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Joint Source Channel Coding in Broadcast and Relay Channels: A Non-Asymptotic End-to-End Distortion Approach

机译:广播和中继信道中的联合源信道编码:一种非渐进式端到端失真方法

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摘要

The paradigm of separate source-channel coding is inspired by Shannon's separation result, which implies the asymptotic optimality of designing source and channel coding independently from each other. The result exploits the fact that channel error probabilities can be made arbitrarily small, as long as the block length of the channel code can be made arbitrarily large. However, this is not possible in practice, where the block length is either fixed or restricted to a range of finite values. As a result, the optimality of source and channel coding separation becomes unknown, leading researchers to consider joint source-channel coding (JSCC) to further improve the performance of practical systems that must operate in the finite block length regime. With this motivation, this thesis investigates the application of JSCC principles for multimedia communications over point-to-point, broadcast, and relay channels. All analyses are conducted from the perspective of end-to-end distortion (EED) for results that are applicable to channel codes with finite block lengths in pursuing insights into practical design. The thesis first revisits the fundamental open problem of the separation of source and channel coding in the finite block length regime. Derived formulations and numerical analyses for a source-channel coding system reveal many scenarios where the EED reduction is positive when pairing the channel-optimized source quantizer (COSQ) with an optimal channel code, hence establishing the invalidity of the separation theorem in the finite block length regime. With this, further improvements to JSCC systems are considered by augmenting error detection codes with the COSQ. Closed-form EED expressions for such system are derived, from which necessary optimality conditions are identified and used in proposed algorithms for system design. Results for both the point-to-point and broadcast channels demonstrate significant reductions to the EED without sacrificing bandwidth when considering a tradeoff between quantization and error detection coding rates. Lastly, the JSCC system is considered under relay channels, for which a computable measure of the EED is derived for any relay channel conditions with nonzero channel error probabilities. To emphasize the importance of analyzing JSCC systems under finite block lengths, the large sub-optimality in performance is demonstrated when solving the power allocation configuration problem according to capacity-based formulations that disregard channel errors, as opposed to those based on the EED. Although this thesis only considers one JSCC setup of many, it is concluded that consideration of JSCC systems from a non-asymptotic perspective not only is more meaningful, but also reveals more relevant insight into practical system design. This thesis accomplishes such by maintaining the EED as a measure of system performance in each of the considered point-to-point, broadcast, and relay cases.
机译:香农的分离结果启发了分开的信源-信道编码的范式,这暗示了彼此独立设计信源和信道编码的渐近最优性。结果利用了这样的事实,即只要可以任意地增大信道代码的块长度,就可以使信道错误概率任意地小。但是,这在实际中是不可能的,因为块长度是固定的或限制为有限值的范围。结果,源和通道编码分离的最佳性变得未知,导致研究人员考虑联合源通道编码(JSCC),以进一步提高必须在有限块长范围内运行的实际系统的性能。基于这种动机,本文研究了JSCC原理在点对点,广播和中继通道上进行多媒体通信的应用。所有分析都是从端到端失真(EED)的角度进行的,这些结果适用于具有有限块长的通道代码,以便深入了解实际设计。本文首先回顾了有限块长机制中源编码与信道编码分离的根本性开放问题。源通道编码系统的派生公式和数值分析揭示了许多情况,其中将通道优化的源量化器(COSQ)与最佳通道代码配对时,EED降低为正,从而确定了有限块中分离定理的无效性长度制度。这样,可以通过使用COSQ扩展错误检测代码来考虑对JSCC系统进行进一步的改进。推导了此类系统的封闭式EED表达式,从中确定了必要的最优条件,并将其用于提出的系统设计算法中。当考虑量化和检错码率之间的权衡时,点对点和广播信道的结果都表明EED显着降低,而又不牺牲带宽。最后,在中继信道下考虑JSCC系统,为此,对于具有非零信道错误概率的任何中继信道条件,可以得出EED的可计算度量。为了强调分析有限块长度下的JSCC系统的重要性,当根据基于容量的公式(不考虑基于EED的容量)来解决功率分配配置问题时,表现出较大的次优性能。尽管本文只考​​虑了许多JSCC设置,但得出的结论是,从非渐近的角度考虑JSCC系统不仅更有意义,而且还揭示了对实际系统设计的更多相关见解。本文通过在各种考虑的点对点,广播和中继情况下维持EED作为系统性能的度量来实现上述目的。

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    Ho James;

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