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Correlating Multiple Redundant Scales for Corner Detection

机译:关联多个冗余尺度用于转角检测

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Corner detection is an important task in computer vision and image processing applications. Basically, corners are high curvature points (HCP), which can be detected by contour analysis. In this paper we propose an approach to detect corners using multiscale analysis. The algorithm provides an undecimated wavelet decomposition of the angulation signal of a shape contour and the high curvature points are identified by correlating multiple redundant scales. The goal is to detect the dominant points of a shape that accurately represent it Assessment results have shown that the method succeeded in reconstructing the shape contour using the detected HCPs. A novel evaluation measure is also presented in order to confirm that the proposed algorithm outperforms other methods used for testing and comparison purposes. The technique is promising and effective for image retrieval applications.
机译:角检测是计算机视觉和图像处理应用中的重要任务。基本上,角落是高曲率点(HCP),其可以通过轮廓分析来检测。在本文中,我们提出了一种使用多尺度分析来检测角落的方法。该算法提供了形状轮廓的角度信号的未定定小波分解,并且通过相关多个冗余刻度来识别高曲率点。目标是检测准确表示IT评估结果的形状的主导点表明,该方法成功地使用检测到的HCP重建形状轮廓。还提出了一种新的评估措施,以确认所提出的算法优于用于测试和比较目的的其他方法。该技术对图像检索应用有效和有效。

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