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Hybrid Feature Similarity Approach to Full-Reference Image Quality Assessment

机译:Hybrid特征相似性探讨全参考图像质量评估

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In the paper the Hybrid Feature Similarity metric is proposed based on the combination of two recently proposed objective image quality assessment methods - Riesz transform based Feature Similarity metric and Feature Similarity index. Both of them have good performance in comparison to most "state-of-the-art" quality metrics but highly linear correlation with subjective scores requires an additional nonlinear mapping for tuning to each dataset. In order to overcome this problem and obtain high quality prediction accuracy the nonlinear combination of both metrics is proposed leading to better performance than using each of the metrics separately. The experiments conducted in order to propose the weighting coefficients for both metrics have been performed using TID2008 dataset which is currently the largest and most comprehensive publicly available image quality assessment database, containing 1700 images together with their subjective quality evaluations. The verification of the obtained results has been also conducted using some other relevant benchmark databases.
机译:在纸质中,基于两个最近提出的目标图像质量评估方法的组合提出了混合特征相似度量 - 基于Riesz变换的特征相似度量和特征相似性索引。与大多数“最先进的”质量指标相比,它们都具有良好的性能,但与主观评分的高度线性相关性需要额外的非线性映射来调整每个数据集。为了克服这个问题并获得高质量的预测精度,提出了两个度量的非线性组合,从而优于更好的性能,而不是单独使用每个度量。为了提出两个度量标准的加权系数进行的实验已经使用TID2008数据集进行,该数据集是最大和最全面的公众的图像质量评估数据库,其中包含1700个图像以及其主观质量评估。还使用其他相关的基准数据库进行了所获得的结果的验证。

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