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Analysis of fast block matching motion estimation algorithms for video super-resolution systems

机译:视频超分辨率系统的快速块匹配运动估计算法分析

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摘要

In general, all the video super-resolution (SR) algorithms present the important drawback of a very high computational load, mainly due to the huge amount of operations executed by the motion estimation (ME) stage. Commonly, there is a trade-off between the accuracy of the estimated motion, given as a motion vector (MV), and the computational cost associated. In this sense, the ME algorithms that explore more exhaustively the search area among images use to deliver better MVs, at the cost of a higher computational load and resources use. Due to this reason, the proper choice of a ME algorithm is a key factor not only to reach real-time applications, but also to obtain high quality video sequences independently of their characteristics. Under the hardware point of view, the preferred ME algorithms are based on matching fixed-size blocks in different frames. In this paper, a comparison of nine of the most representative Fast Block Matching Algorithms (FBMAs) is made in order to select the one which presents the best tradeoff between video quality and computational cost, thus allowing reliable real-time hardware implementations of video super-resolution systems.
机译:通常,所有视频超分辨率(SR)算法都存在非常高的计算负荷的重要缺点,这主要归因于运动估计(ME)阶段执行的大量操作。通常,在作为运动矢量(MV)给出的估计运动的精度与相关的计算成本之间要进行权衡。从这个意义上讲,ME算法更详尽地探索了图像之间的搜索区域,以提供更好的MV,但代价是计算量和资源消耗更高。由于这个原因,ME算法的正确选择不仅是达到实时应用的关键因素,而且也是独立于其特性获得高质量视频序列的关键因素。从硬件角度来看,首选的ME算法基于不同帧中匹配的固定大小块。在本文中,对九种最具代表性的快速块匹配算法(FBMA)进行了比较,以便选择一种在视频质量和计算成本之间取得最佳折衷的方案,从而实现可靠的实时视频超级硬件实现。分辨率系统。

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