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Collaborative Research: SpecEES: Designing A Spectrally Efficient and Energy Efficient Data Aided Demand Driven Elastic Architecture for future Networks (SpiderNET)

Collaborative Research: SpecEES: Designing A Spectrally Efficient and Energy Efficient Data Aided Demand Driven Elastic Architecture for future Networks (SpiderNET)
合作研究:SpecEES:为未来网络设计频谱效率高、能源效率高的数据辅助需求驱动弹性架构 (SpiderNET)
批准号:
1923669
负责人:
Ali Imran
金额:
$50.01万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-09-01 至 2023-08-31

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中文摘要
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英文摘要
Radio spectrum useable by mobile cellular networks is finite but cellular traffic continues to grow rampantly. This calls on scientific community to design networks that can push spectrum efficiency to its limits. On the other hand, making cellular networks energy efficient is a goal that is becoming more pressing than ever not only for operational cost reduction but also for minimizing the carbon foot print of the bulging information and communications technology industry. Recent studies show that unless new degrees of freedom and artificial intelligence based dynamic adaptability is added in the cellular architecture, any significant gain in spectral efficiency must come at cost of energy efficiency. The overarching goal of this project is to design, characterize, optimize and validate through a state-of-the-art testbed a new architecture that enables the additional degrees of freedom and intelligence to dynamically exploit these new degrees of freedom in the design and operation of the mobile network to yield substantial gains in both spectrum efficiency and energy efficiency, simultaneously. This proposed architecture is named as SpiderNET: Spectrally Efficient and Energy Efficient Data Aided Demand Driven Elastic Architecture for Future Networks. The key idea behind SpiderNET is to introduce additional degrees of freedom to relax the rigid spectrum efficiency-energy efficiency tradeoff and thus enable simultaneous enhancement of both. In wake of the internet of everything, as a key enabler of network resource efficiency, enhanced battery life and service level improvement, SpiderNET is bound to have a broad impact on nearly every aspect of evolving digital society that counts on wireless connectivity. In addition, as diminishing revenue per bit is already pushing cellular operators to reduce energy bills, huge energy savings enabled by SpiderNET can substantially reduce OPEX. Reducing the carbon foot print of cellular industry is also a key benefit of the proposed research. This project offers workforce training in a highly sought-after multi-disciplinary skill set while ensuring the participation of women and other underrepresented groups, and K-12 outreach. Compared to only theoretical or simulation-based research, a key distinction of the proposed research is the experimental research on a cutting-edge cellular testbed that is expected to cast a much broader impact. This project is collaborative undertaking with key national and international stakeholders in cellular eco-systems to ensure timely adaptation of the project outcomes by respective industry and government bodies.The simultaneous enhancement of both spectrum efficiency and energy efficiency is achieved by shifting the pivot of operation from the rigid always-on base-station-centric cells to user-centric on-demand cells. To enable this, SpiderNET consists of a layer of low-density large footprint control base station underlaid by high-density switchable data base stations. The switching on/off the data base station, the size of user-centric cells (S-Zones) and other parameters are orchestrated proactively by a machine learning based self-organizing network (SON) engine that leverages a database of selected measurements at data and control base stations. Preliminary studies show that intelligent orchestration of the both, the size of the S-Zone and active data base station density, along with optimal design of the contents and spatiotemporal resolution of the database can substantially enhance both spectrum efficiency and energy efficiency without compromising quality of experience. The research will transform SpiderNET form an idea into a functional architecture by pursuing the following three research thrusts: 1) Developing analytical and simulation models to fully characterize the spectrum efficiency and energy efficiency of SpiderNET to determine the key design parameters that can be optimized to maximize its spectrum efficiency and energy efficiency gains. These models will then be leveraged to design algorithms for maximizing spectrum efficiency and energy efficiency in dynamic traffic conditions. 2) Designing the database of measurements and leveraging this data at control and data base stations to develop algorithms for proactive cell discovery and selection and radio resource allocation for jointly maximizing both spectrum efficiency and energy efficiency without compromising quality of experience. 3) Proof of concept of SpiderNET on TurboRAN (an NSF-funded end-to-end programmable testbed). This research leverages tools from domains of fluid modelling, stochastic geometry, game theory, machine learning and stochastic and multi-objective optimization to achieve its goals.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.
期刊论文(17)
专著(0)
科研奖励(0)
会议论文
Toward the Development of 6G System Level Simulators: Addressing the Computational Complexity Challenge
致力于开发 6G 系统级模拟器:应对计算复杂性挑战
DOI: 10.1109/mwc.013.2200409
发表时间: 2023
期刊: IEEE Wireless Communications
影响因子: 12.9
作者: [Manalastas, Marvin, bin Farooq, Muhammad Umar, Asad Zaidi, Syed Muhammad, Imran, Ali]
通讯作者: Imran, Ali
Is CoMP Beneficial In User-Centered Wireless Networks?
CoMP 对以用户为中心的无线网络有益吗?
DOI: 10.1109/6gnet54646.2022.9830168
发表时间: 2022
期刊: 2022 1st International Conference on 6G Networking (6GNet
影响因子: --
作者: [Kasi, Shahrukh Khan, Sajid Hashmi, Umair, Nabeel, Muhammad, Ekin, Sabit, Imran, Ali]
通讯作者: Imran, Ali
Handover Probability Analysis in Multi-Tier Aerial Networks at Varying Altitudes
不同高度多层空中网络的切换概率分析
DOI: 10.1109/icc45041.2023.10279395
发表时间: 2023
期刊: IEEE
影响因子: --
作者: [Khan, Fahd Ahmed, Qureshi, Haneya Naeem, Imran, Ali, Refai, Hazem]
通讯作者: Refai, Hazem
DOI: 10.1109/tvt.2020.2979047
发表时间: 2020-05-01
期刊: IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY
影响因子: 6.8
作者: [Kachroo, Amit, Ekin, Sabit, Imran, Ali]
通讯作者: Imran, Ali
16
    NeTS: Small: Designing an Advanced Mobility Management and Utilization Framework for Enabling mmWave Multi-Band Ultra-Dense Cellular Networks of Future
    II-New: TurboRAN: Testbed for Ultra-Dense- Multi-Band Control and Data Plane Split Radio Access Networks of the Future
    IRES: US-UK: Enabling Ultra-Dense Future Cellular Networks (5G)
    NeTS: Small: Designing Agile and Scalable Self-Healing Functionalities for Ultra Dense Future Cellular Networks
    国内基金
    海外基金
    Research on Quantum Field Theory without a Lagrangian Description
    • 批准号:
      24ZR1403900
    • 项目类别:
      省市级项目
    • 资助金额:
      --
    • 批准年份:
      2024
    • 负责人:
      SATOSHI NAWATA
    • 依托单位:
    Cell Research
    Cell Research
    Cell Research (细胞研究)