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HIDeGan: A Hyperspectral-guided Image Dehazing GAN

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dc.contributor.author Narang, Pratik
dc.date.accessioned 2023-01-06T09:12:12Z
dc.date.available 2023-01-06T09:12:12Z
dc.date.issued 2020
dc.identifier.uri https://ieeexplore.ieee.org/document/9150802
dc.identifier.uri http://dspace.bits-pilani.ac.in:8080/xmlui/handle/123456789/8351
dc.description.abstract Haze removal in images captured from a diverse set of scenarios is a very challenging problem. The existing dehazing methods either reconstruct the transmission map or directly estimate the dehazed image in RGB color space. In this paper, we make a first attempt to propose a Hyperspectral-guided Image Dehazing Generative Adversarial Network (HIDEGAN). The HIDEGAN architecture is formulated by designing an enhanced version of CYCLEGAN named R2HCYCLE and an enhanced conditional GAN named H2RGAN. The R2HCYCLE makes use of the hyperspectral-image (HSI) in combination with cycle-consistency and skeleton losses in order to improve the quality of information recovery by analyzing the entire spectrum. The H2RGAN estimates the clean RGB image from the hazy hyperspectral image generated by the R2HCYCLE. The models designed for spatial-spectral-spatial mapping generate visually better haze-free images. To facilitate HSI generation, datasets from spectral reconstruction challenge at NTIRE 2018 and NTIRE 2020 are used. A comprehensive set of experiments were conducted on the D-Hazy, and the recent RESIDE-Standard (SOTS), RESIDE-β (OTS) and RESIDE-Standard (HSTS) datasets. The proposed HIDEGAN outperforms the existing state-of-the-art in all these datasets. en_US
dc.language.iso en en_US
dc.publisher IEEE en_US
dc.subject Computer Science en_US
dc.subject Dehazing GAN en_US
dc.subject Image reconstruction en_US
dc.subject Hyperspectral imaging en_US
dc.subject Gallium nitride en_US
dc.subject Atmospheric modeling en_US
dc.title HIDeGan: A Hyperspectral-guided Image Dehazing GAN en_US
dc.type Article en_US


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