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首页> 外文期刊>Circuits and Systems for Video Technology, IEEE Transactions on >Activity-Based Motion Estimation Scheme for H.264 Scalable Video Coding
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Activity-Based Motion Estimation Scheme for H.264 Scalable Video Coding

机译:H.264可伸缩视频编码的基于活动的运动估计方案

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This paper proposes a motion estimation scheme to reduce the computational complexity of multilayer motion estimation for scalable video coding. Based on the result of the motion estimation of the lower resolution layer referred to as base layer, we developed a new approach for exploring the search range of the enhancement layer with high coding efficiency. This approach is based on the activity defined as the absolute difference between the motion vector predictor and the final motion vector. Based on the correlation of the activities between neighboring layers, an inter-layer activity model was developed using a curve-fitted linear equation to exploit the activity in the base layer for deciding the search center and the search range of the enhancement layer. Each activity pair in the neighboring layers is used to associate the relevant macroblock to one of two groups; boundary region and interior region. The base-layer motion vector predictor is basically selected over all the activity regions; for each activity region, the proposed motion estimation algorithm decides whether to include the median motion vector predictor or not. Minimal sufficient search range is also decided from the inter-layer activity prediction factor that is adjusted to the given sequence. The proposed scheme reduced the execution time of motion estimation by 99.26% at the cost of 1.56% bit-rate increase and 0.048 dB peak signal-to-noise ratio (PSNR) decrease on average compared with the conventional full-search algorithm. The fast full-search block matching algorithm can also be incorporated to obtain the extra CPU time reduction in the motion estimation process. By adopting the fast full-search block matching algorithm (FFSBMA) in JSVM reference software, the CPU time was reduced by up to 91.84% and the memory bandwidth was reduced by 90% at the sacrifice of 1.27% bit-rate increase and 0.041 dB PSNR decrease on average compared with the FFSBMA only.
机译:本文提出了一种运动估计方案,以减少用于可伸缩视频编码的多层运动估计的计算复杂性。基于称为基础层的较低分辨率层的运动估计结果,我们开发了一种新方法来探索具有高编码效率的增强层的搜索范围。该方法基于定义为预测运动矢量和最终运动矢量之间的绝对差的活动。基于相邻层之间活动的相关性,使用曲线拟合线性方程式开发了层间活动模型,以利用基础层中的活动来确定搜索中心和增强层的搜索范围。相邻层中的每个活动对用于将相关的宏块与两个组之一相关联。边界区域和内部区域。基本层运动矢量预测变量基本上是在所有活动区域中选择的;对于每个活动区域,所提出的运动估计算法决定是否包括中值运动矢量预测值。最小的足够搜索范围还由调整到给定序列的层间活动预测因子决定。与传统的全搜索算法相比,该方案以增加1.56%的比特率和平均减少0.048 dB的峰值信噪比(PSNR)为代价,将运动估计的执行时间减少了99.26%。快速全搜索块匹配算法也可以并入以在运动估计过程中获得额外的CPU时间减少。通过在JSVM参考软件中采用快速全搜索块匹配算法(FFSBMA),CPU时间减少了多达91.84%,存储器带宽减少了90%,而牺牲了1.27%的比特率和0.041 dB的增加与仅FFSBMA相比,PSNR平均降低。

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