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Research on statistical distributions of transform coefficients for H.264/SVC

机译:H.264 / SVC变换系数统计分布研究

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As a substitute to discrete cosine transform (DCT), a more complicated transform scheme has been adopted in H.264/AVC and inherited by H.264/SVC. For supporting the scalability, H.264/SVC incorporates the inter-layer prediction mechanisms, which lead to the variety of the composition of residual frame as the input of the transform. However, so far scarcely any study has been carried out on the transform coefficients distribution of H.264/SVC. With the method of Maximum Likelihood estimation, this paper presents the study of performing two goodness-of-fit tests, the Kolmogorov-Smirnov (KS) test and the χ2 test, to decide the best distribution among three famous distributions, the Generalized Gaussian distribution (GGD), the Laplacian distribution (LAP) and the Cauchy distribution (CCH), for the transform coefficients of the luminance components of video sequence coded by H.264/SVC encoder. The results indicate that the Cauchy distribution can still be considered as the best description for the transform coefficients in most cases of H.264/SVC.
机译:作为离散余弦变换(DCT)的替代,H.264 / AVC采用了更复杂的变换方案,并由H.264 / SVC继承。为了支持可扩展性,H.264 / SVC包括层间预测机制,这导致残余框架的组成作为变换的输入。然而,到目前为止几乎没有对H.264 / SVC的变换系数分布进行了任何研究。利用最大似然估计的方法,本文介绍了执行两个拟合良好测试,Kolmogorov-Smirnov(KS)测试和χ 2 测试的研究,以确定最佳分配三个着名的分布,广义高斯分布(GGD),Laplacian分布(LAP)和CCH分布(CCH),用于由H.264 / SVC编码器编码的视频序列的亮度分量的变换系数。结果表明,在大多数H.264 / SVC的情况下,Cauchy分布仍然可以被认为是变换系数的最佳描述。

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