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Improved spectral approach for continuous displacement measurements from digital images

机译:改进了数字图像的连续位移测量的频谱方法

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Digital Image Correlation (DIC) algorithms capable of determining continuous displacement fields are receiving growing attention in some areas of research over subset-based DIC methods. Particularly, in mechanical identification applications where high measurement accuracies are sought, the advantage of continuous displacements are appreciated. Within the framework of inverse problems, the unknown continuous displacements may be expressed in terms of linear combinations of basis functions, e.g. B-Splines or finite element shape functions. In this paper, complementary works have been done to make a spectral decomposition of displacement fields functional, which leads to a fast and memory-efficient approach based on Fast Fourier Transform (FFT). The main challenge has been to make the method operational for images and displacements with non-periodic boundaries. The approach has been evaluated on artificial data based on computer-generated images and prescribed displacement fields. Comparisons made between the spectral approach and the one based on B-Splines and nonlinear optimization proves the superiority of the method in terms of reliability and the required computer resources.
机译:能够确定连续位移场的数字图像相关(DIC)算法在基于子集的DIC方法的一些研究领域接受了越来越关注。特别是,在寻求高测量精度的机械识别应用中,不知所述的连续位移的优点。在逆问题的框架内,可以以基础函数的线性组合来表示未知的连续位移,例如, B样条或有限元形状功能。在本文中,已经完成了互补的作品来对位移场的谱分解功能,这导致了基于快速傅里叶变换(FFT)的快速和内存的方法。主要挑战一直是使该方法具有非周期性边界的图像和位移的运行。该方法已经基于计算机生成的图像和规定的位移场对人工数据进行评估。基于B样条和非线性优化的光谱方法和非线性优化之间的比较证明了在可靠性和所需计算机资源方面的方法的优越性。

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