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dc.date2017
dc.date.accessioned2025-08-22T12:18:08Z-
dc.date.available2025-08-22T12:18:08Z-
dc.date.issued2017
dc.identifier.identifierDspace\SGAU\20170515\63765
dc.identifier.citationMakovetskii A. A fast one dimensional total variation regularization algorithm / A. Makovetskii, S. Voronin, V. Kober // Сборник трудов III международной конференции и молодежной школы «Информационные технологии и нанотехнологии» (ИТНТ-2017) - Самара: Новая техника, 2017. - С. 689-692.
dc.identifier.urihttp://repo.ssau.ru/jspui/handle/123456789/13133-
dc.description.abstractDenoising has numerous applications in communications, control, machine learning, and many other fields of engineering and science. A common way to solve the problem utilizes the total variation (TV) regularization. Many efficient numerical algorithms have been developed for solving the TV regularization problem. Condat described a fast direct algorithm to compute the processed 1D signal. In this paper, we propose a variant of the Condat’s algorithm based on the direct 1D TV regularization problem. The usage of the Condat algorithm with the taut string approach leads to a clear geometric description of the extremal function.
dc.description.sponsorshipThe work was supported by Russian Science Foundation grant №15-19-10010.
dc.languageen
dc.publisherНовая техника
dc.titleA fast one dimensional total variation regularization algorithm
dc.typeArticle
local.identifier.oldurihttp://repo.ssau.ru/handle/Informacionnye-tehnologii-i-nanotehnologii/A-fast-one-dimensional-total-variation-regularization-algorithm-63765
local.identifier.oldurihttp://repo.ssau.ru/handle/Informacionnye-tehnologii-i-nanotehnologii/A-fast-one-dimensional-total-variation-regularization-algorithm-63765
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