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IMAGE QUALITY ASSESSMENT BASED ON EDGE

机译:基于边缘的图像质量评估

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The research on image quality assessment (IQA) has been become a hot topic in most area concerning image processing. Seeking for the efficient IQA model with the neurophysiology support is naturally the goal people put the efforts to pursue. In this paper, we argue that comparing the edges position of reference and distorted image can well measure the image structural distortion and become an efficient IQA metric, while the edge is detected from the primitive structures of image convolving with LOG filters. The proposed metric is called NSER that has been designed following a simple logic based on the cosine distance of the primitive structures and two accessible improvements. Validation is taken by comparison of the well-known state-of-the-art IQA metrics: VIF, MS-SSIM, VSNR over the six IQA databases: LIVE, TID2008, MICT, IVC, A57, and CSIQ. Experiments show that NSER works stably across all the six databases and achieves the good performance.
机译:图像质量评估(IQA)的研究已成为大多数涉及图像处理领域的热门话题。在神经生理支持下寻求有效的IQA模型自然是人们努力追求的目标。在本文中,我们认为,比较参考图像和失真图像的边缘位置可以很好地测量图像结构失真,并成为一种有效的IQA度量标准,同时可以从使用LOG滤波器卷积的图像原始结构中检测到边缘。提议的度量标准称为NSER,它是根据基本结构的余弦距离和两个可访问的改进方法,按照简单的逻辑进行设计的。通过比较以下六个IQA数据库(LIVE,TID2008,MICT,IVC,A57和CSIQ)上著名的IQA度量标准:VIF,MS-SSIM,VSNR进行验证。实验表明,NSER在所有六个数据库中均能稳定运行,并取得了良好的性能。

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