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Revision of Using Eigenvalues of Covariance Matrices in Boundary-Based Corner Detection

机译:在基于边界的角点检测中使用协方差矩阵特征值的修订

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摘要

In this paper, we present a revision of using eigenvalues of covariance matrices proposed by Tsai et al. as a measure of significance (i.e.. curvature) for boundary-based corner detection. We first show the pitfall of Tsai et al.'s approach. We then further investigate the properties of eigenvalues of covariance matrices of three different types of curves and point out a mistake made by Tsai et al.'s method. Finally, we propose a modification of using eigenvalues as a measure of significance for corner detection to remedy their defect. The experiment results show that under the same conditions of the test patterns, in addition to correctly detecting all true corners, the spurious corners detected by Tsai et al.'s method disappear in our modified measure of significance.
机译:在本文中,我们对使用Tsai等人提出的协方差矩阵特征值进行了修订。作为基于边界的角点检测的有效程度(即曲率)的度量。我们首先显示蔡等人方法的陷阱。然后,我们进一步研究了三种不同类型曲线的协方差矩阵特征值的性质,并指出了Tsai等人方法的错误。最后,我们提出了一种修改方法,使用特征值作为拐角检测的重要措施来补救其缺陷。实验结果表明,在相同的测试模式条件下,除了可以正确检测到所有真实的拐角外,Tsai等人方法检测到的虚假拐角在我们改进的显着性度量中也消失了。

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