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A unified architecture for fast HEVC intra-prediction coding

机译:快速HEVC帧内预测编码的统一架构

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The high efficiency video coding (HEVC) is the new video coding standard, which obtains over 50% bit rate savings compared with H.264/AVC for the same perceptual quality. Intra-prediction coding in HEVC achieves high coding performance in expense of high computational complexity, due to the exhaustive evaluation of all available coding units (CU) sizes, with up to 35 prediction modes for each CU, selecting the one with the lower rate distortion cost, among other new features. This paper presents a Unified Architecture to form a novel fast HEVC intra-prediction coding algorithm, denoted as fast partitioning and mode decision. This approach combines a fast partitioning decision algorithm, based on decision trees, which are trained using machine learning techniques, and a fast mode decision algorithm, based on a novel texture orientation detection algorithm, which computes the mean directional variance along a set of co-lines with rational slopes using a sliding window over the prediction unit. Both algorithms proposed apply a similar approach, exploiting the strong correlation between several image features and the optimal CTU partitioning and the optimal prediction mode. The key point of the combined approach is that both algorithms compute the image features with low complexity, and the partition decision and the mode decision can also be taken with low complexity, using decision trees (if-else statements) and by selecting the minimum directional variance between a reduced set of directions. This approach can be implemented using any combination of nodes, obtaining a wide range of time savings, from 44 to 67%, and light penalties from 1.1 to 4.6%. Comparisons with similar state-of-the-art works show the proposed approach achieves the best trade-off between complexity reduction and rate distortion.
机译:高效视频编码(HEVC)是新的视频编码标准,在相同的感知质量下,与H.264 / AVC相比,它节省了50%以上的比特率。由于对所有可用编码单元(CU)大小进行了详尽的评估,HEVC中的帧内预测编码以较高的计算复杂性为代价实现了较高的编码性能,每个CU具有多达35种预测模式,选择速率失真较低的模式成本以及其他新功能。本文提出了一种统一体系结构,以形成一种新颖的快速HEVC帧内预测编码算法,称为快速分区和模式决策。这种方法结合了基于决策树的快速分区决策算法(该算法使用机器学习技术进行训练)和基于新型纹理方向检测算法的快速模式决策算法,该算法沿一组共轴计算平均方向方差。使用预测单元上方的滑动窗口以合理的斜率绘制直线。两种算法都提出了类似的方法,利用了多个图像特征之间的强相关性以及最佳CTU分区和最佳预测模式。组合方法的关键是两种算法都以低复杂度计算图像特征,并且还可以使用决策树(if-else语句)并通过选择最小方向来以低复杂度进行分区决策和模式决策。减少的一组方向之间的差异。可以使用节点的任意组合来实现此方法,从而节省了44%至67%的时间,并减少了1.1%至4.6%的罚款。与同类最新技术的比较表明,该方法在降低复杂度和降低速率失真之间达到了最佳平衡。

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