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Edge shape pattern for background modeling based on hybrid local codes

机译:基于混合语言码的背景建模边缘形状图案

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In this paper, we propose a novel edge descriptor method for background modeling. In comparison to previous edge-based local-pattern methods, it is more robust to noise and illumination variations due to the use of principal gradient information in a local neighborhood. For the background modeling problem, we combined the proposed method with the Local Hybrid Pattern and experimented with an adaptive-dictionary-model based background modeling method. We show in the quantitative evaluations that the proposed methods is better than other local edge descriptors when applied to the same framework. Furthermore, we show that our proposed method is more powerful than other state of the art methods on standard datasets for the background modeling problem.
机译:在本文中,我们提出了一种用于背景建模的新颖边缘描述符方法。与以前的基于边缘的局部模式方法相比,由于在本地邻域中使用主梯度信息,对噪声和照明变化更加稳健。对于背景建模问题,我们将所提出的方法与局部混合模式进行了组合,并用基于自适应 - 字典模型的背景建模方法进行了实验。我们在定量评估中显示了所提出的方法比应用于同一框架时的其他本地边缘描述符。此外,我们表明我们所提出的方法比其他国家在后台建模问题的标准数据集上的其他状态更强大。

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