Low-delay distributed source coding for time-varying sources with unknown statistics

Fangzhou Chen, Bin Li, C. E. Koksal
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引用次数: 1

Abstract

We consider a system in which two nodes take correlated measurements of a random source with time-varying and unknown statistics. The observations of the source at the first node are to be losslessly replicated with a given probability of outage at the second node, which receives data from the first node over a constant-rate channel. We develop a system and associated strategies for joint distributed source coding (encoding and decoding) and transmission control in order to achieve low end-to-end delay. Slepian-Wolf coding in its traditional form cannot be applied in our scenario, since the encoder requires the joint statistics of the observations and the associated decoding delay is very high. We analytically evaluate the performance of our strategies and show that the delay achieved by them are order optimal, as the conditional entropy of the source approaches to the channel rate. We also evaluate the performance of our algorithms based on real-world experiments using two cameras recording videos of a scene at different angles. Having realized our schemes, we demonstrated that, even with a very low-complexity quantizer, a compression ratio of approximately 50% is achievable for lossless replication at the decoder, at an average delay of a few seconds.
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具有未知统计量的时变源的低延迟分布式源编码
我们考虑一个系统,其中两个节点对具有时变和未知统计量的随机源进行相关测量。在给定第二个节点的中断概率下,将无损地复制第一个节点上的源的观测值,第二个节点通过恒定速率通道接收来自第一个节点的数据。为了实现低端到端延迟,我们开发了一个联合分布式源编码(编码和解码)和传输控制的系统和相关策略。传统形式的睡狼编码不能应用于我们的场景,因为编码器需要对观察结果进行联合统计,并且相关的解码延迟非常高。我们分析地评估了我们的策略的性能,并表明它们所实现的延迟是阶最优的,因为源的条件熵接近信道速率。我们还评估了基于真实世界实验的算法的性能,使用两台摄像机从不同角度记录场景的视频。在实现了我们的方案之后,我们证明,即使使用非常低复杂度的量化器,在解码器中也可以实现大约50%的压缩比,以平均几秒钟的延迟进行无损复制。
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