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On Segmentation of Moving Objects by Integrating PCA Method with the Adaptive Background Model

机译:PCA方法与自适应背景模型相结合的运动目标分割

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Tracking and segmentation of moving objects are suffering from many problems including those caused by elimination changes, noise and shadows. A modified algorithm for the adaptive background model is proposed by linking Gaussian mixture model with the method of principal component analysis PCA. This approach utilizes the advantage of the PCA method in providing the projections that capture the most relevant pixels for segmentation within the background models. We report the update on both the parameters of the modified method and that of the Gaussian mixture model. The obtained results show the relatively outperform of the integrated method.
机译:运动物体的跟踪和分割受到许多问题的困扰,其中包括消除变化,噪声和阴影引起的问题。通过将高斯混合模型与主成分分析PCA方法联系起来,提出了一种自适应背景模型的改进算法。这种方法利用了PCA方法的优势,可以提供捕获最相关像素的投影,以便在背景模型内进行分割。我们报告了改进方法和高斯混合模型的参数更新。所得结果表明该集成方法的性能相对较优。

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