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Труды Математического института имени В. А. Стеклова, 2009, том 265, страницы 189–210
(Mi tm834)
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Эта публикация цитируется в 16 научных статьях (всего в 16 статьях)
Symmetry in Data Mining and Analysis: A Unifying View Based on Hierarchy
F. Murtaghab a Science Foundation Ireland, Dublin, Ireland
b Department of Computer Science, University of London, Egham, UK
Аннотация:
Data analysis and data mining are concerned with unsupervised pattern finding and structure determination in data sets. The data sets themselves are explicitly linked as a form of representation to an observational, or otherwise empirical, domain of interest. “Structure” has long been understood as symmetry which can take many forms with respect to any transformation, including point, translational, rotational, and many others. Symmetries directly point to invariants that pinpoint intrinsic properties of the data and of the background empirical domain of interest. As our data models change, so too do our perspectives on analyzing data. The structures in data surveyed here are based on hierarchy, represented as $p$-adic numbers or an ultrametric topology.
Поступило в январе 2009 г.
Образец цитирования:
F. Murtagh, “Symmetry in Data Mining and Analysis: A Unifying View Based on Hierarchy”, Избранные вопросы математической физики и $p$-адического анализа, Сборник статей, Труды МИАН, 265, МАИК «Наука/Интерпериодика», М., 2009, 189–210; Proc. Steklov Inst. Math., 265 (2009), 177–198
Образцы ссылок на эту страницу:
https://www.mathnet.ru/rus/tm834 https://www.mathnet.ru/rus/tm/v265/p189
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Страница аннотации: | 379 | PDF полного текста: | 85 | Список литературы: | 70 |
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