Collaborative Research: NeTS: Medium: Black-box Optimization of White-box Networks: Online Learning for Autonomous Resource Management in NextG Wireless Networks
合作研究:NeTS:中:白盒网络的黑盒优化:下一代无线网络中自主资源管理的在线学习
基本信息
- 批准号:2312836
- 负责人:
- 金额:$ 30万
- 依托单位:
- 依托单位国家:美国
- 项目类别:Standard Grant
- 财政年份:2023
- 资助国家:美国
- 起止时间:2023-10-01 至 2026-09-30
- 项目状态:未结题
- 来源:
- 关键词:
项目摘要
Next-generation (NextG) wireless networks are anticipated to revolutionize various applications, such as interactive real-time applications like Augmented Reality (AR), while meeting the high Quality-of-Experience (QoE) requirements expected by users. To achieve these goals, NextG networks are undergoing a transformation toward a white-box architecture, characterized by openness, intelligence, and a focus on user needs. Therefore, it is both timely and important to address autonomous resource management within the NextG paradigm. This project aims to facilitate the transition from traditional black-box network designs to a white-box network architecture, which will significantly reduce costs and enhance QoE performance at its core. The findings of this project will be integrated into the curricula of all participating institutions. Furthermore, this project is committed to promoting the engagement of women and underrepresented minority (URM) students through research opportunities and outreach activities at their respective institutions. Mechanisms will be established to foster leadership and participation from URM groups in an annual high-profile research workshop held at OSU.O-RAN is an operator-driven alliance dedicated to the advancement of radio access networks (RAN) toward an open architecture. This research focuses on harnessing the advanced capabilities of O-RAN, with a specific emphasis on edge-assisted low-latency AR as a key use case, to address autonomous resource management in the NextG paradigm. The research employs a data-driven approach across multiple time scales, using Bayesian optimization (BO) as a sample-efficient online learning and black-box optimization tool. The research develops versatile techniques and building blocks to optimize the QoE performance, structured around three interconnected thrusts: (i) developing a provably efficient multi-time-scale data-driven BO framework integrated with O-RAN, (ii) achieving collaborative BO for multi-RAN learning and optimization, and (iii) applying the developed BO frameworks to edge-assisted low-latency AR applications. The research establishes the analytical foundations and algorithmic frameworks that will be integrated with open-source full-stack O-RAN implementations. The evaluation process involves simulations based on 3GPP standards in ns-3, as well as collaborations with industry partners including AT&T, Qualcomm, and Nokia Bell Labs. Real- world trace data and production-grade O-RAN platforms will be leveraged for evaluation purposes. The outcomes of this research not only contribute to advancing knowledge in machine-learning-enabled NextG systems design but also address critical needs within the broader machine learning and networking research communities.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
下一代(NextG)无线网络预计将彻底改变各种应用,例如增强现实(AR)等交互式实时应用,同时满足用户期望的高体验质量(QoE)要求。为了实现这些目标,NextG网络正在向白盒架构转型,其特点是开放、智能和关注用户需求。因此,在NextG范式中解决自主资源管理问题既及时又重要。该项目旨在促进从传统黑盒网络设计到白盒网络架构的过渡,这将显著降低成本并提高其核心的QoE性能。该项目的研究结果将纳入所有参与机构的课程。此外,该项目致力于通过在各自机构的研究机会和外联活动,促进妇女和代表性不足的少数民族学生的参与。O-RAN是一个运营商驱动的联盟,致力于推动无线电接入网络(RAN)向开放式架构发展。这项研究的重点是利用O-RAN的先进功能,特别强调边缘辅助低延迟AR作为关键用例,以解决NextG范式中的自主资源管理问题。该研究采用了跨多个时间尺度的数据驱动方法,使用贝叶斯优化(BO)作为样本高效的在线学习和黑盒优化工具。该研究开发了多功能技术和构建块来优化QoE性能,围绕三个相互关联的目标构建:(i)开发与O-RAN集成的可证明有效的多时间尺度数据驱动BO框架,(ii)实现用于多RAN学习和优化的协作BO,以及(iii)将开发的BO框架应用于边缘辅助的低延迟AR应用。该研究建立了分析基础和算法框架,将与开源全栈O-RAN实现集成。评估过程包括基于ns-3的3GPP标准的模拟,以及与AT T、高通和诺基亚贝尔实验室等行业合作伙伴的合作。将利用真实的跟踪数据和生产级O-RAN平台进行评估。这项研究的成果不仅有助于推进机器学习支持的NextG系统设计的知识,而且还解决了更广泛的机器学习和网络研究社区的关键需求。该奖项反映了NSF的法定使命,并通过使用基金会的智力价值和更广泛的影响审查标准进行评估,被认为值得支持。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Ness Shroff其他文献
Performance analysis of virtual circuit connections for bursty data sources in ATM networks
- DOI:
10.1007/bf02024995 - 发表时间:
1992-08-01 - 期刊:
- 影响因子:4.500
- 作者:
Ness Shroff;Magda El Zarki - 通讯作者:
Magda El Zarki
Ness Shroff的其他文献
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{{ truncateString('Ness Shroff', 18)}}的其他基金
AI Institute for Future Edge Networks and Distributed Intelligence (AI-EDGE)
未来边缘网络和分布式智能人工智能研究所 (AI-EDGE)
- 批准号:
2112471 - 财政年份:2021
- 资助金额:
$ 30万 - 项目类别:
Cooperative Agreement
Collaborative Research: CNS Core: Medium: Analytics and Online Optimization at Scale for Cellular Networks
合作研究:CNS 核心:中:蜂窝网络大规模分析和在线优化
- 批准号:
2106933 - 财政年份:2021
- 资助金额:
$ 30万 - 项目类别:
Standard Grant
Collaborative Research: CNS Core: Medium: Information Freshness in Scalable and Energy Constrained Machine to Machine Wireless Networks
合作研究:CNS 核心:中:可扩展且能量受限的机器对机器无线网络中的信息新鲜度
- 批准号:
2106932 - 财政年份:2021
- 资助金额:
$ 30万 - 项目类别:
Continuing Grant
RAPID: Acoustic Communications and Sensing for COVID-19 Data Collection
RAPID:用于 COVID-19 数据收集的声学通信和传感
- 批准号:
2028547 - 财政年份:2020
- 资助金额:
$ 30万 - 项目类别:
Standard Grant
Collaborative Research: CNS Core: Medium: Combating Latency and Disconnectivity in mmWave Networks: From Theory to Implementation
合作研究:CNS 核心:中:对抗毫米波网络中的延迟和断开连接:从理论到实施
- 批准号:
1955535 - 财政年份:2020
- 资助金额:
$ 30万 - 项目类别:
Continuing Grant
CNS Core: Small: New Caching Paradigms for Distributed and Dynamic Networks
CNS 核心:小型:分布式和动态网络的新缓存范例
- 批准号:
2007231 - 财政年份:2020
- 资助金额:
$ 30万 - 项目类别:
Standard Grant
CNS Core: Medium: Collaborative: Exploring and Exploiting Learning for Efficient Network Control: Non-Stationarity, Inter-Dependence, and Domain-Knowledge
CNS 核心:中:协作:探索和利用学习实现高效网络控制:非平稳性、相互依赖和领域知识
- 批准号:
1901057 - 财政年份:2019
- 资助金额:
$ 30万 - 项目类别:
Standard Grant
ICN-WEN: Collaborative Research: SPLICE: Secure Predictive Low-Latency Information Centric Edge for Next Generation Wireless Networks
ICN-WEN:协作研究:SPLICE:下一代无线网络的安全预测低延迟信息中心边缘
- 批准号:
1719371 - 财政年份:2017
- 资助金额:
$ 30万 - 项目类别:
Continuing Grant
CSR: NeTS: Small: Theoretical Foundations for Cache Networks: Performance Models, Algorithms, and Applications
CSR:NeTS:小型:缓存网络的理论基础:性能模型、算法和应用
- 批准号:
1717060 - 财政年份:2017
- 资助金额:
$ 30万 - 项目类别:
Standard Grant
NeTS: Large: Collaborative Research: Practical Foundations for Networking with Many-Antenna Base Stations
NetS:大型:协作研究:多天线基站联网的实用基础
- 批准号:
1518829 - 财政年份:2015
- 资助金额:
$ 30万 - 项目类别:
Continuing Grant
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