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Content Based Coarse to Fine Adaptive Interpolation Filter for High Resolution Video Coding

机译:基于内容的粗细自适应插值滤波器用于高分辨率视频编码

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With the increasing demand of high video quality and large image size, adaptive interpolation filter (AIF) addresses these issues and conquers the time varying effects resulting in increased coding efficiency, comparing with recent H.264 standard. However, currently most AIF algorithms are based on either frame level or macroblock (MB) level, which are not flexible enough for different video contents in a real codec system, and most of them are facing a severe time consuming problem. This paper proposes a content based coarse to fine AIF algorithm, which can adapt to video contents by adding different filters and conditions from coarse to fine. The overall algorithm has been mainly made up by 3 schemes: frequency analysis based frame level skip interpolation, motion vector modeling based region level interpolation, and edge detection based macroblock level interpolation. According to the experiments, AIF are discovered to be more effective in the high frequency frames, therefore, the condition to skip low frequency frames for generating AIF coefficients has been set. Moreover, by utilizing the motion vector information of previous frames the region level based interpolation has been designed, and Lapla-cian of Gaussian based macroblock level interpolation has been proposed to drive the interpolation process from coarse to fine. Six 720p and six 1080p video sequences which cover most typical video types have been tested for evaluating the proposed algorithm. The experimental results show that the proposed algorithm reduce total encoding time about 41% for 720p and 25% for 1080p sequences averagely, comparing with Key Technology Areas (KTA) Enhanced AIF algorithm, while obtains a BDPSNR gain up to 0.004 and 3.122 BDBR reduction.
机译:随着对高视频质量和大图像尺寸的需求不断增长,与最新的H.264标准相比,自适应插值滤波器(AIF)解决了这些问题并克服了时变效应,从而提高了编码效率。但是,当前大多数AIF算法是基于帧级别或宏块(MB)级别的,对于实际的编解码器系统中的不同视频内容而言,它们不够灵活,并且大多数都面临着严重的耗时问题。本文提出了一种基于内容的粗略到精细AIF算法,该算法可以通过添加从粗略到精细的不同过滤器和条件来适应视频内容。总体算法主要由3种方案组成:基于频率分析的帧级跳过插值,基于运动矢量建模的区域级插值和基于边缘检测的宏块级插值。根据实验,发现AIF在高频帧中更有效,因此,已经设置了跳过低频帧以生成AIF系数的条件。此外,通过利用先前帧的运动矢量信息,已经设计了基于区域等级的插值,并且已经提出了基于高斯的宏块等级插值的拉普拉斯算子来将插值处理从粗略驱动到精细。已经测试了覆盖最典型视频类型的六个720p和六个1080p视频序列,以评估所提出的算法。实验结果表明,与关键技术领域(KTA)增强型AIF算法相比,该算法平均将720p序列的总编码时间减少约41%,将1080p序列的编码时间平均减少约25%,同时获得高达0.004的BDPSNR增益和BDBR降低3.122。

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