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Visual contour tracking based on inner-contour model particle filter under complex background

机译:基于复杂背景下的内轮廓模型粒子滤波器的视觉轮廓跟踪

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Abstract In this paper, a novel particle filter–based visual contour tracking method is proposed, which uses inner-contour model to track contour object under complex background. The purpose is to achieve effectiveness and robustness against complex background. To that end, the proposed method first utilized Sobel edge detector to detect the edge information along the normal line of the contour. Then, it sampled the inner part of the normal line to get the local color information, which was then combined with the edge information to construct new normal line likelihood. After that, all the inner color information was used to construct global color likelihood. Finally, the edge information, local color information, and global color information were fused into new observation likelihood. Experimental results showed that the proposed method was robust for contours tracking under complex background, and it was also computationally efficient and can run in real-time completely.
机译:摘要在本文中,提出了一种新的基于粒子滤波器的视觉轮廓跟踪方法,其使用内轮廓模型在复杂背景下跟踪轮廓对象。目的是实现复杂背景的有效性和鲁棒性。为此,所提出的方法首先利用Sobel边缘检测器来检测沿着轮廓的正常线路的边缘信息。然后,它采样正常线的内部以获取本地颜色信息,然后与边缘信息组合以构建新的正常线路可能性。之后,所有内部颜色信息都用于构建全局颜色可能性。最后,边缘信息,本地颜色信息和全局颜色信息融合到新的观察可能性。实验结果表明,该方法对于复杂背景下的轮廓跟踪是强大的,并且还在计算上有效,可以完全实时运行。

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