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https://elar.usfeu.ru/handle/123456789/9205
Title: | Systematic approach to nonlinear filtering associated with aggregation operators. Part 2. Frechet MIMO-filters |
Authors: | Labunets, V. G. Osthaimer, E. |
Issue Date: | 2017 |
Publisher: | Elsevier |
Citation: | Labunets, V. G. Systematic approach to nonlinear filtering associated with aggregation operators. Part 2. Frechet MIMO-filters / V. G. Labunets, E. Osthaimer // 3rd International Conference Information Technology And Nanotechnology (Itnt-2017) . – 2017. – Vol. 201.– P. 385-397. |
Abstract: | Median filtering has been widely used in scalar-valued image processing as an edge preserving operation. The basic idea is that the pixel value is replaced by the median of the pixels contained in a window around it. In this work, this idea is extended onto vector-valued images. It is based on the fact that the median is also the value that minimizes the sum of distances between all grey-level pixels in the window. The Frechet median of a discrete set of vector-valued pixels in a metric space with a metric is the point minimizing the sum of metric distances to the all sample pixels. In this paper, we extend the notion of the Frechet median to the general Frechet median, which minimizes the Frechet cost function (FCF) in the form of aggregation function of metric distances, instead of the ordinary sum. Moreover, we propose use an aggregation distance instead of classical metric distance. We use generalized Frechet median for constructing new nonlinear Frechet MIMO-filters for multispectral image processing. (C) 2017 The Authors. Published by Elsevier Ltd. |
Keywords: | NONLINEAR MIMO-FILTERS FRECHET POINT MEDIAN HYPERSPECTRAL IMAGE PROCESSING GENERALIZED AGGREGATION MEANS Samara Natl Res Univ |
URI: | https://elar.usfeu.ru/handle/123456789/9205 |
DOI: | 10.1016/j.proeng.2017.09.655 |
SCOPUS: | 2-s2.0-85033469630 |
WoS: | WOS:000426433500047 |
RSCI: | 31050418 |
Appears in Collections: | Научные публикации, проиндексированные в SCOPUS и WoS CC |
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WOS-000426433500047.pdf | 2,5 MB | Adobe PDF | View/Open |
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