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Cast shadow detection based on the YCbCr color space and topological cuts

机译:基于YCBCR颜色空间和拓扑切割的铸造阴影检测

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摘要

In order to solve the moving objects shadow problem in foreground extraction of surveillance video images, a new cast shadow detection algorithm based on the YCbCr color space and topological cutting was proposed. Preliminary shadow removal was first performed based on the difference of the three components in the YCbCr color space of shadows and foregrounds. Besides, the maximum-flow/minimum-cut algorithm for image segmentation was optimized considering the topological constraints. The optimal segmentation of the foreground image was obtained during the continuous updating of the label. Finally, two sets of experiments were performed in video image sequences, including real surveillance videos and a well-known benchmark test set. By comparing with two other existing algorithms, the feasibility and effectiveness of the cast shadow detection algorithm were verified by the smooth border and higher recognition accuracy. In addition, the adaptability to foreground object density and different light intensities was measured in an airport terminal, showing that this algorithm can provide a high quality of moving foreground detection in surveillance video images and can be applied in monitoring of public places.
机译:为了解决监视视频图像前景提取的移动物体阴影问题,提出了一种基于YCBCR颜色空间和拓扑切割的新的铸造阴影检测算法。首先基于阴影和前景的YCBCR颜色空间中的三个组件的差异首先进行初步暗影去除。此外,考虑到拓扑限制,优化了用于图像分割的最大流量/最小剪切算法。在连续更新标签期间获得前景图像的最佳分割。最后,在视频图像序列中进行了两组实验,包括真实监视视频和着名的基准测试集。通过与另外两个现有算法进行比较,通过平滑的边框和更高的识别精度来验证铸造阴影检测算法的可行性和有效性。此外,在机场终端中测量了对前景对象密度和不同光强度的适应性,表明该算法可以在监控视频图像中提供高质量的移动前景检测,并且可以应用于监控公共场所。

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