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Adaptive GOF residual operation algorithm in video compression

机译:视频压缩中的自适应GOF残差运算算法

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Residual operations are introduced in many video compression algorithms to exploit temporal redundancy in video sequences. One of the most effective and computationally simple algorithms is 3D-DWT-SPIHT algorithm. Nevertheless, it only utilizes intra-GOF temporal redundancy. In order to eliminate inter-GOF redundancy, the Simple GOF Residual Operation (SGRO) algorithm was introduced, where residual operations are performed every two GOFs. However, when background mutations occur, the PSNR of reconstructed target GOF significantly drops; on the other hand, when video sequences are temporally stationary, SGRO algorithm fails to fully utilize inter-GOF temporal redundancy due to its imperative insertion of no-residual-operation GOFs. In this paper, we propose a new Adaptive GOF Residual Operation (AGRO) algorithm, based upon a criterion on residual operations, which is derived from an empirical formula of image complexity established by us. AGRO algorithm always selects the best residual operation manner according to the contents of video sequences: by detecting contents of video sequences, it cancels residual operations where background mutations happen, while encouraging residual operations where video sequences are temporally stationary. Therefore, AGRO algorithm prevents the significant drop in compression effects resulted from background mutations, and in the meantime, fully utilizes inter-GOF temporal redundancy. In addition, AGRO algorithm demonstrates an innate error-propagation-resistant property. Numerical results show that AGRO algorithm renders a significant PSNR increase over SGRO algorithm whenever background mutations occur or temporally stationary sequences dominate.
机译:在许多视频压缩算法中引入了残余操作,以利用视频序列中的时间冗余。 3D-DWT-SPIHT算法是最有效且计算简单的算法之一。但是,它仅利用了GOF内部时间冗余。为了消除GOF之间的冗余,引入了简单GOF剩余操作(SGRO)算法,其中每两个GOF执行一次剩余操作。但是,当发生背景突变时,重建的目标GOF的PSNR显着下降。另一方面,当视频序列在时间上是固定的时,SGRO算法由于必须插入无残差的GOF而无法充分利用GOF间的时间冗余。本文基于残差运算准则,提出了一种新的自适应GOF残差运算算法(AGRO),该算法是由我们建立的图像复杂度的经验公式得出的。 AGRO算法始终根据视频序列的内容选择最佳的残差运算方式:通过检测视频序列的内容,消除背景突变发生的残差运算,同时鼓励视频序列在时间上是平稳的残差运算。因此,AGRO算法可防止背景突变导致的压缩效果显着下降,同时充分利用了GOF间的时间冗余。此外,AGRO算法具有先天的抗错误传播特性。数值结果表明,无论何时发生背景突变或临时序列占主导地位,AGRO算法都会比SGRO算法显着提高PSNR。

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