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Statistical mosaics for tracking

机译:统计镶嵌以进行跟踪

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摘要

A method of robust feature-detection is proposed for visual tracking with a pan-tilt head. Even with good foreground models, the tracking process is liable to be disrupted by strong features in the background. Previous researchers have shown that the disruption can be somewhat suppressed by the use of image-subtraction. Building on this idea, a more powerful statistical model of background intensity is proposed in which a Gaussian mixture distribution is fitted to each of the pixels on a 'virtual' image plane. A fitting algorithm of the 'Expectation-Maximisation' type proves to be particularly effective here. Practical tests with contour tracking show marked improvement over image subtraction methods. Since the burden of computation is off-line, the online tracking process can run in real-time, at video field-rate.
机译:提出了一种鲁棒的特征检测方法,用于云台云台的视觉跟踪。即使具有良好的前景模型,跟踪过程也容易被后台的强大功能所干扰。先前的研究人员表明,通过使用图像减法可以在某种程度上抑制干扰。在此思想的基础上,提出了一种更强大的背景强度统计模型,其中将高斯混合分布拟合到“虚拟”图像平面上的每个像素。事实证明,“期望最大化”类型的拟合算法特别有效。轮廓跟踪的实际测试表明,与图像减影方法相比,已有显着改进。由于计算负担是离线的,因此在线跟踪过程可以视频场速实时运行。

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