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Feature Pairs Connected by Lines for Object Recognition

机译:线连接的特征对用于对象识别

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In this paper we exploit image edges and segmentation maps to build features for object category recognition. We build a parametric line based image approximation to identify the dominant edge structures. Line ends are used as features described by histograms of gradient orientations. We then form descriptors based on connected line ends to incorporate weak topological constraints which improve their discriminative power. Using point pairs connected by an edge assures higher repeatability than a random pair of points or edges. The results are compared with state-of-the-art, and show significant improvement on challenging recognition benchmark Pascal VOC 2007. Kernel based fusion is performed to emphasize the complementary nature of our descriptors with respect to the state-of-the-art features.
机译:在本文中,我们利用图像边缘和分段映射来构建对象类别识别的功能。我们构建基于参数的线路图像近似以识别主导边缘结构。线末端用作梯度取向的直方图所描述的特征。然后,我们基于连接线的描述符组成薄弱的拓扑限制,提高了它们的辨别力。使用边缘连接的点对确保比随机的一对点或边缘更高的重复性。结果与最先进的结果进行了比较,并对具有挑战性的识别基准帕斯卡VOC 2007表现出显着的改进。基于内核的融合,以强调我们的描述符的互补性质与最先进的功能。

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