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Local Compact Binary Patterns for Background Subtraction in Complex Scenes

机译:复杂场景中背景减法的局部紧凑二值模式

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Background modeling in complex scenes is a challenging problem. In this paper, a novel background subtraction method is proposed to address it. First, the textures are modeled with local compact binary patterns (LCBP), which have excellent robustness, strong discriminative power, and fast computation speed. To make LCBP more effective to appearance changes in complex scenarios, spatiotemporal local compact binary patterns (STLCBP) are then considered in which spatial texture information and temporal motion information are combined together. Multiple color spaces are also presented to separate foreground pixels more accurately from the background. To our knowledge, this is the first time that LCBP have been used for background modeling. Extensive experimental results on a widely used dataset clearly show that the proposed method outperforms other state-of-the-art methods and works effectively in complex scenes.
机译:在复杂场景中进行背景建模是一个具有挑战性的问题。本文提出了一种新的背景减法方法。首先,使用局部紧凑二进制模式(LCBP)对纹理进行建模,该模式具有出色的鲁棒性,强大的判别能力和快速的计算速度。为了使LCBP对复杂场景中的外观变化更有效,然后考虑时空局部紧凑二进制模式(STLCBP),其中将空间纹理信息和时间运动信息组合在一起。还提供了多个颜色空间,以更准确地将前景像素与背景分离。据我们所知,这是LCBP首次用于背景建模。在广泛使用的数据集上的大量实验结果清楚地表明,所提出的方法优于其他最新方法,并且在复杂场景中有效工作。

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