NeuroRAN Rethinking Virtualization for AI-native Radio Access Networks in 6G

IF 1 4区 工程技术 Q4 INSTRUMENTS & INSTRUMENTATION
Insight Pub Date : 2023-02-09 DOI:10.1002/inst.12416
Paris Carbone, Gyorgy Dán, James Gross, Bo Göransson, Marina Petrova
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引用次数: 0

Abstract

Network softwarization has revolutionized the architecture of cellular wireless networks. State-of-the-art container based virtual radio access networks (vRAN) provide enormous flexibility and reduced life-cycle management costs, but they also come with prohibitive energy consumption. We argue that for future AI-native wireless networks to be flexible and energy efficient, there is a need for a new abstraction in network softwarization that caters for neural network type of workloads and allows a large degree of service composability. In this paper we present the NeuroRAN architecture, which leverages stateful function as a user facing execution model, and is complemented with virtualized resources and decentralized resource management. We show that neural network based implementations of common transceiver functional blocks fit the proposed architecture, and we discuss key research challenges related to compilation and code generation, resource management, reliability and security.

重新思考6G下人工智能本地无线接入网络的虚拟化
网络软件化已经彻底改变了蜂窝无线网络的架构。最先进的基于容器的虚拟无线接入网络(vRAN)提供了巨大的灵活性,降低了生命周期管理成本,但它们也带来了令人难以承受的能源消耗。我们认为,为了使未来的人工智能原生无线网络更加灵活和节能,需要在网络软件化中引入新的抽象,以满足神经网络类型的工作负载,并允许很大程度的服务可组合性。在本文中,我们提出了NeuroRAN架构,它利用有状态功能作为面向用户的执行模型,并辅以虚拟化资源和分散的资源管理。我们展示了基于神经网络的通用收发器功能块的实现符合所提出的架构,并讨论了与编译和代码生成,资源管理,可靠性和安全性相关的关键研究挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Insight
Insight 工程技术-材料科学:表征与测试
CiteScore
1.50
自引率
9.10%
发文量
0
审稿时长
2.8 months
期刊介绍: Official Journal of The British Institute of Non-Destructive Testing - includes original research and devlopment papers, technical and scientific reviews and case studies in the fields of NDT and CM.
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