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An effective foreground detection approach using a block-based background modeling

机译:一种有效的前景检测方法,使用基于块的背景建模

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The moving objects detection is considered as an important factor for many video surveillance applications. To assure a best detection a background model should be generated. This paper proposes a background modeling approach. To generate this model, we use both pixel-based and block-based processes to classify background pixels from those belong to the foreground. After that, to minimize the noise in the results of the background subtraction the structure-texture decomposition is applied on the absolute difference image. Just the structure component which contains the homogeneous parts of the image is used in the segmentation. The binary motion detection mask computation is made using a selected threshold. The experimental results demonstrate that our approach is effective and accurate for moving objects detection.
机译:移动物体检测被认为是许多视频监控应用的重要因素。为了确保最佳检测,应生成背景模型。本文提出了背景建模方法。为了生成此模型,我们使用基于像素和基于块的过程来对属于前台的块的背景像素分类。之后,为了使背景减法的结果中的噪声最小化,结构纹理分解应用于绝对差异图像。只需在分割中使用包含图像的均匀部分的结构组件。使用所选阈值进行二进制运动检测掩模计算。实验结果表明,我们的方法对于移动物体检测有效和准确。

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