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Using quasi-continuous histograms for fuzzy main motion estimation in video sequence

机译:使用准连续直方图估计视频序列中的主运动

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This paper presents a new fuzzy framework for main motion estimation in video sequences. The estimation is performed using a fuzzy representation of pixel gray levels. The motion is characterized by a set of parameters such as horizontal translation, rotation, etc. The method is based on a Hough-like vote procedure. In this scheme, the parametric space is discretized and each pixel votes for each bin of this discrete space. The votes are accumulated in a "quasi-continuous histogram" (QCH). The use of possibility theory and imprecise probabilities provides an accurate estimation of the histogram's mode related to the main motion. The advantages of quasi-continuous histograms in terms of accuracy and robustness are discussed in this paper. Very promising results were obtained using real and simulated video sequences. Comparative studies with classical methods are also presented.
机译:本文提出了一种新的模糊框架,用于视频序列中的主运动估计。使用像素灰度级的模糊表示来执行估计。该运动的特征在于一组参数,例如水平平移,旋转等。该方法基于类似霍夫的投票程序。在该方案中,参数空间被离散化,并且每个像素对该离散空间的每个单元投票。选票累积在“准连续直方图”(QCH)中。可能性理论和不精确概率的使用提供了与主运动有关的直方图模式的准确估计。本文讨论了准连续直方图在准确性和鲁棒性方面的优势。使用真实和模拟视频序列获得了非常有希望的结果。还介绍了经典方法的比较研究。

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