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A Novel Replica Detection System using Binary Classifiers, R-Trees, and PCA

机译:使用二进制分类器,R树和PCA的新型副本检测系统

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Replica detection is a prerequisite for the discovery of copyright infringement and detection of illicit content. For this purpose, content-based systems can be an efficient alternative to watermarking. Rather than imperceptibly embedding a signal, content-based systems rely-on image similarity. Certain content-based systems use adaptive classifiers to detect replicas. In such systems, a suspect image is tested against every original, which can become computationally prohibitive as the number of original images grows. In this paper, we propose using R-tree indexing to decrease the necessary number of comparisons and rapidly select the most likely originals. Experimental results show that the proposed system performs very satisfactorily and that up to 99.3% of the originals can be discarded before applying the binary classifiers
机译:复制品检测是发现版权侵权和非法内容的检测的先决条件。 为此目的,基于内容的系统可以是水印的有效替代品。 而不是不知不觉地嵌入信号,基于内容的系统依赖于图像相似性。 某些基于内容的系统使用自适应分类器来检测副本。 在这种系统中,针对每个原件测试可疑图像,其可以随着原始图像的数量的增长而变得计算地禁止。 在本文中,我们建议使用R树索引来降低必要的比较数量,并迅速选择最可能的原件。 实验结果表明,该系统在应用二元分类器之前,可以令人满意地表现得非常令人满意,最高可丢弃最多99.3%的原件

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