人格分裂多重描述对悬崖效应的抑制

S. Kokalj-Filipovic, E. Soljanin, Yang Gao
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引用次数: 17

摘要

我们提出了一种压缩/传输方案,该方案允许重构信号的质量随着信道质量的下降而优雅地降低,并随着信道质量的改善而稳步提高。其主要思想是将信道和/或网络资源划分为m个单元(例如,子带,数据包),并将源独立压缩m次以完美匹配单个单元资源,从而创建m个独立扭曲的源版本。因此,我们创建了一个多描述、联合源通道的架构,它可以从单个接收到的描述开始进行有效的重建,并进行改进。我们进一步将压缩率分成两部分,将一部分分配给速率失真最优编码器,另一部分分配给传输未编码的源符号。我们展示了这种架构如何在可调的速率分割比和最大描述数量方面轻松利用模块化,例如,通过软件参数,同时健壮地(即避免悬崖效应)实现许多信道状态接近速率失真曲线的工作点。我们演示了如何使用通道状态的统计描述(或内容交付网络的性能统计)来建设性地设置两个参数,以便在感兴趣的范围内收敛到最佳操作。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cliff effect suppression through multiple-descriptions with split personality
We propose a compression/transmission scheme that allows the quality of the reconstructed signal to gracefully degrade as the channel quality drops, as well as steadily improve with the channel improvement. The main idea is to partition the channel and/or network resources into m units (e.g., sub-bands, packets) and compress the source independently m times to perfectly match single unit resources, thus creating m independently distorted source versions. Consequently, we create a multiple-description, joint source-channel like architecture, that enables efficient reconstruction starting from a single received description with improvements onward. We further split the compression rate in two parts, allocating one to a rate-distortion optimal encoder, and the other to transmitting uncoded source symbols. We show how this architecture can easily leverage modularity in terms of adjustable rate-splitting ratio and the maximum number of descriptions, e.g., through software parameters, to simultaneously and robustly (i.e. avoiding the cliff effect) achieve operating points close to rate-distortion curve for many channel states. We demonstrate how statistical description of channel states (or performance statistics of content delivery network) can be used to set the two parameters constructively in terms of converging to optimal operation in the range of interest.
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