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Binary Segmentation of Video Sequences in Real Time

机译:实时视频序列的二进制分割

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We present a method for foreground-background video segmentation in realȁ3;time that may be used in applications as, for instance, Background Substitution, Analysis of Surveillance Cameras, Highway Cars Detection and so on. Our approach implements a probabilistic segmentation based on the binary Quadratic Markov Measure Fields models (QMMFs). That framework regularizes the likelihood of each pixel to belong to each one of the models (foreground and background). Then our proposal consists of a model for the likelihood that takes into account: an estimation of the static background, motion of the foreground, illumination changes and casted shadows. In order to fulfill the realȁ3;time requirement we implement a parallel version of our algorithm in CUDA using a NVIDIA GPU.
机译:我们提出了一种实时的3实时前景-背景视频分割方法,该方法可用于诸如背景替换,监控摄像头分析,高速公路车辆检测等应用中。我们的方法基于二进制二次马尔可夫度量域模型(QMMF)实现了概率分割。该框架规范了每个像素属于每个模型(前景和背景)的可能性。然后,我们的建议包括一个考虑可能性的模型:静态背景的估计,前景的运动,照明的变化和投射的阴影。为了满足实时时间要求,我们使用NVIDIA GPU在CUDA中实现了算法的并行版本。

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