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Fast motion and disparity estimation for multiview video coding

机译:用于多视点视频编码的快速运动和视差估计

摘要

Multiview video involves a huge amount of data, and as such, efficiently encoding each view is a critical issue for its wider application. In this paper, a fast motion and disparity estimation algorithm is proposed, utilizing the close correlation between temporal and interview reference frames. First, a reliable predictor is found according to the correlation of motion and disparity vectors. Second, an iterative search process is carried out to find the optimal motion and disparity vectors. The proposed algorithm makes use of the prediction vector obtained in the previous motion estimation for the next disparity estimation and achieves both optimal motion and disparity vectors jointly. Experimental results demonstrate that the proposed algorithm can successfully save an average of 86% of computational time with a negligible quality drop when compared to the joint multiview video model (JMVM) full search algorithm. Furthermore, in comparison with the conventional simulcast coding, the proposed algorithm enhances the video quality and also greatly increases coding speed.
机译:多视图视频涉及大量数据,因此,有效地编码每个视图对于其广泛应用而言是一个关键问题。本文提出了一种利用时间参考帧和采访参考帧之间的紧密相关性的快速运动和视差估计算法。首先,根据运动和视差矢量的相关性找到可靠的预测因子。其次,执行迭代搜索过程以找到最佳运动和视差矢量。所提出的算法将在先前运动估计中获得的预测矢量用于下一次视差估计,并共同获得最佳运动和视差矢量。实验结果表明,与联合多视图视频模型(JMVM)完全搜索算法相比,该算法可成功节省平均86%的计算时间,而质量下降可忽略不计。此外,与常规的联播编码相比,该算法提高了视频质量,并且大大提高了编码速度。

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