论文标题

分布式系统的空中计算:旧的和新事物

Over-the-Air Computation for Distributed Systems: Something Old and Something New

论文作者

Chen, Zheng, Larsson, Erik G., Fischione, Carlo, Johansson, Mikael, Malitsky, Yura

论文摘要

面对即将到来的时代和连接的情报,有效的信息处理,计算和通信设计成为大规模智能系统的关键挑战。最近,已经提出了用于数据聚合和在大量网络节点上的功能分布式计算的空中计算。这个概念的理论基础很长一段时间存在,但主要在无线传感器网络的背景下进行了研究。在应用现代无线通信技术的不同类型的分布式系统中应用OTA计算时,仍然存在许多开放问题。在本文中,我们为服务器协调和完全分散的体系结构提供了有关OTA计算原理及其在分布式学习,控制和推理系统中的应用的全面概述。特别是,我们强调了数据和无线渠道的统计异质性,模型更新的时间演变以及性能指标的选择对于OTA联合学习(FL)系统中的通信设计。还确定了OTA FL的隐私,安全性和鲁棒性方面的一些关键挑战,以进行进一步调查。

Facing the upcoming era of Internet-of-Things and connected intelligence, efficient information processing, computation, and communication design becomes a key challenge in large-scale intelligent systems. Recently, Over-the-Air (OtA) computation has been proposed for data aggregation and distributed computation of functions over a large set of network nodes. Theoretical foundations for this concept exist for a long time, but it was mainly investigated within the context of wireless sensor networks. There are still many open questions when applying OtA computation in different types of distributed systems where modern wireless communication technology is applied. In this article, we provide a comprehensive overview of the OtA computation principle and its applications in distributed learning, control, and inference systems, for both server-coordinated and fully decentralized architectures. Particularly, we highlight the importance of the statistical heterogeneity of data and wireless channels, the temporal evolution of model updates, and the choice of performance metrics, for the communication design in OtA federated learning (FL) systems. Several key challenges in privacy, security, and robustness aspects of OtA FL are also identified for further investigation.

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