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首页> 外文期刊>IEEE Transactions on Circuits and Systems for Video Technology >A Novel Rate and Distortion Estimation Method Using Particle Filtering Based Prediction for Intra-Predictive Coding of Deep Block Partitioning Structures
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A Novel Rate and Distortion Estimation Method Using Particle Filtering Based Prediction for Intra-Predictive Coding of Deep Block Partitioning Structures

机译:基于粒子滤波的新速率和失真估计方法对深块分区结构的预测性编码预测

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摘要

In this paper, we propose a new R/D estimation method for intra-predictive coding with deep block partitioning structures. In our proposed R/D prediction, we adopt a particle filtering based prediction (PFP) to precisely predict intermediate R/D estimates for the next frame in a stochastic manner, which helps increasing the prediction accuracy of fast changing R/D values. Then, based on the intermediate R/D estimates by PFP, we infer an optimal model parameter of the TC's probability density function (pdf) via convex optimization. We found that the proposed method brings about more stable R/D estimation performance thanks to both the improved prediction accuracy using the PFP for abrupt changes in true R/D values and the precise estimation of the optimal model parameter. Experimental results show that our method significantly reduces the normalized root mean square error from average 3.17 to 0.79 (74.90% reduction) for rate and from average 2.32 to 0.82 (64.61% reduction) for distortion, compared to the state-of-the art method.
机译:在本文中,我们提出了一种新的R / D估计方法,用于具有深层块分区结构的预测性编码。在我们提出的R / D预测中,我们采用基于粒子滤波的预测(PFP)以以随机方式精确地预测下一个帧的中间R / D估计,这有助于增加快速改变R / D值的预测精度。然后,基于PFP的中间R / D估计,我们通过凸优化推断TC概率密度函数(PDF)的最佳模型参数。我们发现,由于使用PFP的改进的预测精度,所提出的方法带来了更稳定的R / D估计性能,其使用PFP突然变化的真实R / D值和最佳模型参数的精确估计。实验结果表明,与现有化方法相比,我们的方法显着降低了平均3.17至0.79(减少74.90%的减少)的平均率和0.79(减少74.61%)(减少64.61%)(减少64.61%) 。

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