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基于图像分解的自动单图像雨滴去除。

Automatic single-image-based rain streaks removal via image decomposition.

机构信息

Institute of Information Science, Academia Sinica, Taipei, Taiwan.

出版信息

IEEE Trans Image Process. 2012 Apr;21(4):1742-55. doi: 10.1109/TIP.2011.2179057. Epub 2011 Dec 9.

Abstract

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.

摘要

从视频中去除雨水是一个具有挑战性的问题,最近已经得到了广泛的研究。然而,从单张图像中去除雨水的问题在文献中很少被研究,因为在这种情况下,无法利用连续图像之间的时间信息,这使得问题变得非常具有挑战性。在本文中,我们通过将雨水去除问题恰当地表述为基于形态成分分析的图像分解问题,提出了一种基于单张图像的雨水去除框架。与直接应用传统的图像分解技术不同,该方法首先使用双边滤波器将图像分解为低频(LF)和高频(HF)部分。然后,通过字典学习和稀疏编码将 HF 部分分解为“雨成分”和“非雨成分”。结果,在保留大部分原始图像细节的同时,可以成功地从图像中去除雨成分。实验结果证明了所提出算法的有效性。

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