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A Novel Method for Night-Time Single Image Dehazing

机译:一种夜间单图像去雾的新方法

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摘要

Images acquired under deprived weather environment are frequently corrupted due to the presence of haze, mist, fog or other aerosols in a form of noise. Haze elimination is essential in computer vision and computational photography applications. Generally, there is the existence of numerous approaches towards haze removal which are mostly meant for hazy images under daytime environments. Although the potency of these proposed approaches has been comprehensively established on daylight hazy images. However these procedures inherit significant limitations on images influenced by night-time hazy environments. Since night time haze removal dehazing remains an ill-posed problem, we proposed a novel method for night-time single image dehazing which is efficient under night-time environments. The proposed scheme is a dark channel-based local image dehazing procedure that locally estimates the atmospheric intensity for each selected mask on a corrupted image independently and not the entire image. This is done in order to overcome the challenge of night-scenes that are exposed to multiple/artificial lights source and spatially non-uniform environmental illumination. We performed an adaptive filtering on the combined dehazed masks to improve the degraded image. We validated the supremacy of the proposed approach in terms of speed and robustness through computer-based experiments. Conclusively, we displayed comparison results with state-of-the-art and extensively emphasized the comparative advantage of our scheme.
机译:在恶劣的天气环境下采集的图像由于存在雾,雾,雾或其他形式的气溶胶而经常被破坏。消除霾在计算机视觉和计算摄影应用中至关重要。通常,存在许多消除雾霾的方法,这些方法主要用于白天环境下的雾霾图像。尽管已在日光模糊图像上全面建立了这些建议方法的效力。但是,这些过程在受夜间朦胧环境影响的图像上具有很大的局限性。由于夜间雾度去除除雾仍然是一个不适的问题,因此我们提出了一种在夜间环境下有效的夜间单图像除雾新方法。所提出的方案是基于暗通道的局部图像去雾过程,该过程局部地估计损坏图像上而不是整个图像上每个选定掩模的大气强度。这样做是为了克服暴露于多个/人造光源和空间上不均匀的环境照明的夜景的挑战。我们对组合的除雾蒙版执行了自适应滤波,以改善降级的图像。我们通过基于计算机的实验验证了该方法在速度和鲁棒性方面的优越性。最后,我们展示了最新技术的比较结果,并广泛强调了该方案的比较优势。

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