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Matching Content-based Saliency Regions for partial-duplicate image retrieval

机译:匹配基于内容的显着性部件用于部分重复图像检索

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摘要

In traditional partial-duplicate image retrieval, images are commonly represented using the Bag-of-Visual-Words (BOV) model built from image local features, such as SIFT. Actually, there is only a small similar portion between partial-duplicate images so that such representation on the whole image is not adequate for the partial-duplicate image retrieval task. In this paper, we propose a novel perspective to retrieval partial-duplicate images with Contented-based Saliency Region (CSR). CSRs are such sub-regions with abundant visual content and high visual attention in the image. The content of CSR is represented with the BOV model while saliency analysis is employed to ensure the high visual attention of CSR. Each CSR is regarded as an independent unit to be retrieved in the dataset. To effectively retrieve the CSRs, we design a relative saliency ordering constraint, which captures a weak saliency relative layout among interest points in the CSR. Comparison experiments with four state-of-the-art methods on the standard partial-duplicate image dataset clearly verify the effectiveness of our scheme. Further, our approach can provide a more diverse retrieval result, which facilitates the interaction of portable-device users.
机译:在传统的部分复制图像检索中,图像通常使用从图像本地特征(例如SIFT)构建的Visual-lock(Bov)模型表示。实际上,部分复制图像之间仅存在小类似部分,使得整个图像上的这种表示不适用于部分复制图像检索任务。在本文中,我们提出了一种新颖的视角来,以利用基于内容的显着区域(CSR)检索部分重复图像。 CSR是具有丰富的视觉内容和图像中的高视觉注意的子区域。 CSR的内容用BOV模型表示,而持续性分析是为了确保CSR的高视觉注意。每个CSR被视为要在数据集中检索的独立单元。为了有效地检索CSR,我们设计了一个相对关序约束,它在CSR中的感兴趣点之间捕获了弱的显着相对布局。在标准部分复制图像数据集上具有四种最先进方法的比较实验明确验证了我们方案的有效性。此外,我们的方法可以提供更多样化的检索结果,这有利于便携式设备用户的交互。

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