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A practical video denoising method based on hierarchical motion estimation

机译:一种基于分层运动估计的实用视频去噪方法

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In this paper, we focus on surveillance video denoising with a low-complexity method based on hierarchical motion estimation (HME). The basic idea is to track matching blocks and filter along motion trajectory. The proposed HME method proceeds from large blocks to small blocks and gets motion vectors from coarse to fine. A novel ‘Y’ shape detector is employed to speed up searching procedure in the top layer where motion vectors from temporal and spatial neighbor are adopted as candidates with different weight. Moreover, new and isolated motions will be caught by random candidate vectors from an offset look up table (LUT). A refinement to deal with discontinuity inside the block is carried out in the intermediate layer and a filter to eliminate singular vectors is used in the bottom layer. Hierarchical process can exclude irrelevant motion vectors and guarantee true motion estimation. It constraints searching range greatly and avoids sophisticated transform comparing with popular denoising methods such as nonlocal means and BM3D. The proposed method can be realized in hardware easily due to limited and reliable searching. Experimental results demonstrate that this low complexity algorithm achieves satisfying denoising performance particularly for surveillance videos under bad illumination.
机译:在本文中,我们专注于基于分层运动估计(HME)的低复杂性方法的监视视频去噪。基本思想是跟踪匹配的块和沿运动轨迹过滤。所提出的HME方法从大块进行到小块,并从粗略地获取运动向量。一个小说‘ y’使用形状检测器在顶层中加速搜索过程,其中采用时间和空间邻居的运动向量作为具有不同重量的候选。此外,新的和隔离动作将由随机候选矢量从偏移查找表(LUT)捕获。在块内进行块内的不连续性的细化在中间层中进行,并且在底层中使用滤波器来消除奇异载体。分层过程可以排除无关的运动向量并保证真正的运动估计。它的限制范围大大大大,避免了与流行的去噪方法(如非局部手段和BM3D)进行复杂的变换。由于搜索有限可靠,可以在硬件中实现所提出的方法。实验结果表明,这种低复杂性算法达到了令人满意的表现,特别是在不良照明下的监视视频。

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