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Efficient communication over complex dynamical networks: The role of matrix non-normality

机译:复杂动态网络的高效通信:矩阵非正常性的作用

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In both natural and engineered systems, communication often occurs dynamically over networks ranging from highly structured grids to largely disordered graphs. To use, or comprehend the use of, networks as efficient communication media requires understanding of how they propagate and transform information in the face of noise. Here, we develop a framework that enables us to examine how network structure, noise, and interference between consecutive packets jointly determine transmission performance in complex networks governed by linear dynamics. Mathematically, normal networks, which can be decomposed into separate low-dimensional information channels, suffer greatly from readout noise. Most details of their wiring have no impact on transmission quality. Non-normal networks, however, can largely cancel the effect of noise by transiently amplifying select input dimensions while ignoring others, resulting in higher net information throughput. Our theory could inform the design of new communication networks, as well as the optimal use of existing ones.
机译:在自然和工程化系统中,通信通常通过从高度结构化网格到大部分混乱的图形动态发生。使用,或理解使用网络,作为高效的通信媒体需要了解它们如何在噪声中传播和转换信息。在这里,我们开发了一个框架,使我们能够检查连续数据包之间的网络结构,噪声和干扰如何在线动力学管理的复杂网络中的传输性能。数学上,可以分解成单独的低维信息信道的普通网络极大地受到读出噪声的大大遭受。其接线的大多数细节对传输质量没有影响。然而,非正常网络可以在很大程度上取消通过瞬时放大选择输入维度在忽略他人的同时,导致净信息吞吐量更高的噪声的影响。我们的理论可以为新的通信网络设计提供通知设计,以及现有的最佳使用。

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