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Postprocessing in Block-Based Video Coding Based on a Quantization Noise Model

机译:基于量化噪声模型的基于块的视频编码后处理

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We present a model of quantization noise in block-coded videos with some assumptions in wavelet domain and propose a postprocessing method to reduce the quantization noise based on the model. A frame of video sequences is considered as a set of one-dimensional (1-D) horizontal and vertical signals. The quantization noise is considered as the sum of the blocking noise and the remainder noise. We model the blocking noise as an impulse or that along with a dispersed impulse at each block boundary in the wavelet domain. The validity of the blocking noise model is investigated. We also model the remainder noise as white Gaussian noise at non-edge pixels in the wavelet domain. Whether the model accommodates well to the remainder noise or not is also examined. The blocking noise is reduced by subtracting a profile, whose strength is adaptively estimated, at each block boundary from the coded signal. The remainder noise then is reduced by a soft-thresholding. We also propose a fast algorithm for the proposed method by approximating coefficients of shape profiles used in blocking noise reduction and inverse wavelet transform (WT) filters used in remainder noise reduction. The performance is evaluated for QCIF video sequences coded by H.263 TMN5 with quantization parameter (QP) in the range of 5-25 and is compared to that of the MPEG-4 verification model (VM) post-filter. Experimental results show that the proposed method yields not only PSNR improvement of maximum 0.5 dB over the VM post-filter but also subjective quality nearly free of the blocking artifact and edge blur.
机译:我们提出了小波域中一些假设的块编码视频中的量化噪声模型,并提出了一种基于该模型的减少量化噪声的后处理方法。视频序列的帧被视为一组一维(1-D)水平和垂直信号。量化噪声被认为是阻塞噪声和其余噪声之和。我们将阻塞噪声建模为小波域中每个块边界处的脉冲或离散脉冲。研究了阻塞噪声模型的有效性。我们还将小波域中非边缘像素处的其余噪声建模为高斯白噪声。还检查了模型是否很好地适应了其余噪声。通过从编码信号中减去每个块边界处的强度可自适应估算的轮廓,可以减少阻塞噪声。然后通过软阈值降低剩余噪声。我们还通过近似用于块降噪的形状轮廓系数和用于剩余降噪的逆小波变换(WT)滤波器,为该方法提出了一种快速算法。对H.263 TMN5编码的QCIF视频序列的性能进行了评估,量化参数(QP)在5-25范围内,并将其与MPEG-4验证模型(VM)后置滤波器的性能进行比较。实验结果表明,所提出的方法不仅比VM后置滤波器的PSNR提高了最大0.5 dB,而且主观质量几乎没有阻塞伪影和边缘模糊。

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