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首页> 外文期刊>Journal of Advanced Computatioanl Intelligence and Intelligent Informatics >Human Limb Extraction Based on Motion Estimation Using Optical Flow and Image Registration
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Human Limb Extraction Based on Motion Estimation Using Optical Flow and Image Registration

机译:基于光流和图像配准的运动估计的人体肢体提取

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摘要

We propose a method for extracting human limb regions by the combination of optical flow-based motion segmentation and nonlinear optimization-based image registration. First, rotating limb regions with rough boundaries are extracted and motion parameters are estimated for an approximated model. Then the extracted region and estimated parameters are used as initial values for nonlinear optimization that minimizes residuals of two successive frames and estimates motion parameters. Combining the two steps reduces computational cost and avoids the initial state problem of optimization. According to estimated parameters, the limb region is extracted by a Bayesian classifier to obtain accurate region boundaries. Experimental results on real images are shown.
机译:我们提出了一种结合基于光流的运动分割和基于非线性优化的图像配准提取人肢区域的方法。首先,提取具有粗糙边界的旋转肢体区域,并为近似模型估算运动参数。然后,将提取的区域和估计的参数用作非线性优化的初始值,该非线性优化可最小化两个连续帧的残差并估计运动参数。将两个步骤组合在一起可以减少计算成本,并避免了优化的初始状态问题。根据估计的参数,通过贝叶斯分类器提取肢体区域以获得准确的区域边界。显示了在真实图像上的实验结果。

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