链接、卷积和关联在实践中的应用:以视觉跟踪为例

D. Ward, Ivan Lee, D. Kearney, S. Wong
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引用次数: 4

摘要

二维卷积和相互关联操作在许多图像处理和计算机视觉应用中使用,算法通常使用许多这些操作。众所周知,这些操作可以通过使用FFT来快速执行,以降低计算复杂性。在本文中,我们研究了多重卷积和相互关联操作的算法结构可以进一步降低计算复杂度的程度。使用CACTuS视觉跟踪算法作为案例研究,我们演示了如何通过考虑输出的增长和移位,在傅立叶域中将连续的卷积和相关操作链接在一起。我们通过实验证明,与单个FFT方法相比,我们的链接技术可以使运行时间减少多达55%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chaining Convolution and Correlation in Practice: A Case Study in Visual Tracking
Two dimensional convolution and cross-correlation operations are used in many image processing and computer vision applications, with algorithms commonly using a number of these operations. It is well known that these operations can be performed quickly by using a FFT to reduce computational complexity. In this paper we investigate the extent that the structure of algorithms with multiple convolution and cross-correlation operations can be exploited to further reduce computational complexity. Using the CACTuS visual tracking algorithm as a case study, we demonstrate how successive convolution and correlation operations may be chained together in the Fourier domain by taking into account the growth and shift of the output. We experimentally demonstrate that our chaining technique can result in run-time reductions of up to 55% when compared to the individual FFT approach.
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