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CLUSTERING COMPLEX MULTIMEDIA OBJECTS USING AN ENSEMBLE APPROACH

机译:使用集合方法聚类复杂多媒体对象

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A complex multimedia object is an information unit composed by multiple media types like text, images, audio and video. Applications related with huge sets of such objects exceed the human capacity to synthesize useful information. The search for similarities and dissimilarities among objects is a task that has been done through clustering analysis, which tries to find groups in unlabeled data sets. Such analysis applied to complex multimedia object sets has a special restriction. The method must analyze the multiple media types present in the objects. This paper proposes a clustering ensemble that jointly assesses several media types present in this kind of objects. The proposed ensemble was applied to cluster webpages, constructing a text and image clustering prototypes. The Hubert's statistic was used to evaluate the ensemble performance, showing that the proposed method creates clustering structures more similar to the real classification than a joint-feature vector.
机译:复杂的多媒体对象是由多种媒体类型组成的信息单元,如文本,图像,音频和视频。与巨大的这些物体有关的应用超过了综合有用信息的人力容量。搜索对象之间的相似性和异化性是通过聚类分析完成的任务,这试图在未标记的数据集中查找组。应用于复杂多媒体对象集的这种分析具有特殊的限制。该方法必须分析对象中存在的多个媒体类型。本文提出了一种聚类集群,共同评估了这种物体中存在的几种媒体类型。建议的集合应用于群集网页,构建文本和图像聚类原型。休伯特的统计数据用于评估集合性能,表明所提出的方法创建比联合特征向量更类似于真实分类的聚类结构。

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