Collaborative Research: SWIFT: MEDUSA: Mid-band Environmental Sensing Capability for Detecting Incumbents during Spectrum Sharing
Collaborative Research: SWIFT: MEDUSA: Mid-band Environmental Sensing Capability for Detecting Incumbents during Spectrum Sharing
批准号:
2229445
负责人:
Jessica Ruyle
金额:
$27.98万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2022
资助国家:
美国
项目状态:
未结题
起止时间:
2022-11-01 至 2025-10-31
中文摘要
中频频谱共享为商用5G运营商和无牌使用提供了前所未有的机会,尽管需要可靠地检测到更高优先级的现有运营商。例如,在3.55-3.7GHz公民宽带无线电业务(CBRS)频段,通过环境感知能力(ESC)传感器检测海军舰载雷达信号的需求严重限制了5G运营商的发射功率。该项目名为MEDUSA:频谱共享期间检测在位者的中频环境传感能力,其目标是检测静态/移动雷达的存在,以及并发和相对更高功率的5G和4G-LTE信号中的异常传输。它通过机器学习(对现有干扰做出反应)和接收器天线设计(主动避免干扰)来实现这一目标。MEDUSA将使ESC传感器能够处理不同类型的无线信号,既可以进行单独的频谱监测,也可以通过协作方法提高在职检测精度。该项目将为研究界提供天线设计文件、数据集和学习算法的开源发布。它还包括一些外联和传播活动,如在项目网站上主持对频谱专家的采访录音,从代表性不足的群体中招募学生,以及设计使用cbrs相关数据集的课程项目。该项目在公民宽带无线电服务(CBRS)频段的雷达探测方面有三个目标,但也可推广到其他频率。首先,提出了一个深度学习框架,以增强环境感知能力(ESC)传感器的判别能力,同时通过使用频谱图输入来保护隐私。这些传感器将检测5G和4G-LTE信号中的雷达脉冲,其功率比fcc规定的水平强5db。此外,pi将开发针对未知条件的迁移学习方法。其次,它将推进协同推理科学,当多个ESC传感器通过使用作为第一个目标的一部分开发的算法融合单个预测来做出(i)独立和(ii)联合决策时。提出了一种光谱图与原始同相和正交(IQ)样品融合的方法。第三,当地理位置分离且任意间隔的ESC传感器进行时间和相位同步时,它们形成一个巨大的虚拟阵列用于接收波束形成。pi将设计实时权重自适应算法和喇叭天线,可以为已知的5G/4G-LTE基站创建零。最后,研究目标将通过NSF先进无线研究平台(pawr1)在仿真和实验测试平台上进行验证。该奖项反映了NSF的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Spectrum sharing in mid-band offers unprecedented opportunity to harness desirable frequencies for commercial 5G operators and for unlicensed use, although higher priority incumbents need to be reliably detected. As an example, the requirement of detecting naval ship-borne radar signals by the environmental sensing capability (ESC) sensors in the 3.55-3.7GHz Citizens Broadband Radio Service (CBRS) band severely limits the transmission power for 5G operators. The objective of this project called MEDUSA: Mid-band Environmental sensing capability for Detecting incUmbents during Spectrum shAring is to detect the presence of static/mobile radar and anomalous transmissions within concurrent and comparatively higher power 5G and 4G-LTE signals. It achieves this through machine learning (reacting to existing interference) and receiver antenna design (proactively avoiding interference). MEDUSA will enable ESC sensors to work with different types of wireless signals, both for individual spectrum monitoring and via collaborative methods for enhanced incumbent detection accuracy. The project will result in open-source release of antenna design files, datasets and learning algorithms for the research community. It also includes several outreach and dissemination activities such as hosting recordings of interviews with spectrum experts on the project website, recruiting students from under-representative groups, and designing course projects that use CBRS-related datasets.The project has three goals for radar detection in the Citizens Broadband Radio Service (CBRS) band but is also generalizable for other frequencies. First, it proposes a deep learning framework to enhance the discriminative abilities of the environmental sensing capability (ESC) sensor while preserving privacy by using spectrogram inputs. These sensors will detect radar pulses within 5G and 4G-LTE signals with powers stronger than FCC-mandated levels by 5 dB. Furthermore, the PIs will develop transfer-learning methods for unseen conditions. Second, it will advance the science of collaborative inference, when multiple ESC sensors make (i) independent and (ii) joint decisions by fusing individual predictions using the algorithms developed as part of the first goal. It also proposes a method of fusion of spectrograms and raw in-phase and quadrature (IQ) samples. Third, when the geographically separated and arbitrarily spaced ESC sensors are time and phase synchronized, they form a massive virtual array for receive beamforming. The PIs will design real-time weight adaptation algorithms and horn antennas that can create nulls towards known 5G/4G-LTE base stations. Finally, the research goals will be validated in emulation as well as over experimental testbeds through the NSF Platform for Advanced Wireless Research (PAWRThis 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(1)
专著(0)
科研奖励(0)
会议论文
Implementation of Software-Defined Antenna and Radio Test System for Congested Spectral Environments
针对拥塞频谱环境实施软件定义天线和无线电测试系统
DOI:
--
发表时间:
2023
期刊:
GNU Radio Conference
影响因子:
--
作者:
[Agasti, Rosalind, Kim, Elliot, Ruyle, Jessica, Christopher Onwuchekwa, Chukwunodebem, Azizi, Shabnam, Rahaim, Michael]
通讯作者:
Rahaim, Michael
Collaborative Research: IDBR: Type B: An Open-Source Radio Frequency Identification System for Animal Monitoring
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批准号:1556313
-
项目类别:Standard Grant
-
资助金额:$34.41万
-
财政年份:2016
-
负责人:Jessica Ruyle
-
依托单位:
BRIGE: Investigation of Improved Antenna Reconfiguration Mechanisms
-
批准号:1342367
-
项目类别:Standard Grant
-
资助金额:$17.5万
-
财政年份:2013
-
负责人:Jessica Ruyle
-
依托单位:
国内基金
海外基金
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