基于拉普拉斯算子的有效率失真近似和变换类型选择

Keng-Shih Lu, Antonio Ortega, D. Mukherjee, Yue Chen
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引用次数: 6

摘要

率失真(RD)优化是许多视频压缩标准中的一个重要工具,可用于变换选择。然而,这通常是非常需要计算的,因为一个完整的RD搜索涉及到计算每个候选变换的变换系数。在本文中,我们提出了一种使用稀疏拉普拉斯算子通过计算变换系数的加权平方和来估计RD成本的方法,而无需计算实际的变换系数。我们通过实验证明了我们的方法如何应用于变换选择。在AV1编码器中实现,我们的方法在编码时间上产生了显着的加速,比特率略有增加。
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Efficient Rate-distortion Approximation and Transform Type Selection using Laplacian Operators
Rate-distortion (RD) optimization is an important tool in many video compression standards and can be used for transform selection. However, this is typically very computationally demanding because a full RD search involves the computation of transform co-efficients for each candidate transform. In this paper, we propose an approach that uses sparse Laplacian operators to estimate the RD cost by computing a weighted squared sum of transform coefficients, without having to compute the actual transform coefficients. We demonstrate experimentally how our method can be applied for transform selection. Implemented in the AV1 encoder, our approach yields a significant speed-up in encoding time with a small increase in bitrate.
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