Communication efficient channel estimation over distributed networks

M. O. Sayin, N. D. Vanli, Tolga Goze, S. Kozat
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引用次数: 3

Abstract

We study diffusion based channel estimation in distributed architectures suitable for various communication applications such as cognitive radios. Although the demand for distributed processing is steadily growing, these architectures require a substantial amount of communication among their nodes (or processing elements) causing significant energy consumption and increase in carbon footprint. Due to growing awareness of telecommunication industry's impact on the environment, the need to mitigate this problem is indisputable. To this end, we introduce algorithms significantly reducing the communication load between distributed nodes, which is the main cause in energy consumption, while providing outstanding performance. In this framework, after each node produces its local estimate of the communication channel, a single bit or a couple of bits of information is generated using certain random projections. This newly generated data is diffused and then used in neighboring nodes to recover the original full information, i.e., the channel estimate of the desired communication channel. We provide the complete state-space description of these algorithms and demonstrate the substantial gains through our experiments.
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分布式网络中通信效率信道估计
我们研究了适用于各种通信应用(如认知无线电)的分布式架构中基于扩散的信道估计。尽管对分布式处理的需求正在稳步增长,但这些体系结构需要在其节点(或处理元素)之间进行大量通信,从而导致大量的能源消耗和碳足迹的增加。由于人们越来越意识到电信行业对环境的影响,减轻这一问题的必要性是无可争辩的。为此,我们引入的算法显著降低了分布式节点之间的通信负载,这是导致能耗的主要原因,同时提供了出色的性能。在这个框架中,在每个节点产生其对通信信道的局部估计之后,使用某些随机投影生成单个或几个比特的信息。将新生成的数据进行扩散,然后在相邻节点中恢复原始的完整信息,即期望通信信道的信道估计。我们提供了这些算法的完整状态空间描述,并通过我们的实验证明了实质性的收益。
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