首页> 外文会议>Annual Allerton Conference on Communication, Control, and Computing vol.2; 20050928-30; Monticello,IL(US) >Slepian-Wolf codes for parallel sources: design and error-exponent analysis
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Slepian-Wolf codes for parallel sources: design and error-exponent analysis

机译:适用于并行源的Slepian-Wolf代码:设计和误差指数分析

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The distributed source coding problem, introduced by Slepian and Wolf, is finding application in diverse areas ranging from sensor networks to robust video-compression to compression of encrypted data. Such applications have led to a flurry of recent work in practical code constructions. However, most of these constructions are designed for independent identically distributed random source models, which fail to capture the high degree of correlation inherent in real-world sources like image and video signals. Motivated by its success in the modeling of real-world sources, in this paper we invoke a parallel source model. The traditional way to deal with parallel source models has been through the so-called waterfilling prescription of using multiple shorter codes, each matched to one of the source components. Our main contribution is the proposal of a single long-block-length distributed source code that takes into account the parallel nature of the source. We first present an information-theoretic analysis of the gains made possible by this approach by using the well-developed theory of error exponents. More significantly, our study exposes a new code design problem which we describe for an LDPC framework. We show simulation results to validate our design.
机译:Slepian和Wolf提出的分布式源编码问题正在从传感器网络到强大的视频压缩再到加密数据压缩的各种领域中找到应用。这样的应用导致了在实际代码构造中的大量最新工作。但是,这些构造中的大多数都是为独立的均匀分布的随机源模型设计的,这些模型无法捕获图像和视频信号等现实世界源中固有的高度相关性。受其在现实世界中进行建模的成功的激励,本文中我们将调用并行源模型。处理并行源模型的传统方法是通过使用多个较短代码(每个都与源组件之一匹配)的所谓注水规则。我们的主要贡献是提出了单个长块长度的分布式源代码的建议,其中考虑了源代码的并行性质。首先,我们使用发达的误差指数理论,对这种方法可能实现的收益进行信息理论分析。更重要的是,我们的研究揭示了一个新的代码设计问题,我们将对LDPC框架进行描述。我们显示仿真结果以验证我们的设计。

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