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The Conformal Monogenic Signal of Image Sequences

机译:图像序列的共形单基因信号

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Based on the research results of the Kiel University Cognitive Systems Group in the field of multidimensional signal processing and Computer Vision, this book chapter presents new ideas in 2D/3D and multidimensional signal theory. The novel approach, called the con-formal monogenic signal, is a rotationally invariant quadrature filter for extracting i(ntrinsic)lD and i2D local features of any curved 2D signal - such as lines, edges, corners and circles - without the use of any heuristics or steering techniques. The conformal monogenic signal contains the monogenic signal as a special case for i1D signals - such as lines and edges - and combines monogenic scale space, local energy, direction/orientation, both i1D and i2D phase and curvature in one unified algebraic framework. The conformal monogenic signal will be theoretically illustrated and motivated in detail by the relation of the 3D Radon transform and the generalized Hilbert transform on the sphere. The main idea of the conformal monogenic signal is to lift up 2D signals by stereographic projection to a higher dimensional conformal space where the local signal features can be analyzed with more degrees of freedom compared to the flat two-dimensional space of the original signal domain. The philosophy of the conformal monogenic signal is based on the idea to make use of the direct relation of the original two-dimensional signal and abstract geometric entities such as lines, circles, planes and spheres. Furthermore, the conformal monogenic signal can not only be extended to 3D signals (image sequences) but also to signals of any dimension.rnThe main advantages of the conformal monogenic signal in practical applications are the completeness with respect to the intrinsic dimension of the signal, the rotational invariance, the low computational time complexity, the easy implementation into existing Computer Vision software packages and the numerical robustness of calculating exact local curvature of signals without the need of any derivatives.
机译:基于基尔大学认知系统小组在多维信号处理和计算机视觉领域的研究成果,本书章节提出了2D / 3D和多维信号理论的新思想。这种称为共形单基因信号的新方法是一种旋转不变正交滤波器,用于提取任何弯曲2D信号的i(nt)ld和i2D局部特征-例如线,边,角和圆,而无需使用任何启发式或操纵技术。共形单基因信号包含单基因信号,作为i1D信号的特殊情况(例如线条和边缘),并在一个统一的代数框架中结合了单基因比例空间,局部能量,方向/方向,i1D和i2D相位和曲率。共形单基因信号将通过球面上3D Radon变换和广义Hilbert变换的关系从理论上进行详细说明和激发。共形单基因信号的主要思想是通过立体投影将2D信号提升到更高维的共形空间,与原始信号域的平面二维空间相比,可以以更高的自由度分析局部信号特征。共形单基因信号的原理是基于利用原始二维信号和抽象几何实体(例如直线,圆,平面和球体)的直接关系的思想。此外,共形单基因信号不仅可以扩展到3D信号(图像序列),还可以扩展到任何尺寸的信号。在实际应用中,共形单基因信号的主要优点是相对于信号的固有尺寸而言,旋转不变性,低计算时间复杂度,易于在现有Computer Vision软件包中实现以及无需任何导数即可计算信号的精确局部曲率的数值鲁棒性。

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