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Real-time flood detection for video surveillance

机译:实时洪水检测,用于视频监控

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This paper introduces the real-time flash flood detection method for stationary surveillance cameras. It can be applied for rural and urban areas and capable of working during day time. The background subtraction was used to detect all changes appear in a scene. After this step, many pixel belonging to the same moving objects may be divided. They are united by morphological closing. Too small separate objects are then removed form the scene. Color probability was calculated for all the pixels belonging to a foreground mask and connected components with low probability value were filtered out. Finally, results were improved by edge density and boundary roughness. The most time consuming step was implemented in parallel using CUDA. Real-time performance was achieved in this way. The algorithm was tested on publicly accepted video.
机译:介绍了固定监控摄像机的实时山洪实时检测方法。它可以应用于农村和城市地区,并且能够在白天工作。背景减法用于检测场景中出现的所有变化。在该步骤之后,可以划分属于相同运动对象的许多像素。它们通过形态学封闭而结合在一起。然后将太小的单独对象从场景中移除。计算属于前景蒙版的所有像素的颜色概率,并滤除具有低概率值的连接分量。最后,边缘密度和边界粗糙度改善了结果。最耗时的步骤是使用CUDA并行执行的。通过这种方式可以实现实时性能。该算法已在公开接受的视频上进行了测试。

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