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October 1, 20172,356 citations

AOD-Net: All-in-One Dehazing Network

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BLBoyi LiXPXiulian PengZWZhangyang Wang

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Abstract

This paper proposes an image dehazing model built with a convolutional neural network (CNN), called All-in-One Dehazing Network (AOD-Net). It is designed based on a re-formulated atmospheric scattering model. Instead of estimating the transmission matrix and the atmospheric light separately as most previous models did, AOD-Net directly generates the clean image through a light-weight CNN. Such a novel end-to-end design makes it easy to embed AOD-Net into other deep models, e.g., Faster R-CNN, for improving high-level tasks on hazy images. Experimental results on both synthesized and natural hazy image datasets demonstrate our superior performance than the state-of-the-art in terms of PSNR, SSIM and the subjective visual quality. Furthermore, when concatenating AOD-Net with Faster R-CNN, we witness a large improvement of the object detection performance on hazy images.

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Cite This Study

Li et al. (2017) studied this question.

synapsesocial.com/papers/69dd4a1e5ea84e5556100ee0https://doi.org/10.1109/iccv.2017.511
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