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Reduced-Reference Image Quality Assessment Based on Statistics of Edge Patterns

机译:基于边缘模式统计的降参考图像质量评估

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Recently, research of Objective Image Quality Assessment (IQA) has gained much attention due to its wide application prospect. Among them, the Reduced-Reference (RR) methods estimate perceptual quality of distorted images with partial information from the reference images. This paper proposes a novel universal RR-IQA metric based on the statistics of edge patterns. Firstly, the binary edge maps of the reference and distorted images are created by the LOG operator and zero-crossing detection. Based on them, 15 groups of typical edge patterns are extracted and then their statistical distributions are calculated respectively for the reference and distortion images. The proposed RR-IQA metric is achieved by computing the L-1 Minkowski distance between those two distributions. We have evaluated this metric on six publicly accessible subjective IQA databases. Experiments shows that the proposed metric featured with typical edge patterns outperform other methods in terms of data volume, accuracy and consistency with human perception. In a way, our work provides a new view to the IQA metric design.
机译:近年来,客观图像质量评估(IQA)的研究由于其广阔的应用前景而备受关注。其中,减少参考(RR)方法利用来自参考图像的部分信息来估计失真图像的感知质量。本文提出了一种基于边缘模式统计的新型通用RR-IQA度量。首先,通过LOG运算符和过零检测创建参考图像和失真图像的二进制边缘图。基于它们,提取15组典型边缘图案,然后分别为参考图像和失真图像计算它们的统计分布。拟议的RR-IQA度量是通过计算这两个分布之间的L-1 Minkowski距离来实现的。我们已经在六个可公开访问的主观IQA数据库上评估了该指标。实验表明,所提出的具有典型边缘图案特征的度量在数据量,准确性和与人类感知的一致性方面优于其他方法。在某种程度上,我们的工作为IQA指标设计提供了新的视角。

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