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Analysis of Deep Rain Streaks Removal Convolutional Neural Network-Based Post-Processing Techniques in HEVC Encoder

机译:HEVC编码器深雨条拆除卷积神经网络的拆除分析

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This paper presents Deep Rain Streaks Removal Convolutional Neural Network (Derain SRCNN) based post-processing optimization algorithm for High-Efficiency Video Coder (HEVC). Earlier, the CNN-based denoising optimization algorithm faced overfitting issues and large convergence time when training the CNN for rain streaks affected High Definition (HD) video sequences. To address these problems, Deep rain streaks removal CNN-based post-processing block is introduced in HEVC encoder. Derain SRCNN architecture consists of a parallel two residual block layer and Dual Channel Rectification Linear Unit (DCReLU) activation function with various sizes of the convolutional layer. By reducing the validate error and training the error of CNN, the overfitting issue is solved. Also, convergence time is reduced using proper learning rate and kernel weight of optimization algorithm. The proposed network provides a higher bit rate reduction and higher convergence speed for corrupted high-definition video sequences. The experiment result shows that proposed DerainSRCNN-based post-processing filtering method achieves 6.8% and 4.1% -bit rate reduction for random access (RA) and low delay P frame (LDP) configuration, respectively.
机译:本文介绍了深雨条拆除了基于高效视频编码器(HEVC)的基于后处理优化算法的基于后处理优化算法。早些时候,基于CNN的去噪优化算法面临着过度接收的问题和训练雨条纹CNN的大收敛时间,影响了高清(HD)视频序列。为了解决这些问题,在HEVC编码器中引入了基于深雨条形的基于CNN的后处理块。污染SRCNN架构包括并行两个残差层和双通道整流线性单元(Dcrelu)激活功能,具有各种卷积层。通过减少验证错误和培训CNN的错误,解决了过度装备问题。此外,使用适当的学习速率和优化算法的核重量来减少收敛时间。所提出的网络为损坏的高清视频序列提供了更高的比特率降低和更高的收敛速度。实验结果表明,基于DerainsRCNN的后处理滤波方法分别实现了6.8%和4.1%级比率降低,分别用于随机接入(RA)和低延迟P帧(LDP)配置。

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