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Using image signature for effective and efficient reduced-reference image quality assessment

机译:使用图像签名进行有效,高效的降低参考图像质量评估

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Reduced-reference (RR) image quality assessment (IQA) with only partial information of the reference image available, has aroused increasing research interests nowadays. Many efforts have been devoted to this area for years, and have introduced various kinds of effective models. However, those arithmetics are usually extremely complicated. Therefore, we in this paper propose a new RR Image-Signature (RRIS) induced IQA metric by estimating the similarity between the transformed images that are induced by the image signature. The main design principle of the proposed method is that the image signature can capture the main information of an image with very few features and computational cost. The proposed algorithm is tested and verified on four large-size image quality databases (TID2008, CSIQ, LIVE and CID2013). Experimental results demonstrate the effectiveness and efficiency of our algorithm over those competing full- and reduced-reference IQA methods.
机译:仅提供部分参考图像信息的简化参考图像(RR)图像质量评估(IQA)引起了当今越来越多的研究兴趣。多年来,人们一直致力于该领域,并引入了各种有效的模型。但是,这些算法通常非常复杂。因此,在本文中,我们通过估计由图像签名引起的变换图像之间的相似性,提出了一种新的RR图像签名(RRIS)诱导的IQA度量。该方法的主要设计原理是图像签名可以以很少的特征和计算成本捕获图像的主要信息。该算法在四个大型图像质量数据库(TID2008,CSIQ,LIVE和CID2013)上进行了测试和验证。实验结果证明了我们的算法相对于那些竞争的全参考和降参考IQA方法的有效性和效率。

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