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Visual Image Search: Feature Signatures or/and Global Descriptors

机译:可视图像搜索:特征签名或/和全局描述符

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The success of content-based retrieval systems stands or falls with the quality of the utilized similarity model. In the case of having no additional keywords or annotations provided with the multimedia data, the hard task is to guarantee the highest possible retrieval precision using only content-based retrieval techniques. In this paper we push the visual image search a step further by testing effective combination of two orthogonal approaches - the MPEG-7 global visual descriptors and the feature signatures equipped by the Signature Quadratic Form Distance. We investigate various ways of descriptor combinations and evaluate the overall effectiveness of the search on three different image collections. Moreover, we introduce a new image collection, TWIC, designed as a larger realistic image collection providing ground truth. In all the experiments, the combination of descriptors proved its superior performance on all tested collections. Furthermore, we propose a re-ranking variant guaranteeing efficient yet effective image retrieval.
机译:基于内容的检索系统的成功符合使用的相似性模型的质量。在没有提供多媒体数据的附加关键字或注释的情况下,硬件任务是仅使用基于内容的检索技术来保证最高可能的检索精度。在本文中,通过测试两个正交方法的有效组合 - MPEG-7全局视觉描述符和由签名二次形式距离的特征签名来进一步推动视觉图像搜索的步骤。我们调查各种描述符组合的方式,并评估搜索的三种不同图像集合的整体效果。此外,我们介绍了一个新的图像集合,TWIC,被设计为更大的现实图像集合,提供地面真理。在所有实验中,描述符的组合证明了其对所有测试收集的优越性。此外,我们提出了一种重新排名的变体,保证有效但有效的图像检索。

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