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An efficient change detection algorithm based on a statistical nonparametric camera noise model

机译:基于统计非参数摄像机噪声模型的有效变化检测算法

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In this paper we present a change detection algorithm for grey level sequences based on the background subtraction technique, which achieves a good trade-off between time performance and detection quality. The basic idea consists in separating the background process into a deterministic background process and a stochastic camera noise process. The assumption that statistics of the camera noise for a pixel only depends on its current grey level allows to infer a nonparametric statistical camera noise model once and for all arising from a short bootstrap sequence. Hence, 256 couples of lower and upper deterministic thresholds are extracted, to be used in the background subtraction step. While the deterministic nature of the background model as well as of the thresholds lead to an efficient algorithm, utilising 256 couples of different thresholds results in a very sensitive detection. Experimental results allow to assess both the efficiency and the effectiveness of the method we devised.
机译:在本文中,我们提出了一种基于背景减法的灰度序列变化检测算法,该算法在时间性能和检测质量之间取得了良好的折衷。基本思想在于将背景处理分为确定性背景处理和随机照相机噪声处理。像素的摄像头噪声统计仅取决于其当前灰度级的假设允许一劳永逸地推断出由短引导程序序列引起的非参数统计摄像头噪声模型。因此,提取了256对上下确定性阈值,以用于背景减法步骤。尽管背景模型以及阈值的确定性导致了高效的算法,但利用256对不同的阈值会导致非常敏感的检测。实验结果可以评估我们设计的方法的效率和有效性。

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