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High Performance, Low-complexityline-based Motion Estimation Algorithm with Smoothing And Preprocessing

机译:基于高性能,低复杂度线的运动估计算法,具有平滑和预处理功能

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This paper introduces a smoothing and preprocessing (S+P) technique for a line-based one-bit-transform (1BT) motion estimation scheme. In the proposed algorithm, a smoothing threshold (Thresholds) is incorporated into the 1BT convolutional kernel. By using the smoothing threshold, scattering noise which is a common problem in most 1BT images can be greatly reduced. After the transformation, the 1BT images for the current and reference frames are divided into a number of macroblocks. The macroblock in the current frame is first compared with the macroblock at the same position in the reference frame. If the Sum of Absolute Difference (SAD) is below a certain preprocessing threshold (Thresholdp), the macroblock in the current frame is considered to have negligible movement and motion search is not performed. Simulation results show that this technique achieves high performance and greatly reduces the number of search operations. By incorporating the S+P technique, the PSNR achieved by the 1BT is approaches the performance of the 8-bit Full Search Block Matching Algorithm (FSBMA), and the difference is as low as 0.08 dB. In addition, this technique outperforms current state-of-the-art 1BT motion estimation techniques. An improvement in PSNR performance by up to 0.6 dB and a reduction in the number of search operations by 60% to 93% is achieved using video conferencing sequences.
机译:本文介绍了一种基于行的一位变换(1BT)运动估计方案的平滑和预处理(S + P)技术。在提出的算法中,将平滑阈值(Thresholds)合并到1BT卷积核中。通过使用平滑阈值,可以大大减少大多数1BT图像中常见的散射噪声。转换后,当前帧和参考帧的1BT图像被分为多个宏块。首先将当前帧中的宏块与参考帧中相同位置的宏块进行比较。如果绝对差之和(SAD)低于某个预处理阈值(Thresholdp),则当前帧中的宏块被视为运动可忽略,并且不执行运动搜索。仿真结果表明,该技术具有很高的性能,并大大减少了搜索操作的次数。通过结合S + P技术,1BT所实现的PSNR接近8位全搜索块匹配算法(FSBMA)的性能,其差值低至0.08 dB。此外,该技术优于当前的最新1BT运动估计技术。使用视频会议序列可将PSNR性能提高多达0.6 dB,并将搜索操作次数减少60%至93%。

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