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Modeling the distribution of DCT coefficients for JPEG-reconstruction

机译:为JPEG重建建模DCT系数的分布

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摘要

In the paper, the one moment (OM) method for the estimation of the shape parameter of generalized Gaussian distribution (GGD) is derived from the two moments method in the case when the moments converge in the limits to the same value. The one moment method reduces to the maximum likelihood (ML) method in the special case when the moment equals the shape parameter. The proposed method exhibits smaller complexity of calculations over ML keeping the same error. Assuming Laplacian distribution, there exists a method for optimally biasing the reconstruction levels for the quantized AC discrete cosine transform (DCT) coefficients using only the quantized ones available at the JPEG decoder [J.R. Price, M. Rabbani, Biased reconstruction for JPEG decoding, IEEE Signal Process. Lett. 6 (12) (1999) 297-299; R. Krupinski, J. Purczynski, First absolute moment and variance estimators used in JPEG reconstruction, IEEE Signal Process. Lett. 11 (8) (2004) 674-677]. Many researchers stated that the subset of images can be modeled with GGD with the shape parameter lower than 1. By assuming a source signal with GGD with the exponent 0.5, equations in a closed form for the centroid reconstruction can be obtained as it cannot be done for a GGD model. The ML method of discrete GGD 0.5 is derived, which requires the estimation of only one parameter. For selected images, the values of PSNR coefficients are compared for both distributions. (c) 2007 Elsevier B.V. All rights reserved.
机译:在本文中,当力矩在极限范围内收敛到相同值时,从两次矩方法推导了一种用于估计广义高斯分布(GGD)形状参数的单矩(OM)方法。在特殊情况下,当矩等于形状参数时,单矩方法会减小为最大似然(ML)方法。所提方法在保持相同误差的情况下,在ML上的计算复杂度较小。假定为拉普拉斯分布,存在一种仅使用JPEG解码器中可用的量化系数来最佳偏置量化的AC离散余弦变换(DCT)系数的重构级别的方法。 Price,M。Rabbani,针对JPEG解码的偏向重建,IEEE信号处理。来吧6(12)(1999)297-299; R. Krupinski,J。Purczynski,用于JPEG重建的第一个绝对矩和方差估计量,IEEE信号处理。来吧11(8)(2004)674-677]。许多研究人员表示,可以使用形状参数小于1的GGD建模图像子集。通过假设GGD的源信号的指数为0.5,由于无法完成质心重构,因此可以得到封闭形式的方程。对于GGD模型。推导了离散GGD 0.5的ML方法,该方法仅需要估计一个参数。对于选定的图像,比较两种分布的PSNR系数值。 (c)2007 Elsevier B.V.保留所有权利。

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