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Direct Curvature Scale Space: Theory and Corner Detection

机译:直接曲率尺度空间:理论和角点检测

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The curvature scale space (CSS) technique is considered to be a modern tool in image processing and computer vision. direct curvature scale space (DCSS) is defined as the CSS that results from convolving the curvature of a planar curve with a Gaussian kernel directly. In this paper we present a theoretical analysis of DCSS in detecting corners on planar curves. The scale space behavior of isolated single and double corner models is investigated and a number of model properties are specified which enable us to transform a DCSS image into a tree organization and, so that corners can be detected in a multiscale sense. To overcome the sensitivity of DCSS to noise, a hybrid strategy to apply CSS and DCSS is suggested
机译:曲率标度空间(CSS)技术被认为是图像处理和计算机视觉中的现代工具。直接曲率标度空间(DCSS)定义为CSS,它是通过将平面曲线的曲率直接与高斯核卷积而得到的。在本文中,我们提出了DCSS在检测平面曲线拐角处的理论分析。研究了孤立的单角和双角模型的尺度空间行为,并指定了许多模型属性,这些属性使我们能够将DCSS图像转换为树状组织,从而可以在多尺度意义上检测角。为了克服DCSS对噪声的敏感性,建议采用CSS和DCSS的混合策略

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