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基于径向基函数网络的雾霾去除用于能见度恢复应用

Haze Removal Using Radial Basis Function Networks for Visibility Restoration Applications.

作者信息

Chen Bo-Hao, Huang Shih-Chia, Li Chian-Ying, Kuo Sy-Yen

出版信息

IEEE Trans Neural Netw Learn Syst. 2018 Aug;29(8):3828-3838. doi: 10.1109/TNNLS.2017.2741975. Epub 2017 Sep 15.

Abstract

Restoration of visibility in hazy images is the first relevant step of information analysis in many outdoor computer vision applications. To this aim, the restored image must feature clear visibility with sufficient brightness and visible edges, while avoiding the production of noticeable artifacts. In this paper, we propose a haze removal approach based on the radial basis function (RBF) through artificial neural networks dedicated to effectively removing haze formation while retaining not only the visible edges but also the brightness of restored images. Unlike traditional haze-removal methods that consist of single atmospheric veils, the multiatmospheric veil is generated and then dynamically learned by the neurons of the proposed RBF networks according to the scene complexity. Through this process, more visible edges are retained in the restored images. Subsequently, the activation function during the testing process is employed to represent the brightness of the restored image. We compare the proposed method with the other state-of-the-art haze-removal methods and report experimental results in terms of qualitative and quantitative evaluations for benchmark color images captured in typical hazy weather conditions. The experimental results demonstrate that the proposed method is able to produce brighter and more vivid haze-free images with more visible edges than can the other state-of-the-art methods.

摘要

在许多户外计算机视觉应用中,恢复模糊图像的清晰度是信息分析的首要相关步骤。为此,恢复后的图像必须具有清晰的能见度、足够的亮度和可见边缘,同时避免产生明显的伪影。在本文中,我们提出了一种基于径向基函数(RBF)的去雾方法,该方法通过人工神经网络有效地去除雾的形成,同时不仅保留可见边缘,还保留恢复图像的亮度。与由单一大气面纱组成的传统去雾方法不同,所提出的RBF网络的神经元根据场景复杂性生成并动态学习多大气面纱。通过这个过程,更多的可见边缘被保留在恢复后的图像中。随后,测试过程中的激活函数被用来表示恢复图像的亮度。我们将所提出的方法与其他最新的去雾方法进行比较,并报告在典型雾天条件下拍摄的基准彩色图像的定性和定量评估实验结果。实验结果表明,与其他最新方法相比,所提出的方法能够产生更亮、更生动的无雾图像,且具有更多可见边缘。

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