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A sub-scene modeling framework for moving cast shadow detection

机译:用于移动投射阴影检测的子场景建模框架

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In this paper, we propose an adaptive and accurate online sub-scene modeling framework for moving cast shadow detection in applications of static-camera video surveillance. To describe shadow appearance more accurately, the proposed method builds adaptive online shadow models for sub-scenes with different conditions of irradiance and reflectance. Additionally, in the correction process, object inner-edges analysis and shadow region expanding are adopted to reject shadow camouflages and recycle the misclassified shadow pixels respectively. The proposed algorithm can adaptively handle the shadow appearance changes and camouflages in both outdoor and indoor scenes without prior information about illuminations and scenarios. Experimental results demonstrate that the proposed method outperforms state-of-the-art methods.
机译:在本文中,我们提出了一种自适应的,精确的在线子场景建模框架,用于在静态摄像机视频监视中的应用中移动阴影的检测。为了更准确地描述阴影外观,该方法针对具有不同辐照度和反射率条件的子场景建立了自适应的在线阴影模型。此外,在校正过程中,采用对象内边缘分析和阴影区域扩展来拒绝阴影伪装并分别回收分类错误的阴影像素。所提出的算法可以适应性地处理室外和室内场景中的阴影外观变化和伪装,而无需有关照明和场景的先验信息。实验结果表明,该方法优于最新方法。

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