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An ER Algorithm-Based Method for Removal of Adherent Water Drops from Images Obtained by a Rear View Camera Mounted on a Vehicle in Rainy Conditions

机译:基于ER算法的从雨天条件下安装在车辆上的后视摄像头获得的图像中去除附着水滴的方法

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摘要

In this paper, an ER (Error-Reduction) algorithm-based method for removal of adherent water drops from images obtained by a rear view camera mounted on a vehicle in rainy conditions is proposed. Since Fourier-domain and object-domain constraints are needed for any ER algorithm-based method, the proposed method introduces the following two novel constraints for the removal of adherent water drops. The first one is the Fourier-domain constraint that utilizes the Fourier transform magnitude of the previous frame in the obtained images as that of the target frame. Noting that images obtained by the rear view camera have the unique characteristics of objects moving like ripples because the rear view camera is generally composed of a fish-eye lens for a wide view angle, the proposed method assumes that the Fourier transform magnitudes of the target frame and the previous frame are the same in the polar coordinate system. The second constraint is the object-domain constraint that utilizes intensities in an area of the target frame to which water drops have adhered. Specifically, the proposed method models a deterioration process of intensities that are corrupted by the water drop adhering to the rear view camera lens. By utilizing these novel constraints, the proposed ER algorithm can remove adherent water drops from images obtained by the rear view camera. Experimental results that verify the performance of the proposed method are represented.
机译:在本文中,提出了一种基于ER(减少错误)算法的方法,该方法用于从下雨天安装在车辆上的后视摄像头获得的图像中去除附着的水滴。由于任何基于ER算法的方法都需要傅里叶域和对象域约束,因此所提出的方法引入了以下两个新颖约束来去除附着的水滴。第一个是傅立叶域约束,它利用获取的图像中前一帧的傅立叶变换幅度作为目标帧的傅立叶变换幅度。注意到后视摄像头获得的图像具有像波纹一样运动的对象的独特特征,因为后视摄像头通常由鱼眼镜头组成,具有广角视角,因此该方法假设目标的傅立叶变换幅度极坐标系中的第一帧和前一帧相同。第二个约束是对象域约束,它利用目标框架的区域中附着了水滴的强度。具体地,所提出的方法对强度的劣化过程进行建模,该强度的劣化过程因附着在后视摄像机镜头上的水滴而损坏。通过利用这些新颖的约束,提出的ER算法可以从后视摄像头获得的图像中去除附着的水滴。实验结果验证了所提方法的性能。

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