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Nuisance Parameter Estimation Algorithms for Separable Nonlinear Models
Chen, Long1; Chen, Jia Bing2; Gan, Min3; Chen, Guang Yong3; Chen, C. L.P.4
2022-11
Source PublicationIEEE Transactions on Systems, Man, and Cybernetics: Systems
ABS Journal Level3
ISSN2168-2216
Volume52Issue:11Pages:7236-7247
Abstract

Many inverse problems in machine learning, system identification, and image processing include nuisance parameters, which are important for the recovering of other parameters. Separable nonlinear optimization problems fall into this category. The special separable structure in these problems has inspired several efficient optimization strategies. A well-known method is the variable projection (VP) that projects out a subset of the estimated parameters, resulting in a reduced problem that includes fewer parameters. The expectation maximization (EM) is another separated method that provides a powerful framework for the estimation of nuisance parameters. The relationships between EM and VP were ignored in previous studies, though they deal with a part of parameters in a similar way. In this article, we explore the internal relationships and differences between VP and EM. Unlike the algorithms that separate the parameters directly, the hierarchical identification algorithm decomposes a complex model into several linked submodels and identifies the corresponding parameters. Therefore, this article also studies the difference and connection between the hierarchical algorithm and the parameter-separated algorithms like VP and EM. In the numerical simulation part, Monte Carlo experiments are performed to further compare the performance of different algorithms. The results show that the VP algorithm usually converges faster than the other two algorithms and is more robust to the initial point of the parameters.

KeywordExpectation-maximization (Em) Algorithm Hierarchical Identification Algorithm Approximation Algorithms Separable Nonlinear Optimization Problem Variable Projection (Vp) Algorithm
DOI10.1109/TSMC.2022.3155871
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaAutomation & Control Systems ; Computer Science
WOS SubjectAutomation & Control Systems ; Computer Science, Cybernetics
WOS IDWOS:000868329000049
PublisherIEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC, 445 HOES LANE, PISCATAWAY, NJ 08855-4141
Scopus ID2-s2.0-85126313171
Fulltext Access
Citation statistics
Document TypeJournal article
CollectionDEPARTMENT OF COMPUTER AND INFORMATION SCIENCE
Co-First AuthorChen, Long
Corresponding AuthorChen, Guang Yong
Affiliation1.Faculty of Science and Technology, University of Macau, Macau, China.
2.Department of Gastroenterology, Fujian Medical University Union Hospital, Fuzhou 350001, China.
3.College of Computer and Data Science, Fuzhou University, Fuzhou 350116, China.
4.School of Computer Science and Engineering, South China University of Technology, Guangzhou 510006, China.
First Author AffilicationFaculty of Science and Technology
Recommended Citation
GB/T 7714
Chen, Long,Chen, Jia Bing,Gan, Min,et al. Nuisance Parameter Estimation Algorithms for Separable Nonlinear Models[J]. IEEE Transactions on Systems, Man, and Cybernetics: Systems, 2022, 52(11), 7236-7247.
APA Chen, Long., Chen, Jia Bing., Gan, Min., Chen, Guang Yong., & Chen, C. L.P. (2022). Nuisance Parameter Estimation Algorithms for Separable Nonlinear Models. IEEE Transactions on Systems, Man, and Cybernetics: Systems, 52(11), 7236-7247.
MLA Chen, Long,et al."Nuisance Parameter Estimation Algorithms for Separable Nonlinear Models".IEEE Transactions on Systems, Man, and Cybernetics: Systems 52.11(2022):7236-7247.
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