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A Dual-Clock VLSI Design of H.265 Sample Adaptive Offset Estimation for 8k Ultra-HD TV Encoding

机译:H.265样本自适应偏移估计的双时钟VLSI设计,用于8k超高清电视编码

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Sample adaptive offset (SAO) is a newly introduced in-loop filtering component in H.265/High Efficiency Video Coding (HEVC). While SAO contributes to a notable coding efficiency improvement, the estimation of SAO parameters dominates the complexity of in-loop filtering in HEVC encoding. This paper presents an efficient VLSI design for SAO estimation. Our design features a dual-clock architecture that processes statistics collection (SC) and parameter decision (PD), the two main functional blocks of SAO estimation, at high- and low-speed clocks, respectively. Such a strategy reduces the overall area by 56% by addressing the heterogeneous data flows of SC and PD. To further improve the area and power efficiency, algorithm-architecture co-optimizations are applied, including a coarse range selection (CRS) and an accumulator bit width reduction (ABR). CRS shrinks the range of fine processed bands for the band offset estimation. ABR further reduces the area by narrowing the accumulators of SC. They together achieve another 25% area reduction. The proposed VLSI design is capable of processing 8k at 120-frames/s encoding. It occupies 51k logic gates, only one-third of the circuit area of the state-of-the-art implementations.
机译:样本自适应偏移(SAO)是H.265 /高效视频编码(HEVC)中新引入的环路滤波组件。虽然SAO有助于显着提高编码效率,但SAO参数的估计支配了HEVC编码中环路滤波的复杂性。本文提出了一种用于SAO估计的有效VLSI设计。我们的设计采用双时钟架构,分别在高速时钟和低速时钟下处理统计信息收集(SC)和参数决策(PD)(这是SAO估计的两个主要功能模块)。通过解决SC和PD的异构数据流,这种策略可将总面积减少56%。为了进一步提高面积和功率效率,应用了算法-架构协同优化,包括粗略范围选择(CRS)和累加器位宽减小(ABR)。 CRS缩小了用于频带偏移估计的精细处理频带的范围。 ABR通过缩小SC的累加器来进一步减小面积。他们一起又实现了25%的面积减少。提出的VLSI设计能够以120帧/秒的编码处理8k。它占据了51k逻辑门,仅是最新实现的电路面积的三分之一。

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