On robust solutions to linear least squares problems affected by data uncertainty and implementation errors with application to stochastic signal modeling

buir.contributor.authorArıkan, Orhan
buir.contributor.orcidArıkan, Orhan|0000-0002-3698-8888
dc.citation.epage243en_US
dc.citation.spage223en_US
dc.citation.volumeNumber391en_US
dc.contributor.authorPınar, M. Ç.en_US
dc.contributor.authorArıkan, Orhanen_US
dc.date.accessioned2016-02-08T10:25:33Z
dc.date.available2016-02-08T10:25:33Z
dc.date.issued2004en_US
dc.departmentDepartment of Industrial Engineeringen_US
dc.departmentDepartment of Electrical and Electronics Engineeringen_US
dc.description.abstractEngineering design problems, especially in signal and image processing, give rise to linear least squares problems arising from discretization of some inverse problem. The associated data are typically subject to error in these applications while the computed solution may only be implemented up to limited accuracy digits, i.e., quantized. In the present paper, we advocate the use of the robust counterpart approach of Ben-Tal and Nemirovski to address these issues simultaneously. Approximate robust counterpart problems are derived, which leads to semidefinite programming problems yielding stable solutions to overdetermined systems of linear equations affected by both data uncertainty and implementation errors, as evidenced by numerical examples from stochastic signal modeling.en_US
dc.identifier.doi10.1016/j.laa.2003.10.013en_US
dc.identifier.eissn1873-1856
dc.identifier.issn0024-3795
dc.identifier.urihttp://hdl.handle.net/11693/24198
dc.language.isoEnglishen_US
dc.publisherElsevieren_US
dc.relation.isversionofhttp://dx.doi.org/10.1016/j.laa.2003.10.013en_US
dc.source.titleLinear Algebra and Its Applicationsen_US
dc.subjectLeast squaresen_US
dc.subjectData perturbationsen_US
dc.subjectImplementation errorsen_US
dc.subjectRobustnessen_US
dc.subjectSemidefinite programmingen_US
dc.subjectDigital signal processingen_US
dc.titleOn robust solutions to linear least squares problems affected by data uncertainty and implementation errors with application to stochastic signal modelingen_US
dc.typeArticleen_US

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