2018
DOI: 10.3390/s18041060
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Sky Detection in Hazy Image

Abstract: Sky detection plays an essential role in various computer vision applications. Most existing sky detection approaches, being trained on ideal dataset, may lose efficacy when facing unfavorable conditions like the effects of weather and lighting conditions. In this paper, a novel algorithm for sky detection in hazy images is proposed from the perspective of probing the density of haze. We address the problem by an image segmentation and a region-level classification. To characterize the sky of hazy scenes, we u… Show more

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Cited by 12 publications
(16 citation statements)
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“…In the previous researches [17–19], important characteristics fall into three categories: color feature, gradient feature and position feature. For accuracy and efficiency, we choose two color features that are dark channel and color saturation, and two gradient features that are contrast energy and color gradient.…”
Section: Proposed Methodsmentioning
confidence: 99%
“…In the previous researches [17–19], important characteristics fall into three categories: color feature, gradient feature and position feature. For accuracy and efficiency, we choose two color features that are dark channel and color saturation, and two gradient features that are contrast energy and color gradient.…”
Section: Proposed Methodsmentioning
confidence: 99%
“…It is noteworthy that this research names the non-sky pixels as the ground pixels for better discussion. The Skyfinder dataset is a widely used dataset in sky and ground segmentation [5,26,31,34,35].…”
Section: The Skyfinder Datasetmentioning
confidence: 99%
“…Figure A2 displays the examples of eliminated images. The same action for eliminating the "bad" images was also conducted in the related studies [5,26,31,34,35], which is a routine for using the Skyfinder dataset. Besides, the upset images (Figure A2) do not stay in the scope of this research.…”
Section: The Skyfinder Datasetmentioning
confidence: 99%
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