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首页> 外文期刊>Journal of signal processing systems for signal, image, and video technology >Knowledge Propagation in Collaborative Tagging for Image Retrieval
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Knowledge Propagation in Collaborative Tagging for Image Retrieval

机译:协同标签检索中的知识传播

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摘要

An important issue in current collaborative framework for media tagging is that some images or videos may not be annotated properly or even not annotated at all. In view of this, this paper proposes a new knowledge propagation scheme to automatically propagate keywords from a subset of annotated images to the unannotated ones. The main idea is based on image content analysis and training of keyword classifiers. An evolutionary scheme is utilized to find the salient regions in the annotated images, and the importance of the other regions is estimated using one-class support vector machine (OCSVM). An ensemble of variable-length radial basis function (VLRBF)-based classifiers is trained based on the visual features of the annotated images. The trained classifiers are then used for knowledge propagation. Experimental results using 100 concept categories demonstrate the effectiveness of the proposed method.
机译:当前用于媒体标记的协作框架中的一个重要问题是某些图像或视频可能无法正确标注,甚至根本没有标注。有鉴于此,本文提出了一种新的知识传播方案,可以将关键词从带注释的图像的子集自动传播到无注释的图像。主要思想是基于图像内容分析和关键字分类器的训练。利用进化方案在带注释的图像中找到显着区域,并使用一类支持向量机(OCSVM)估计其他区域的重要性。基于带注释的图像的视觉特征来训练基于可变长度径向基函数(VLRBF)的整体分类器。然后将训练有素的分类器用于知识传播。使用100个概念类别的实验结果证明了该方法的有效性。

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