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- W3193326030 abstract "In recent years, removing rain streaks from a single image has been a significant issue for outdoor vision tasks. In this paper, we propose a novel recursive residual atrous spatial pyramid pooling network to directly recover the clear image from rain image. Specifically, we adopt residual atrous spatial pyramid pooling (ResASPP) module which is constructed by alternately cascading a ResASPP block with a residual block to exploit multi-scale rain information. Besides, taking the dependencies of deep features across stages into consideration, a recurrent layer is introduced into ResASPP to model multi-stage processing procedure from coarse to fine. For each stage in our recursive network we concatenate the stage-wise output with the original rainy image and then feed them into the next stage. Furthermore, the negative SSIM loss and perceptual loss are employed to train the proposed network. Extensive experiments on both synthetic and real-world rainy datasets demonstrate that the proposed method outperforms the state-of-the-art deraining methods." @default.
- W3193326030 created "2021-08-30" @default.
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- W3193326030 date "2021-11-01" @default.
- W3193326030 modified "2023-10-06" @default.
- W3193326030 title "Recursive residual atrous spatial pyramid pooling network for single image deraining" @default.
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- W3193326030 doi "https://doi.org/10.1016/j.image.2021.116430" @default.
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