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Context-Supported Road Information for Background Modeling

机译:背景建模的上下文支持的道路信息

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Background subtraction methods commonly suffers from incompleteness and instability over many situations. If one treats fast updating when objects run fast, it is not reliable to modeling the background while objects stop in the scene, as well, it is easy to find examples where the contrary is also true. In this paper we propose a novel method - designated Context-supported Road Information (CRON) for unsupervised background modeling, which deals with stationary foreground objects, while presenting a fast background updating. Differently from general-purpose methods, our method was specially conceived for traffic analysis, being stable in several challenging circumstances in urban scenarios. To assess the performance of the method, a thorough analysis was accomplished, comparing the proposed method with many others, demonstrating promising results in our favor.
机译:背景减法方法通常在许多情况下遭受不完整和不稳定性。如果当对象运行快速时,如果对象快速更新,则在场景中的对象停止时建模背景是不可靠的,也很容易找到相反的例子。在本文中,我们提出了一种用于无监督的背景建模的新型方法 - 指定的上下文支持的道路信息(CRON),其涉及固定前景对象,同时呈现快速背景更新。与通用方法不同,我们的方法是特别构思的交通分析,在城市情景中的几个挑战性环境中稳定。为了评估该方法的性能,完成了彻底的分析,比较了许多其他方法的拟议方法,展示了我们的青睐。

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