基于循环优化的大型数据库图像集聚类

IF 0.1 Q4 INTERNATIONAL RELATIONS
Sirhii I. Bogucharskyi
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引用次数: 0

摘要

下面的文章考虑了对大量数据进行聚类的方法,并提出了一种基于密度的方法对具有干扰的多媒体对象进行聚类的改进。对现有的DENCLUE方法进行了分析,并引入了矩阵影响函数,使该方法能够有效地应用于多维对象的分析,特别是图像、视频和多媒体数据的集合。由于没有对初始数据进行矢量化和去分散化,引入的矩阵形式使得提高聚类速度成为可能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Image collections clustering in large databases on the basis of recurrent optimization
The following paper considers methods for clustering large amounts of data and proposes a modification of the density-based approach to clustering multimedia objects with disturbance. The analysis of the existing DENCLUE method is carried out, and the matrix influence function is introduced, which makes it possible to effectively use this approach in the analysis of multidimensional objects, the collections of images, video and multimedia data in particular. The introduced matrix form makes it possible to increase the speed of clustering due to the absence of vectorization-devectorization of the initial data.
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来源期刊
Meridiano 47-Journal of Global Studies
Meridiano 47-Journal of Global Studies INTERNATIONAL RELATIONS-
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12 weeks
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