system, which allow closed form filters. This leads to filtering algorithms with significant, but judiciously chosen, model error. The purpose of this article is to analyze the effectiveness of these simplified filters, and to suggest modifications of them which lead to improved filtering in certain time-scale regimes. We employ a Markov switching process for the true signal underlying the data, rather than working with a fully resolved DNS PDE model. Such Markov switching models haven been demonstrated to provide an excellent surrogate test-bed for the turbulent bursting phenomena which make filtering of complex physical models, such as those arising in atmospheric sciences, so challenging.

KeywordBayesian statistics Filtering with model error Sequential data assimilation
DOI10.4310/cms.2017.v15.n2.a6
URLView source
Indexed BySCIE
Language英语English
WOS Research AreaMathematics
WOS SubjectMathematics, Applied
WOS IDWOS:000394520500006
Scopus ID2-s2.0-85029222188
Citation statistics
Cited Times:6[WOS]   [WOS Record]     [Related Records in WOS]
Document TypeJournal article
Identifierhttp://repository.uic.edu.cn/handle/39GCC9TT/9769
CollectionResearch outside affiliated institution
Corresponding AuthorLee, Wonjung
Affiliation
1.Mathematics Institute and Centre for Predictive Modelling,School of Engineering,University of Warwick,United Kingdom
2.Department of Mathematics,City University of Hong Kong,Hong Kong
3.Mathematics Institute,University of Warwick,United Kingdom
Recommended Citation
GB/T 7714
Lee, Wonjung,Stuart, Andrew. Derivation and analysis of simplified filters[J]. Communications in Mathematical Sciences, 2017, 15(2): 413-450.
APA Lee, Wonjung, & Stuart, Andrew. (2017). Derivation and analysis of simplified filters. Communications in Mathematical Sciences, 15(2), 413-450.
MLA Lee, Wonjung,et al."Derivation and analysis of simplified filters". Communications in Mathematical Sciences 15.2(2017): 413-450.
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