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Reduced Reference Image Quality Assessment Based on Statistics of Edge

机译:基于边缘统计的简化参考图像质量评估

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Objective Image Quality Assessment (IQA) model investigation is a hot topic in recent times. This paper proposed a novel and efficient universal Reduced Reference (RR) image quality assessment method based upon the statistics of edge discrimination. Firstly, binary edge maps created from the multi-scale wavelet transform modulus maxima were used as the low level feature to discriminate the difference between the reference and distorted image for IQA purpose. Then the gradient operator was applied on the binary map to produce the so called edge pattern map. The histogram of edge pattern map was used to verify the pattern of the edges of reference and distorted image, respectively. The RR features extracted from the histogram was used to discriminate the difference of edge pattern maps, and then form a new RR IQA model. Comparing to the typical RR model (Zhou Wang's method, 2005), only 12 features (96 bits) are needed instead of 18 features (162 bits) in Zhou Wang et al.'s method with better overall performance.
机译:客观图像质量评估(IQA)模型研究是最近的热门话题。提出了一种基于边缘判别统计的新颖高效的通用减参考图像质量评估方法。首先,从多尺度小波变换模量最大值创建的二进制边缘图被用作低级特征,以区分参考图像和失真图像之间的差异,以实现IQA。然后将梯度算子应用于二值图以产生所谓的边缘图案图。边缘图案图的直方图分别用于验证参考图像和失真图像边缘的图案。从直方图中提取的RR特征用于区分边缘模式图的差异,然后形成新的RR IQA模型。与典型的RR模型相比(Zhou Wang的方法,2005年),仅需要12个特征(96位),而不是Zhou Wang等人的方法中的18个特征(162位),具有更好的整体性能。

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