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Change Detection Using A Statistical Model In An Optimally Selected Color Space

机译:在最佳选择的色彩空间中使用统计模型进行变化检测

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摘要

We present a new noise model for color channels for statistical change detection.Based on this noise modeling,we estimate the distribution of Euclidean distances between the pixel colors of the background image and those of the foreground image.The optimal threshold for change detection is automatically determined using the estimated distribution.We show that our noise modeling is appropriate for various color spaces.Because the detection results differ according to the color space,we utilize the expected number of error pixels to select the appropriate color space for our method.Even if we detect changes based on the optimal threshold in a properly selected color space,there will inevitably be some false classifications.To reject these erroneous cases,we adopt graph cuts that efficiently minimize the global energy while taking into account the effect of neighboring pixels.To validate the proposed method,we show experimental results for a large number of images including indoor and outdoor scenes with complex clutter.
机译:我们提出了一种用于统计变化检测的颜色通道的新噪声模型。基于此噪声模型,我们估计了背景图像和前景图像的像素颜色之间的欧式距离分布。自动检测变化的最佳阈值使用估计的分布来确定。我们证明了我们的噪声建模适用于各种颜色空间。由于检测结果随颜色空间的不同而不同,因此我们利用预期的错误像素数来为我们的方法选择合适的颜色空间。我们在适当选择的颜色空间中基于最佳阈值检测变化,不可避免地会出现一些错误的分类。为拒绝这些错误情况,我们采用图割来在考虑到相邻像素影响的情况下有效地最小化全局能量。验证所提出的方法,我们展示了包括室内和室外在内的大量图像的实验结果复杂的门场景。

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