利用颜色模型计算光流以提高运动物体识别的精度

D. Perdomo, Angel Juan Sanchez Garcia, Juan Carlos Peréz Arriaga, Homero Vladimir Rios Figueroa
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引用次数: 0

摘要

目前,许多应用程序需要通过一系列图像跟踪对象。由于计算成本较低,通常通过计算单色图像上的光流来估计运动。然而,有时像素的强度可能不足以成功地实现识别运动物体的目标。本文利用Lucas和光流计算的Kanade方法,提出了使用RGB和HSV等颜色模型进行运动估计的方法,以改进运动估计。作为我们贡献的一部分,我们还提出了一个度量结果好坏的度量,以评估每种方法中光流计算的可靠性和准确性。最后,提出了三种不同特征的情景,对不同条件下的结果进行了评价。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Calculation of Optical Flow Using Color Models to Improve the Accuracy of the Identification of Objects in Motion
Currently, many applications require following objects through a sequence of images. Typically, the motion is estimated by calculating the optical flow on monochrome images because it involves fewer computational cost. However, sometimes the intensity of the pixels may not be sufficient to successfully achieve the objective of identifying moving objects. In this paper, it is proposed to use models of color, as RGB and HSV, for motion estimation method using the Lucas and Kanade method of calculation of optical flow, to improve motion estimation. As part of our contribution, it is also proposed a metric to measure the goodness of the results in order to evaluate the reliability and accuracy of optical flow calculation in each method. Finally three scenarios with different characteristics are presented to evaluate the results under different conditions.
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