首页> 外文会议>Acoustics, Speech and Signal Processing, 2007. ICASSP 2007 >Adaptive Multi-Reference Downhill Simplex Search Based on Spatial-Temporal Motion Smoothness Criterion
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Adaptive Multi-Reference Downhill Simplex Search Based on Spatial-Temporal Motion Smoothness Criterion

机译:基于时空运动平滑度准则的自适应多参考下坡单纯形搜索

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Multi-reference frame motion estimation improves the accuracy of motion compensation in video coding. However, it also increases computational complexity dramatically. In this paper, we propose a different approach for multi-reference motion estimation via downhill simplex search. Additionally, an adaptive reference frame selection algorithm is developed based on spatial and temporal smoothness of motion vectors. We first apply single-reference downhill simplex search to the previous frame. Then, temporal smoothness of motion vectors in collocated blocks is calculated to decide the number of reference frames to be included for motion estimation. Spatial smoothness of motion vectors in the neighboring blocks is used as a criterion for termination. Experimental results show that the proposed algorithm provides better PSNR than that of original multi-reference downhill simplex search in all testing sequences with similar computational speed. In addition, it outperforms several representative single-reference frame block matching methods in terms of estimation speed and coding quality
机译:多参考帧运动估计提高了视频编码中运动补偿的准确性。但是,它也大大增加了计算复杂度。在本文中,我们提出了一种通过下坡单纯形搜索进行多参考运动估计的不同方法。另外,基于运动矢量的空间和时间平滑性,开发了自适应参考帧选择算法。我们首先将单参考下坡单纯形搜索应用于前一帧。然后,计算并置块中的运动矢量的时间平滑度,以决定要包括在运动估计中的参考帧的数量。相邻块中运动矢量的空间平滑度用作终止标准。实验结果表明,该算法在计算速度相近的所有测试序列中,均能提供比原始的多参考下坡单纯形搜索更好的PSNR。此外,在估计速度和编码质量方面,它优于几种代表性的单参考帧块匹配方法。

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