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Estimation of Multiple Accelerated Motions Using Chirp-Fourier Transform and Clustering

机译:使用Chirp-Fourier变换和聚类估计多个加速运动

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Motion estimation in the spatiotemporal domain has been extensively studied and many methodologies have been proposed, which, however, cannot handle both time-varying and multiple motions. Extending previously published ideas, we present an efficient method for estimating multiple, linearly time-varying motions. It is shown that the estimation of accelerated motions is equivalent to the parameter estimation of superpositioned chirp signals. From this viewpoint, one can exploit established signal processing tools such as the chirp-Fourier transform. It is shown that accelerated motion results in energy concentration along planes in the 4-D space: spatial frequencies-temporal frequency-chirp rate. Using fuzzy c-planes clustering, we estimate the plane/motion parameters. The effectiveness of our method is verified on both synthetic as well as real sequences and its advantages are highlighted
机译:时空域中的运动估计已被广泛研究,并且提出了许多方法,但是它们不能同时处理时变运动和多重运动。扩展以前发表的思想,我们提出了一种估计多个线性时变运动的有效方法。结果表明,加速运动的估计等同于叠加线性调频信号的参数估计。从这一观点出发,可以利用已建立的信号处理工具,例如chirp-Fourier变换。结果表明,加速运动导致能量在4维空间中沿平面集中:空间频率-时间频率-线性调频率。使用模糊c平面聚类,我们估计平面/运动参数。我们的方法在合成序列和真实序列上的有效性都得到了验证,其优点也得到了强调

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