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A Block-Mean Difference Based Sorting Scheme on Lossy Partail Distortion Search for Fast Optimal Motion Estimation

机译:基于块均值差的有损Partail失真搜索排序方案,用于快速最佳运动估计

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This work presents an efficient lossy partial distortion search (PDS) algorithm named adaptive mean difference based partial distortion search (A-MDPDS). The proposed A-MDPDS algorithm reduces computations by using a halfway-stop technique in the calculation of block distortion measure and applying a diagonal search pattern for stationary or quasi-stationary candidate blocks. For the matching point reduction, a block is divided into 4 ¡Ñ 4 sub-blocks that each sub-block sorted by subtracting the block mean value. Therefore, the mean difference pixels are retrieved one at time to obtain the accumulated partial SAD used as a constraint for checking the validity of a candidate block. The proposed scheme can accelerate the convergence speed and efficiently eliminate the impossible candidates earlier, resulting in substantial computation reduction. The experimental results show the proposed algorithm reduces the check pixels by about 8.4 times on average compared with the typical PDS when the motion block size is 16¡Ñ16 and the search range is ¡Ó7. Compared with other lossy PDS algorithm such as NPDS, which achieved reductions of 2.4 times on average, reductions in computational complexity were achieved.
机译:这项工作提出了一种有效的有损部分失真搜索(PDS)算法,称为基于自适应均值差的部分失真搜索(A-MDPDS)。所提出的A-MDPDS算法通过在块失真度的计算中使用中途停止技术并对固定或准平稳候选块应用对角搜索模式来减少计算量。为了减少匹配点,将一个块分为4×4个子块,每个子块通过减去块平均值进行排序。因此,一次取平均差像素,以获得用作检查候选块的有效性的约束条件的累积部分SAD。所提出的方案可以加快收敛速度​​并有效地及早地消除不可能的候选者,从而大大减少了计算量。实验结果表明,在运动块大小为16×16,搜索范围为×7的情况下,与典型的PDS相比,该算法平均减少了约8.4倍的校验像素。与其他有损PDS算法(例如NPDS)相比,平均降低了2.4倍,从而降低了计算复杂度。

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