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Macroblock Level Quality Assessment Using Video-Independent Classification

机译:使用视频独立分类宏块级别质量评估

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In this paper we propose a no-reference objective quality assessment of compressed video at a macroblock level. We propose a video-independent approach to quality assessment of individual macroblocks. Features are extracted from video bit steams and reconstructed videos. The feature variables are validated through the use of stepwise regression. The classification model is generated using a reduced-model polynomial networks and SVMs. For higher accuracy of quality assessment, the paper proposes the use of multinomial logistic regression to report the probabilities with which the macroblock class label is assigned. With the use of six video sequences, the experimental results show that video-independent classification at a macroblock level is permissible with a classification accuracy close to 89%.
机译:在本文中,我们提出了在宏块水平上对压缩视频的无参考目标质量评估。我们提出了一种视频独立的方法来质量评估单个宏块。从视频位蒸汽和重建视频中提取功能。通过使用逐步回归验证特征变量。使用缩小模型多项式网络和SVM生成分类模型。为了更高的质量评估准确性,该文件提出了使用多项逻辑回归来报告宏块类标签分配的概率。通过使用六个视频序列,实验结果表明,宏块水平的视频独立分类是允许的,分类精度接近89%。

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