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An Improved Method of Low Light Image Enhancement Based on Retinex

机译:一种改进的基于Retinex的微光图像增强方法

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Low light image enhancement is a highly challenging task, which has received major attention over the decades. Inspired by Retinex Net [1], this paper improves low light image enhancement by mimicking the mechanism of Retinex. The model consists of a Decom-RNet (Decomposition Residual Net) for image decomposition and an Enhance-RNet (Enhancement Residual Net) for illumination enhancement and adjustment. Decom-RNet decomposes the image into illumination and reflection, and Enhance-RNet enhances the illumination. In particular, we introduce an attention module into residual learning, which significantly improves the accuracy of residual learning. Experimental results demonstrate that our method outperforms the state-of-the-art low light image enhancement methods.
机译:微光图像增强是一项极具挑战性的任务,几十年来受到了广泛关注。受Retinex Net[1]的启发,本文通过模仿Retinex的机制改进了微光图像增强。该模型由一个用于图像分解的decornet(分解残差网)和一个用于光照增强和调整的增强RNet(增强残差网)组成。Decom-RNet将图像分解为光照和反射,Enhance-RNet增强光照。特别是,我们在剩余学习中引入了注意模块,显著提高了剩余学习的准确性。实验结果表明,我们的方法优于目前最先进的微光图像增强方法。

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