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      SIDE—A Unified Framework for Simultaneously Dehazing and Enhancement of Nighttime Hazy Images

      research-article
      1 , * , 2 , 1
      Sensors (Basel, Switzerland)
      MDPI
      nighttime dehazing, halo removal, Retinex, image enhancement

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          Abstract

          Single image dehazing is a difficult problem because of its ill-posed nature. Increasing attention has been paid recently as its high potential applications in many visual tasks. Although single image dehazing has made remarkable progress in recent years, they are mainly designed for haze removal in daytime. In nighttime, dehazing is more challenging where most daytime dehazing methods become invalid due to multiple scattering phenomena, and non-uniformly distributed dim ambient illumination. While a few approaches have been proposed for nighttime image dehazing, low ambient light is actually ignored. In this paper, we propose a novel unified nighttime hazy image enhancement framework to address the problems of both haze removal and illumination enhancement simultaneously. Specifically, both halo artifacts caused by multiple scattering and non-uniformly distributed ambient illumination existing in low-light hazy conditions are considered for the first time in our approach. More importantly, most current daytime dehazing methods can be effectively incorporated into nighttime dehazing task based on our framework. Firstly, we decompose the observed hazy image into a halo layer and a scene layer to remove the influence of multiple scattering. After that, we estimate the spatially varying ambient illumination based on the Retinex theory. We then employ the classic daytime dehazing methods to recover the scene radiance. Finally, we generate the dehazing result by combining the adjusted ambient illumination and the scene radiance. Compared with various daytime dehazing methods and the state-of-the-art nighttime dehazing methods, both quantitative and qualitative experimental results on both real-world and synthetic hazy image datasets demonstrate the superiority of our framework in terms of halo mitigation, visibility improvement and color preservation.

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          Most cited references64

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          DehazeNet: An End-to-End System for Single Image Haze Removal

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            The retinex theory of color vision.

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              A multiscale retinex for bridging the gap between color images and the human observation of scenes.

              Direct observation and recorded color images of the same scenes are often strikingly different because human visual perception computes the conscious representation with vivid color and detail in shadows, and with resistance to spectral shifts in the scene illuminant. A computation for color images that approaches fidelity to scene observation must combine dynamic range compression, color consistency-a computational analog for human vision color constancy-and color and lightness tonal rendition. In this paper, we extend a previously designed single-scale center/surround retinex to a multiscale version that achieves simultaneous dynamic range compression/color consistency/lightness rendition. This extension fails to produce good color rendition for a class of images that contain violations of the gray-world assumption implicit to the theoretical foundation of the retinex. Therefore, we define a method of color restoration that corrects for this deficiency at the cost of a modest dilution in color consistency. Extensive testing of the multiscale retinex with color restoration on several test scenes and over a hundred images did not reveal any pathological behaviour.
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                Author and article information

                Journal
                Sensors (Basel)
                Sensors (Basel)
                sensors
                Sensors (Basel, Switzerland)
                MDPI
                1424-8220
                16 September 2020
                September 2020
                : 20
                : 18
                : 5300
                Affiliations
                [1 ]School of Automation, Northwestern Polytechnical University, Xi’an 710129, China; zkeshi@ 123456nwpu.edu.cn
                [2 ]School of Electronics and Information, Northwestern Polytechnical University, Xi’an 710129, China; guoxintao@ 123456mail.nwpu.edu.cn
                Author notes
                [* ]Correspondence: davidhrj@ 123456nwpu.edu.cn
                Author information
                https://orcid.org/0000-0003-2191-1121
                Article
                sensors-20-05300
                10.3390/s20185300
                7570461
                32947978
                73ccf271-a9ec-4a03-8892-fced219ba417
                © 2020 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 03 August 2020
                : 08 September 2020
                Categories
                Article

                Biomedical engineering
                nighttime dehazing,halo removal,retinex,image enhancement
                Biomedical engineering
                nighttime dehazing, halo removal, retinex, image enhancement

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