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CU Partition Prediction Scheme for X265 Intra Coding Using Neural Networks

机译:使用神经网络的X265帧内编码的CU分区预测方案

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This paper proposes an early termination algorithm that relies on a backpropagation neural network (BPNN) for predicting the decision of coding unit (CU) partition to avoid unnecessary computation and thus to accelerate HEVC intra coding process. One of the most important things for using BPNN is to discover suitable features that are profoundly correspondent to the way of making decision of CU partition and be helpful for training a model with high prediction accuracy. Block texture of CU is adopted as the input features for training data to model the HEVC behavior on CU partition. Experiment results show that it can decrease 40.78% average encoding time and increase only a little output encoded bitrate for most benchmark videos.
机译:本文提出了一种基于反向传播神经网络(BPNN)的提前终止算法,用于预测编码单元(CU)分区的决策,以避免不必要的计算,从而加快HEVC帧内编码过程。使用BPNN的最重要的事情之一就是发现与CU分区决策方式完全对应的合适特征,并有助于训练具有较高预测精度的模型。 CU的块纹理被用作训练数据的输入特征,以对CU分区上的HEVC行为进行建模。实验结果表明,对于大多数基准视频而言,它可以减少40.78%的平均编码时间,并且仅增加一点输出的编码比特率。

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