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Perceptual quality assessment based on visual attention analysis

机译:基于视觉关注分析的感知质量评估

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Most existing quality metrics do not take the human attention analysis into account. Attention to particular objects or regions is an important attribute of human vision and perception system in measuring perceived image and video qualities. This paper presents an approach for extracting visual attention regions based on a combination of a bottom-up saliency model and semantic image analysis. The use of PSNR (Peak Signal-to-Noise Ratio) and SSIM (Structural SIMilarity) in extracted attention regions is analyzed for image/video quality assessment, and a novel quality metric is proposed which can exploit the attributes of visual attention information adequately. The experimental results with respect to the subjective measurement demonstrate that the proposed metric outperforms the current methods.
机译:大多数现有的质量指标都没有考虑人类注意分析。对特定物体或地区的关注是测量感知图像和视频质量的人类视觉和感知系统的重要属性。本文提出了一种基于自下升显着模型和语义图像分析的组合提取视觉注意区域的方法。分析了PSNR(峰值信噪比)和SSIM(结构相似度)在提取的注意区域中进行了图像/视频质量评估,提出了一种新颖的质量指标,其可以充分利用视觉注意信息的属性。关于主观测量的实验结果表明,所提出的度量优于当前方法。

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