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No-reference image quality assessment via structural information fluctuation

机译:通过结构信息波动进行无参考图像质量评估

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摘要

Image quality assessment (IQA) is a meaningful research topic to meet the increasing demand of high-quality image. The degradation of image quality will cause changes in image structural information. Meanwhile, human visual system is sensitive to changes in structural information. This finding motivates us to utilise structural information for proposing IQA method which is consistent with human visual perception. Recently, IQA methods are mainly focused on individual image type, e.g. natural image or screen content image (SCI), thus, the authors proposed a novel no-reference IQA method which can be suitable for both natural image and SCI. The proposed method is based on structural information analysis. For each image, they first obtain the grey-scale fluctuation maps (GFMs) in four detection directions. After that, the grey-scale fluctuation direction map (GFD) of certain image can be acquired via its GFMs. Based on the GFMs and GFD, the structural features of each image are extracted, and then collected and transformed to feature vectors. Subsequently, the IQA model is trained by support vector regression. The experimental results on the public databases demonstrate the proposed method can predict image quality accurately for both natural image and SCI, and the performance is competitive with prevalent methods.
机译:图像质量评估(IQA)是满足不断增长的高质量图像需求的有意义的研究课题。图像质量的下降将导致图像结构信息的变化。同时,人类视觉系统对结构信息的变化敏感。这一发现促使我们利用结构信息来提出与人类视觉感知相符的IQA方法。最近,IQA方法主要集中在单个图像类型上,例如因此,作者提出了一种新颖的无参考IQA方法,该方法可同时适用于自然图像和SCI。所提出的方法基于结构信息分析。对于每个图像,他们首先获得四个检测方向上的灰度波动图(GFM)。之后,可以通过其GFM获取特定图像的灰度波动方向图(GFD)。基于GFM和GFD,提取每个图像的结构特征,然后收集并转换为特征向量。随后,通过支持向量回归对IQA模型进行训练。在公共数据库上的实验结果表明,该方法可以准确地预测自然图像和SCI的图像质量,并且其性能与流行方法相比具有竞争力。

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