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首页> 外文期刊>Image Processing, IET >Single image rain removal with reusing original input squeeze-and-excitation network
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Single image rain removal with reusing original input squeeze-and-excitation network

机译:用重用原始输入挤压和激励网络拆卸单图像雨

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摘要

In this study, the authors propose a novel network architecture to address the problem of removing rain streaks from single images. To strengthen the representational power of the network, they adopt the squeeze-and-excitation block in the network. Furthermore, they propose a new network connection called reusing original input (ROI). The ROI connection reuses the original input of the network and can provide more texture details of the background. These details can be useful for the restoration of the image after removing the rain streaks. Batch normalisation is applied to further improve the rain removal performance of the network. Despite the fact that the network is trained on synthetic data, experimental results show that the proposed network has a comparable performance on both synthetic images and real-world images to the state-of-the-art methods.
机译:在这项研究中,作者提出了一种新颖的网络架构,以解决从单个图像中去除雨条纹的问题。为了加强网络的代表性,他们采用网络中的挤压和激励块。此外,他们提出了一种新的网络连接,称为重用原始输入(ROI)。 ROI连接重用了网络的原始输入,可以提供更多纹理的背景细节。这些细节可用于在去除雨条后恢复图像。应用批量归一化以进一步提高网络的雨拆卸性能。尽管网络训练了合成数据,但实验结果表明,该网络在合成图像和实际图像中具有相当的性能,以最先进的方法。

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