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Image recognition using new set of separable three-dimensional discrete orthogonal moment invariants

机译:图像识别使用新的可分离三维离散正交时刻不变

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摘要

In this paper, we propose new sets of 3D separable discrete orthogonal moment invariants, named Racah-Tchebichef-Krawtchouk Moment Invariants (RTKMI), Racah-Krawtchouk-Krawtchouk Moment Invariants (RKKMI) and Racah-Racah-Kr-awtchouk Moment Invariants (RRKMI), for 3D image recognition. The basis functions of these new sets of moment invariants are represented by multivariate discrete orthogonal polynomials. We also present theoretical framework to derive their Rotation, Scaling and Translation (RST) invariants based on the 3D geometric moment invariants. Accordingly, the performance of these proposed separable moment invariants is evaluated under heterogeneous databases and through several appropriate experiments, including 3D image invariance against geometric deformations, local feature extraction, computation time and recognition accuracy, in comparison with the traditional moment invariants. The obtained results showed that our proposed separable moment invariant are very efficient in terms of object recognition, numerical stability and local feature extraction, and can be highly useful for computer vision applications.
机译:在本文中,我们提出了新的3D可分离离散正交时刻不变性,名叫racah-tchebichef-krawtchouk矩不变量(Rtkmi),racah-krawtchouk-krawtchouk时刻不变(rkkmi)和racah-racah-kr-awtchouk时刻不变(rrkmi ),用于3D图像识别。这些新的时刻不变的基本函数由多变量离散正交多项式表示。我们还呈现了基于3D几何时刻不变的旋转,缩放和翻译(RST)不变性的理论框架。因此,在异构数据库中并通过几个适当的实验,包括若干适当的实验,包括针对几何变形,局部特征提取,计算时间和识别准确性的若干适当的实验来评估这些所提出的可分离的力矩不变的性能。所获得的结果表明,在物体识别,数值稳定性和局部特征提取方面,我们所提出的可分离力矩不变量非常有效,并且对计算机视觉应用非常有用。

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