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Approximate recovery of network coded real-time information

机译:网络编码实时信息的近似恢复

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In this paper, we consider real-time voice transmission or speech communication systems, where voice information is encoded based on network coding techniques. For real-time delivery of data encoded by network coding techniques, the All-Or-Nothing problem of network coding is one of the most important challenges in order to guarantee quality of service (QoS) requirements. In order to overcome the problem, approximate decoding is used for immediate data recovery. In this paper, we focus on optimizing parameters for the best performance of approximate decoding algorithm by explicitly considering the information about source correlation. In particular, we consider the case where consecutive source data sets have symmetric distributions. We analytically show that the best strategy for the approximate decoding algorithm is to use mean of the distributions. Moreover, the performance of the proposed algorithm can improve as the variance of the distributions becomes lower.
机译:在本文中,我们考虑实时语音传输或语音通信系统,基于网络编码技术对语音信息进行编码。为了实时传送网络编码技术编码的数据,网络编码的全部或无问题是最重要的挑战之一,以保证服务质量(QoS)要求。为了克服这个问题,近似解码用于立即数据恢复。在本文中,我们通过明确考虑有关源相关信息的信息,专注于优化近似解码算法的最佳性能的参数。特别地,我们考虑连续源数据集具有对称分布的情况。我们分析地表明,近似解码算法的最佳策略是使用分布的平均值。此外,由于分布的方差变低,所提出的算法的性能可以提高。

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