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Automatic Single-Image-Based Rain Streaks Removal via Image Decomposition

机译:通过图像分解自动去除基于单图像的雨纹

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摘要

Rain removal from a video is a challenging problem and has been recently investigated extensively. Nevertheless, the problem of rain removal from a single image was rarely studied in the literature, where no temporal information among successive images can be exploited, making the problem very challenging. In this paper, we propose a single-image-based rain removal framework via properly formulating rain removal as an image decomposition problem based on morphological component analysis. Instead of directly applying a conventional image decomposition technique, the proposed method first decomposes an image into the low- and high-frequency (HF) parts using a bilateral filter. The HF part is then decomposed into a “rain component” and a “nonrain component” by performing dictionary learning and sparse coding. As a result, the rain component can be successfully removed from the image while preserving most original image details. Experimental results demonstrate the efficacy of the proposed algorithm.
机译:从视频中去除雨水是一个具有挑战性的问题,并且最近已进行了广泛的研究。然而,在文献中很少研究从单个图像去除雨水的问题,在连续图像中无法利用时间信息,这使得该问题非常具有挑战性。在本文中,我们基于形态成分分析,通过适当地将除雨公式化为图像分解问题,提出了基于单图像的除雨框架。代替直接应用常规的图像分解技术,该方法首先使用双边滤波器将图像分解为低频和高频(HF)部分。然后,通过执行字典学习和稀疏编码,将HF部分分解为“雨分量”和“非雨分量”。结果,在保留大多数原始图像细节的同时,可以成功地从图像中去除雨分量。实验结果证明了该算法的有效性。

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