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Fast 2-D Hartley transform in 3-D object representation and recognition

机译:3-D对象表示和识别中的快速2-D Hartley变换

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Abstract: In image processing or computer vision, Fourier transform is widely used for frequency-domain analysis. However, Hartley transform can be a very good substitute for the more commonly used Fourier transform when the real input data are concerned. A two-dimensional butterfly algorithm for fast Fourier transform has been modified to calculate the Hartley transform faster than could be done using row-column decomposition. This paper presents three different frequency-domain registration techniques, power cepstrum, complex cepstrum and phase correlation. These techniques not only are capable of precise registration of images but also lead to three-dimensional (3-D) reconstruction of real objects by finding the corresponding points and disparities of an image pair. Use of these recently developed techniques allows one to obtain a precise displacement between two images and a quantitative measurement of 3-D information in a relatively faster computation time. Hartley transform can be used to implement all of these three techniques instead of using complex number computation required by Fourier transform. An additional 35 percent saving of the computation time is achieved by implementing the two-dimensional butterfly algorithm for computing Hartley transform. This reduction in computation time makes the use of Hartley transform in frequency-domain analysis more attractive.!14
机译:摘要:在图像处理或计算机视觉中,傅立叶变换被广泛用于频域分析。但是,当涉及到实际输入数据时,Hartley变换可以很好地替代更常用的傅里叶变换。改进了用于快速傅里叶变换的二维蝶形算法,以比使用行-列分解更快地计算Hartley变换。本文介绍了三种不同的频域配准技术:功率倒频谱,复倒频谱和相位相关。这些技术不仅能够精确定位图像,而且还可以通过找到图像对的对应点和视差来对真实对象进行三维(3-D)重建。使用这些最新开发的技术可以使人们在相对较快的计算时间内获得两幅图像之间的精确位移以及对3-D信息的定量测量。 Hartley变换可用于实现所有这三种技术,而不是使用Fourier变换所需的复数计算。通过实施用于计算Hartley变换的二维蝶形算法,可以节省35%的计算时间。这种计算时间的减少使得在频域分析中使用Hartley变换更具吸引力。14

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