基于神经网络的无反馈混合分布式视频编码

Isaac Nickaein, M. Rahmati, S. S. Ghidary, A. Zohrabi
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引用次数: 4

摘要

分布式视频编码(DVC)是一种新的视频编码技术,其目的是对分散的视频源进行编码。虽然斯坦福Wyner-Ziv编解码器在DVC文献中是一个著名的架构,但它的主要缺点之一是从解码器到编码器的反馈通道的存在。这种反馈通道使得编解码器的使用在某些应用中不切实际。由于反馈通道的唯一应用是从编码器请求更多的奇偶校验位,如果编码器估计所需的奇偶校验位并立即发送它们,则可以省略反馈通道。本文提出了一种利用一组新的特征训练神经网络进行比特率估计的新方法。此外,提出了一种混合模式,降低了传统Wyner-Ziv编解码器解码器的计算复杂度。
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Feedback-free and hybrid distributed video coding using neural networks
Distributed Video Coding (DVC) is a new class of video coding techniques with the aim of coding the decentralized video sources. While the Stanford Wyner-Ziv codec is a well-known architecture in DVC literature, one of its main drawbacks is the presence of a feedback channel from the decoder to the encoder. This feedback channel makes the use of the codec impractical in some applications. Since the only application of the feedback channel is in requesting more parity bits from the encoder, it could be omitted if the encoder estimates the required parity bits and sends them at once. In this paper, a new method of bitrate estimation using a neural network trained by a new set of features is proposed. In addition, a Hybrid mode is proposed that reduces computational complexity at the decoder in a conventional Wyner-Ziv codec.
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