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首页> 外文期刊>Journal of visual communication & image representation >Content adaptive video denoising based on human visual perception
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Content adaptive video denoising based on human visual perception

机译:基于人类视觉感知的内容自适应视频去噪

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摘要

In this paper, we propose content adaptive denoising in highly corrupted videos based on human visual perception. We introduce the human visual perception in video denoising to achieve good performance. In general, smooth regions corrupted by noise are much more annoying to human observers than complex regions. Moreover, human eyes are more interested in complex regions with image details and more sensitive to luminance than chrominance. Based on the human visual perception, we perform perceptual video denoising to effectively preserve image details and remove annoying noise. To successfully remove noise and recover the image details, we extend nonlocal mean filtering to the spatiotemporal domain. With the guidance of content adaptive segmentation and motion detection, we conduct content adaptive filtering in the YUV color space to consider context in images and obtain perceptually pleasant results. Extensive experiments on various video sequences demonstrate that the proposed method reconstructs natural-looking results even in highly corrupted images and achieves good performance in terms of both visual quality and quantitative measures. (C) 2015 Elsevier Inc. All rights reserved.
机译:在本文中,我们提出了基于人类视觉感知的高度损坏视频中的内容自适应去噪。我们在视频去噪中引入人的视觉感知,以实现良好的性能。通常,与复杂区域相比,被噪声破坏的平滑区域对人类观察者而言更令人讨厌。此外,人眼对具有图像细节的复杂区域更感兴趣,并且比色度对亮度更敏感。基于人类的视觉感知,我们执行感知视频降噪,以有效保留图像细节并消除烦人的噪音。为了成功消除噪声并恢复图像细节,我们将非局部均值滤波扩展到时空域。在内容自适应分割和运动检测的指导下,我们在YUV颜色空间中进行内容自适应滤波,以考虑图像中的上下文并获得可感知的令人愉悦的结果。在各种视频序列上进行的大量实验表明,该方法即使在高度损坏的图像中也能重建自然的结果,并且在视觉质量和定量度量方面均具有良好的性能。 (C)2015 Elsevier Inc.保留所有权利。

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