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Adherent Raindrop Modeling, Detectionand Removal in Video

机译:视频中的雨滴建模,检测和去除

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Raindrops adhered to a windscreen or window glass can significantly degrade the visibility of a scene. Modeling, detecting and removing raindrops will, therefore, benefit many computer vision applications, particularly outdoor surveillance systems and intelligent vehicle systems. In this paper, a method that automatically detects and removes adherent raindrops is introduced. The core idea is to exploit the local spatio-temporal derivatives of raindrops. To accomplish the idea, we first model adherent raindrops using law of physics, and detect raindrops based on these models in combination with motion and intensity temporal derivatives of the input video. Having detected the raindrops, we remove them and restore the images based on an analysis that some areas of raindrops completely occludes the scene, and some other areas occlude only partially. For partially occluding areas, we restore them by retrieving as much as possible information of the scene, namely, by solving a blending function on the detected partially occluding areas using the temporal intensity derivative. For completely occluding areas, we recover them by using a video completion technique. Experimental results using various real videos show the effectiveness of our method.
机译:附着在挡风玻璃或窗户玻璃上的雨滴会大大降低场景的可见度。因此,建模,检测和消除雨滴将使许多计算机视觉应用受益,特别是室外监视系统和智能车辆系统。本文介绍了一种自动检测并去除附着的雨滴的方法。核心思想是开发雨滴的局部时空导数。为了实现这个想法,我们首先使用物理定律对附着的雨滴进行建模,然后根据这些模型结合输入视频的运动和强度时间导数来检测雨滴。在检测到雨滴之后,我们将根据分析确定雨滴的某些区域完全遮挡场景,而另一些区域仅部分遮挡,从而将它们删除并恢复图像。对于部分遮挡区域,我们通过获取尽可能多的场景信息来恢复它们,即使用时间强度导数对检测到的部分遮挡区域求解混合函数。对于完全遮挡的区域,我们使用视频完成技术对其进行恢复。使用各种真实视频的实验结果表明了我们方法的有效性。

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