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Frequency-Based Haze and Rain Removal Network (FHRR-Net) with Deep Convolutional Encoder-Decoder

Authors
Kim, Dong HwanAhn, Woo JinLim, Myo TaegKang, Tae KooKim, Dong Won
Issue Date
3월-2021
Publisher
MDPI
Keywords
dehaze; derain; dilated convolution; encoder-decoder network; guided filter; image restoration
Citation
APPLIED SCIENCES-BASEL, v.11, no.6
Indexed
SCIE
SCOPUS
Journal Title
APPLIED SCIENCES-BASEL
Volume
11
Number
6
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/137770
DOI
10.3390/app11062873
ISSN
2076-3417
Abstract
Removing haze or rain is one of the difficult problems in computer vision applications. On real-world road images, haze and rain often occur together, but traditional methods cannot solve this imaging problem. To address rain and haze problems simultaneously, we present a robust network-based framework consisting of three steps: image decomposition using guided filters, a frequency-based haze and rain removal network (FHRR-Net), and image restoration based on an atmospheric scattering model using predicted transmission maps and predicted rain-removed images. We demonstrate FHRR-Net's capabilities with synthesized and real-world road images. Experimental results show that our trained framework has superior performance on synthesized and real-world road test images compared with state-of-the-art methods. We use PSNR (peak signal-to-noise) and SSIM (structural similarity index) indicators to evaluate our model quantitatively, showing that our methods have the highest PSNR and SSIM values. Furthermore, we demonstrate through experiments that our method is useful in real-world vision applications.
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공과대학 (전기전자공학부)
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