6G将原生集成AI,构建可标准化的智能无线网络架构
Towards AI-Native RAN: An Operator's Perspective of 6G Day 1 Standardization
- 从0开始设计原生支持AI的6G无线网架构
- 实测5000+基站显著降低延迟、提升故障定位与节能效果
- 适合关注6G标准制定与产业落地的技术决策者
人工智能/机器学习(AI/ML)已成为6G移动网络最确定且突出的特征。与5G中AI/ML作为现有架构的附加功能不同,6G将在设计之初就原生集成AI,以应对系统复杂性并支持无处不在的AI应用。基于从2G到5G的移动网络运营与标准化经验,本文探讨了6G原生智能无线接入网(RAN)的设计与标准化原则,重点关注其关键的“第1天”架构、功能与能力。研究提出了原生智能RAN的框架,并明确了三项核心能力:由AI驱动的RAN处理/优化/自动化、可靠的AI生命周期管理(LCM),以及AI即服务(AIaaS)提供。本文还提出了6G原生智能RAN的标准化方向,包括第1天特性,如原生智能6G RAN架构。为验证,已建成超5000个5G-A基站的大规模现场试验,采用所提架构与支持的AI功能后,平均空中接口延迟、根因识别准确率及网络能耗均获得显著改善。本文旨在为6G原生智能RAN的标准化设计提供第1天框架,在技术创新与实际部署间取得平衡。
原文摘要 · Abstract (English)
Artificial Intelligence/Machine Learning (AI/ML) has become the most certain and prominent feature of 6G mobile networks. Unlike 5G, where AI/ML was not natively integrated but rather an add-on feature over existing architecture, 6G shall incorporate AI from the onset to address its complexity and support ubiquitous AI applications. Based on our extensive mobile network operation and standardization experience from 2G to 5G, this paper explores the design and standardization principles of AI-Native radio access networks (RAN) for 6G, with a particular focus on its critical Day 1 architecture, functionalities and capabilities. We investigate the framework of AI-Native RAN and present its three essential capabilities to shed some light on the standardization direction; namely, AI-driven RAN processing/optimization/automation, reliable AI lifecycle management (LCM), and AI-as-a-Service (AIaaS) provisioning. The standardization of AI-Native RAN, in particular the Day 1 features, including an AI-Native 6G RAN architecture, were proposed. For validation, a large-scale field trial with over 5000 5G-A base stations have been built and delivered significant improvements in average air interface latency, root cause identification, and network energy consumption with the proposed architecture and the supporting AI functions. This paper aims to provide a Day 1 framework for 6G AI-Native RAN standardization design, balancing technical innovation with practical deployment.
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