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A Robust Background Initialization Method Based on Stable Image Patches

机译:基于稳定图像斑块的鲁棒背景初始化方法

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The estimation of the stationary background from the video sequence is a challenging problem in Computer Vision. The process can be easily affected by illumination changes in the video sequence and estimate inaccurate background image. To solve this problem, this paper improved the Labgen, the best performance method in the SBMC2016, and proposed a robust background initialization method based on the stable image patches. This method can generate accurate background image when the given video sequence has strong illumination changes, and this method also has strong robustness. First, the most stable illumination condition sequence is selected for the next background modeling. Then each frame of video is divided into patches of the appropriate size. Select the most stable image patches by frame-by-frame comparison over the entire video sequence; and use the temporal median filter for the subset of selected patches to generate background image. The experimental results on the SBMnet dataset show that the proposed method can generate accurate background image, and perform better compared with the latest method when the video sequence has strong illumination changes.
机译:从视频序列估计静止背景是Computer Vision中一个具有挑战性的问题。视频序列中的照明变化很容易影响该过程,并估计不准确的背景图像。为了解决这个问题,本文改进了SBMC2016中性能最好的Labgen方法,并提出了一种基于稳定图像补丁的鲁棒背景初始化方法。当给定的视频序列具有很强的照度变化时,该方法可以生成准确的背景图像,并且该方法还具有很强的鲁棒性。首先,为接下来的背景建模选择最稳定的照明条件序列。然后,将视频的每一帧分为适当大小的小块。通过在整个视频序列中逐帧比较来选择最稳定的图像块;并对所选色块的子集使用时间中值滤波器,以生成背景图像。在SBMnet数据集上的实验结果表明,该方法可以产生准确的背景图像,并且在视频序列具有强烈的照度变化的情况下,与最新方法相比,性能更好。

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