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A Novel Fast CU Encoding Scheme Based on Spatiotemporal Encoding Parameters for HEVC Inter Coding

机译:HEVC帧间编码的基于时空编码的快速CU编码方案

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Recently, a new video coding standard, High Efficiency Video Coding (HEVC), has shown greatly improved coding efficiency by adopting hierarchical structures of coding unit (CU), prediction unit (PU), and transform unit (TU). To best achieve the coding efficiency, the best combinations of CU, PU, and TU must be found in the sense of the minimum rate-distortion (R-D) costs. Owing to this, a large computational complexity occurs. Among these CU, PU, and TU, the determination of CU sizes most significantly affects the R-D performance of HEVC encoders, which causes large computational costs in operation with PU and TU size determinations. In spite of recent works in the complexity reduction of HEVC encoders, most of the research has focused on the complexity reduction with fast CU split in intra slice coding and with early TU split in both intra and inter slice. In this paper, we propose a fast and an efficient CU encoding scheme based on the spatiotemporal encoding parameters of HEVC encoders, which consists of an improved early CU SKIP detection method and a fast CU split decision method. For the current CU block under encoding, the proposed scheme utilizes sample-adaptive-offset parameters as the spatial encoding parameter to estimate the texture complexity that affects the CU partition. In addition, the motion vectors, TU size, and coded block flag information are used as the temporal encoding parameters to estimate the temporal complexity that also affects the CU partition. The proposed scheme effectively utilizes the spatiotemporal encoding parameters that are the byproducts during the encoding process of HEVC without additionally required computation. The proposed novel fast CU encoding scheme significantly reduces the total encoding time with negligible RD-performance loss. The experimental results show that the proposed scheme achieves the total encoding time savings of average 49.6% and 42.7% only with average 1.4% and 1.0% bit-- ate losses for various test sequences under random access and low delay B conditions, respectively. The proposed scheme has an advantage on the implementation for parallel processing in pipeline structures of HEVC encoders due to its independency with neighboring CU blocks.
机译:近来,通过采用编码单元(CU),预测单元(PU)和变换单元(TU)的分层结构,新的视频编码标准高效视频编码(HEVC)已经显示出极大地提高了编码效率。为了最好地达到编码效率,必须在最小速率失真(R-D)成本的意义上找到CU,PU和TU的最佳组合。因此,产生很大的计算复杂性。在这些CU,PU和TU中,CU大小的确定对HEVC编码器的R-D性能影响最大,这会导致在确定PU和TU大小的操作中产生大量计算成本。尽管最近在降低HEVC编码器的复杂度方面进行了工作,但大多数研究都集中在通过内部切片编码中的快速CU分割以及内部和内部切片之间的早期TU分割来降低复杂度。本文基于HEVC编码器的时空编码参数,提出了一种快速高效的CU编码方案,该方案包括一种改进的早期CU SKIP检测方法和一种快速CU分割决策方法。对于当前正在编码的CU块,提出的方案利用样本自适应偏移参数作为空间编码参数来估计影响CU分区的纹理复杂度。此外,运动矢量,TU大小和已编码块标志信息都用作时间编码参数,以估计也影响CU分区的时间复杂度。所提出的方案有效地利用了时空编码参数,该时空编码参数是HEVC的编码过程中的副产品,而无需另外进行计算。所提出的新颖的快速CU编码方案显着减少了总编码时间,而RD性能损失可忽略不计。实验结果表明,在随机访问和低延迟B条件下,各种测试序列的平均比特损失分别为1.4%和1.0%,所提方案仅节省了平均49.6%和42.7%的总编码时间。所提出的方案由于其与相邻CU块的独立性而在HEVC编码器的流水线结构中的并行处理的实施方式上具有优势。

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