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On a relaxation-labeling algorithm for real-time contour-based image similarity retrieval

机译:一种基于轮廓的实时图像相似度检索的松弛标记算法

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摘要

In this paper, we propose a relaxation-labeling algorithm for real-time contour-based image similarity retrieval that treats the matching between two images as a consistent labeling problem. To satisfy real-time response, our algorithm works by reducing the size of the labeling problem, thus decreasing the processing required. This is accomplished by adding compatibility constraints on contour segments between the images to reduce the size of the relational network and the order of the compatibility coefficient matrix. Particularly, a relatively strong type constraint based on approximating contour segments by straight line, arc, and smooth curve is introduced. A distance metric, defined using the negative of an objective function maximized by the relaxation labeling processes, is used in computing the similarity ranking. Experiments are conducted on 700 trademark images from the Japan Patent Office for evaluation.
机译:在本文中,我们提出了一种用于基于轮廓的实时图像相似性检索的松弛标记算法,该算法将两个图像之间的匹配视为一致的标记问题。为了满足实时响应,我们的算法通过减小标记问题的大小来工作,从而减少了所需的处理。这是通过在图像之间的轮廓线段上添加兼容性约束以减小关系网络的大小和兼容性系数矩阵的顺序来实现的。特别是,引入了一种基于直线,圆弧和平滑曲线近似轮廓线的相对较强的类型约束。使用由松弛标记过程最大化的目标函数的负数定义的距离度量用于计算相似性排名。对来自日本专利局的700张商标图像进行了实验,以进行评估。

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