结构化随机代码的案例:超越线性模型

B. Nazer, M. Gastpar
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引用次数: 3

摘要

最近的研究表明,对于一些多用户网络,仔细控制编码方案的代数结构可能与选择正确的输入分布一样有用。特别是对于线性信道模型,包括有限域和高斯网络,线性结构码已成功地用于证明新的容量结果。在本文中,我们展示了结构化随机码的好处并不局限于线性信道模型和网络。我们表明,对于一般的离散无记忆网络,允许中间节点只解码其输入的一个函数是有好处的。通过一个基于二进制相乘通道的例子来说明这些好处。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The case for structured random codes: Beyond linear models
Recent work has shown that for some multi-user networks, carefully controlling the algebraic structure of the coding scheme may be just as useful as selecting the correct input distribution. In particular, for linear channel models, including finite field and Gaussian networks, linearly structured codes have been successfully used to prove new capacity results. In this note, we show that the benefits of structured random codes is not limited to linear channel models and networks. We show that for general discrete memoryless networks, there are benefits to allowing intermediate nodes to decode only a function of their inputs. These benefits are illustrated through the aid of an example based on the binary multiplying channel.
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