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Improved Method to Select the Lagrange Multiplier for Rate-Distortion Based Motion Estimation in Video Coding

机译:视频编码中基于速率失真的运动估计中选择拉格朗日乘数的改进方法

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The motion estimation (ME) process used in the H.264/AVC reference software is based on minimizing a cost function that involves two terms (distortion and rate) that are properly balanced through a Lagrangian parameter, usually denoted as $lambda_{motion}$. In this paper we propose an algorithm to improve the conventional way of estimating $lambda_{motion}$ and, consequently, the ME process. First, we show that the conventional estimation of $lambda_{motion}$ turns out to be significantly less accurate when ME-compromising events, which make the ME process to perform poorly, happen. Second, with the aim of improving the coding efficiency in these cases, an efficient algorithm is proposed that allows the encoder to choose between three different values of $lambda_{motion}$ for the Inter 16x16 partition size. To be more precise, for this partition size, the proposed algorithm allows the encoder to additionally test $lambda_{motion}=0$ and $lambda_{motion}$ arbitrarily large, which corresponds to minimum distortion and minimum rate solutions, respectively. By testing these two extreme values, the algorithm avoids making large ME errors. The experimental results on video segments exhibiting this type of ME-compromising events reveal an average rate reduction of 2.20% for the same coding quality with respect to the JM15.1 reference software of H.264/AVC. The algorithm has been also tested in comparison with a state-of-the-art algorithm called context adaptive Lagrange multiplier. Additionally, two illustrative examples of the subjective performance improvement are provided.
机译:H.264 / AVC参考软件中使用的运动估计(ME)过程基于最小化包含两个项(失真和速率)的成本函数,这些函数通过拉格朗日参数(通常表示为$ lambda_ {motion})可以适当地进行平衡$。在本文中,我们提出了一种算法,用于改进估计$ lambda_ {motion} $的常规方法,从而改善ME过程。首先,我们证明,当发生损害ME的事件(使ME流程执行不佳)时,传统的$ lambda_ {motion} $估计的准确性大大降低。其次,为了在这些情况下提高编码效率,提出了一种有效的算法,该算法允许编码器针对Inter 16x16分区大小在$ lambda_ {motion} $的三个不同值之间进行选择。更准确地说,对于该分区大小,所提出的算法允许编码器任意地另外测试$ lambda_ {motion} = 0 $和$ lambda_ {motion} $任意大,这分别对应于最小失真和最小速率解。通过测试这两个极值,该算法可避免产生较大的ME错误。在视频片段上表现出此类ME破坏事件的实验结果表明,相对于H.264 / AVC的JM15.1参考软件,在相同编码质量下,平均速率降低了2.20%。还与称为上下文自适应拉格朗日乘数的最新算法进行了比较。另外,提供了主观性能改善的两个说明性示例。

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