ERI: FD-WiNoC: Area and Energy Efficient Full Duplex Transceiver System for Wireless Network on Chip
ERI: FD-WiNoC: Area and Energy Efficient Full Duplex Transceiver System for Wireless Network on Chip
批准号:
2302010
负责人:
Soumyasanta Laha
金额:
$19.85万
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
项目状态:
未结题
起止时间:
2023-09-15 至 2025-08-31
中文摘要
同时同频全双工无线通信解决了现有同时半双工通信中带宽利用率低的问题。在全双工模式中,信号的发送和接收在同一频带中同时发生。设计这种全双工无线设备的主要挑战是自干扰。在收发信机中本地产生的、因而具有很高功率电平的发射信号干扰同一频带中的低功率接收信号。因此,接收到的信号被淹没在来自本地发射机的“自干扰噪声”中,并且无法恢复。在过去的十年中,已经提出了几种技术来将自干扰信号降低到可以忽略的水平,从而消除自干扰。当前项目的目标是使自干扰消除达到60 dB或更高,这足以用于片上无线通信,例如无线片上网络(WiNoC)。自干扰消除对于WiNOC特别重要,因为WiNOC将需要高数据速率(10 Gbps及以上)来支持当今的高性能多核计算机架构,该架构需要同时双向数据传输来支持实时应用。全双工架构将消除对用于传输和接收的两组单独频带的需要,从而将多个亚太赫兹频带的需求减少一半。这有助于缓解CMOS技术带来的严重设计挑战。这项研究的成功将激励在60 GHz和sub-THz频率下使用先进的亚20 nm RF FinFET技术进行系统级研究,以评估所提出的新型WiNoC架构的性能,并将其与其他现有架构进行比较。此外,用于WiNoC应用的全双工收发器系统的验证将扩展对其他片上通信的全双工能力的研究见解,例如小芯片之间的无线互连或无线神经加速器架构。该项目为学生提供培训机会,包括来自STEM中代表性不足的少数群体的学生,学习半导体集成电路设计技术,为未来在半导体行业的职业生涯做好准备。 该项目旨在开发一种新颖的同时同频全双工收发器系统,用于具有成本效益的RF CMOS技术中的无线片上网络(WiNoC)应用。这项工作建立在初步可行性研究的基础上,将通过以下研究任务进行基础研究,以提高WiNoC应用的全双工收发器电路的性能:a)设计具有内置模拟消除的新颖的能量和面积有效的发射机电路,在5 GHz下工作,并采用具有成本效益的110 nm RF CMOS技术中的开关键控(OOK)或其他非相干调制,以将自干扰消除提高到40 dB或更高,B)以相同的频率设计接收机前端电路,并使用相同的技术,具有新颖的高性能无电感低噪声放大器(LNA),以提高面积效率,c)用自-利用模拟消除电路在模拟域中进行干扰消除,并开发频谱估计或其他类似技术来实现残留信号的高数字消除,以增强对于WiNoC的实际应用,总自干扰消除达到60 dB或更高,d)设计共时共频全频调制器的原型,双工收发器系统,通过实验测量验证所有性能参数,作为概念验证。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进行评估,被认为值得支持的搜索.
英文摘要
The co-time co-frequency full-duplex wireless communication alleviates the issue of inefficient use of bandwidth in the existing co-time half-duplex communication. In the full-duplex mode, the transmission and reception of signals take place simultaneously in the same frequency band. The primary challenge in designing such a full-duplex wireless device is self-interference. The transmit signal which is locally generated in the transceiver and thus has a very high power level interferes with the low power received signal in the same frequency band. The received signal is thus submerged in the ‘self-interfered noise’ from the local transmitter and cannot be recovered. Several techniques have been suggested over the last decade to reduce the self-interference signal to the level where it can be neglected, thus eliminating self-interference. The current project targets to bring the self-interference cancellation to 60 dB or more, which is sufficient for on-chip wireless communications such as wireless network on chips (WiNoCs). The self-interference cancellation is particularly important for WiNOCs because WiNoCs will need high data rates (10 Gbps and beyond) to support today’s high performance multi-core computer architecture which require simultaneously bidirectional data transfer to support real-time applications. A full-duplex architecture will eliminate the need of two separate sets of frequency bands for transmission and reception, and hence reduce the demand of multiple sub-THz frequency bands by half. This help mitigate serious design challenges with CMOS technologies. The success of this research will motivate system-level study with advanced sub-20-nm RF FinFET technologies at 60 GHz and sub-THz frequencies to evaluate the performance of the proposed novel WiNoC architecture and compare it with other existing architectures. Furthermore, the validation of the full-duplex transceiver system for WiNoC applications will expand research insights for full-duplex capability of other on-chip communications such as wireless interconnects between chiplets or a wireless neural accelerator architecture. The project provides training opportunities for students, including those from underrepresented minority groups in STEM, to learn semiconductor integrated circuit design techniques and prepare themselves for future career in semiconductor industry. The project aims to develop a novel co-time co-frequency full-duplex transceiver system for wireless network on chip (WiNoC) applications in a cost-effective RF CMOS technology. The work is built on a preliminary feasibility study and will conduct fundamental research to improve the performance of the full-duplex transceiver circuit for WiNoC applications by the following research tasks: a) designing a novel energy- and area-efficient transmitter circuit with built-in analog cancellation, operating at 5 GHz and using the On-Off Keying (OOK) or other non-coherence modulation in a cost-effective 110-nm RF CMOS technology, to improve the self-interference cancellation to 40 dB or higher, b) designing a receiver front-end circuit at the same frequency and using the same technology with a novel high performance inductor-less low noise amplifier (LNA) for area efficiency, c) augmenting the above designs with self-interference cancellation in analog domain with the analog cancellation circuit and developing spectral estimation or other similar techniques to achieve a high digital cancellation of the residual signal to enhance the total self-interference cancellation to 60 dB or higher for practical applications of WiNoC, d) designing a prototype of the co-time co-frequency full-duplex transceiver system to validate all the performance parameters with experimental measurements as a proof of concept.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.
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