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Memoization-based high-performance video frame processing

机译:基于记忆的高性能视频帧处理

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We present a high-performance improvement method for implementation of local processing algorithms for video frames by using the benefit of memoization technique. Memoization is a technique that uses the advantage of data redundancy to minimize the amount of computations performed by retrieving previous results instead of computing again, which leads to faster processing speed. In this method, the benefit of interframe redundancy in adjacent frames is used for memoizing where the pixels in a sequence of frames are correlated. We have developed this method in software and applied it to edge detection and median filters. The typical speedups achieved in the median filter range from 2.2x with exact results to 6.48x in tolerant methods and in edge detection filter range from 2.1x with exact results to 5.41x in tolerant method. The structural similarity index metric that is used for evaluating the perceived similarity of the tolerant result with ideal result was applied to each adjacent frame in sample stream frames. The typical values of this parameter were 0.96 in median filter and 0.71 in edge detection filter. (C) 2016 SPIE and IS&T
机译:我们提出了一种利用记忆技术的优势来实现视频帧本地处理算法的高性能改进方法。备注化是一种利用数据冗余的优势通过检索以前的结果而不是再次进行计算来最大程度地减少计算量的技术,从而可以提高处理速度。在该方法中,相邻帧中帧间冗余的好处用于记忆帧序列中的像素相关的位置。我们已经在软件中开发了此方法,并将其应用于边缘检测和中值滤波器。在容限方法中,中值滤波器的典型加速范围为精确结果的2.2倍至6.48倍,在容差方法中,边缘检测滤波器的典型加速范围为2.1x精确结果至5.41倍。用于评估公差结果与理想结果的感知相似性的结构相似性指标度量标准已应用于样本流帧中的每个相邻帧。该参数的典型值在中值滤波器中为0.96,在边缘检测滤波器中为0.71。 (C)2016 SPIE和IS&T

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