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Pixel-to-Model Distance for Robust Background Reconstruction

机译:像素到模型的距离,实现可靠的背景重建

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摘要

Background information is crucial for many video surveillance applications such as object detection and scene understanding. In this paper, we present a novel pixel-to-model (P2M) paradigm for background modeling and restoration in surveillance scenes. In particular, the proposed approach models the background with a set of context features for each pixel, which are compressively sensed from local patches. We determine whether a pixel belongs to the background according to the minimum P2M distance, which measures the similarity between the pixel and its background model in the space of compressive local descriptors. The pixel feature descriptors of the background model are properly updated with respect to the minimum P2M distance. Meanwhile, the neighboring background model will be renewed according to the maximum P2M distance to handle ghost holes. The P2M distance plays an important role of background reliability in the 3-D spatial–temporal domain of surveillance videos, leading to the robust background model and recovered background videos. We applied the proposed P2M distance for foreground detection and background restoration on synthetic and real-world surveillance videos. Experimental results show that the proposed P2M approach outperforms the state-of-the-art approaches both in indoor and outdoor surveillance scenes.
机译:背景信息对于许多视频监控应用(例如目标检测和场景理解)至关重要。在本文中,我们提出了一种新颖的像素到模型(P2M)范例,用于监视场景中的背景建模和恢复。特别地,所提出的方法利用针对每个像素的一组上下文特征来对背景建模,这些上下文特征是从局部补丁压缩地感测的。我们根据最小P2M距离确定像素是否属于背景,该最小距离测量了像素与其背景模型在压缩局部描述符空间中的相似性。相对于最小P2M距离正确更新了背景模型的像素特征描述符。同时,将根据最大P2M距离更新相邻背景模型以处理鬼孔。 P2M距离在监视视频的3D时空范围中发挥着背景可靠性的重要作用,从而导致了强大的背景模型和恢复的背景视频。我们将拟议的P2M距离应用于合成和现实监控视频的前景检测和背景恢复。实验结果表明,在室内和室外监视场景中,所提出的P2M方法均优于最新方法。

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