Collaborative Research: Architecture and Implementation of Intelligent Transceivers for Ultra-Wideband Communications

合作研究:超宽带通信智能收发器的架构和实现

基本信息

  • 批准号:
    0602621
  • 负责人:
  • 金额:
    $ 14.42万
  • 依托单位:
  • 依托单位国家:
    美国
  • 项目类别:
    Continuing Grant
  • 财政年份:
    2005
  • 资助国家:
    美国
  • 起止时间:
    2005-09-01 至 2008-08-31
  • 项目状态:
    已结题

项目摘要

0424196GharpureyIn February 2002, the Federal Communications Commission (FCC) revised its Part 15 emission rules and allowed the use of a large section of the radio-frequency (RF) spectrum by commercial ultra-wideband (UWB) transmission devices. The restrictions imposed on these devices include a limit on the transmitted power spectral density of -41 dBm/MHz from 3.1 to 10.6 GHz and a minimum signal bandwidth of 500 MHz. The availability of such a wide bandwidth has enabled several new short-distance, low-power, high bit-rate applications for communication, ranging and location-finding. Industrial standards proposals for the use of the above bandwidth allow for very impressive throughput performance. However, since time-to-market is a major constraint, many of these standards use variants of well-known carrier-based communication methods.This new FCC policy allows the public use of such a large spectrum for the first time. Thus it opens opportunities for fundamentally new research in wireless communications in topics such as radically new signaling methods and architectures, and their integrated circuit realization, in contrast with the traditional narrow-band approach of carrier-based modulation techniques.Intellectual Merits: The PI proposes to use this unique opportunity to research highly efficient, integrated circuit implementations of transceivers for UWB radio applications. He will explore the trade-offs between the signaling and system level, and the architectural and integrated circuit implementation level. He proposes to investigate an implementation-friendly digital multi-carrier UWB signaling format that is expected to alleviate major issues with UWB communications, namely interference and multipath. He also plans to investigate a low-power interference detector which detects the presence of undesired signals in given frequency bands. The detector shares interference information with other transceivers and allows for a unique intelligent interference mitigation strategy. The interference detection strategy can be combined very well with the proposed signaling format, with minimal hardware cost or power overhead. These innovations are enabled by our proposed research efforts in the efficient implementation of transceivers in VLSI integrated circuits. The low RF output power-levels in UWB open the possibility to use current and future nanometer CMOS technologies and exploit the impressive operation speed they offer. He plans to develop a circuit implementation of the transceivers including such circuit blocks as broadband amplifiers, high linearity correlators and matched filters, high-speed D/A and A/D converters, and output buffers.Broader Impacts: Communication technologies and more specifically wireless communicationtechnologies play a prominent role in developing a broadly accessible cyber-infrastructure. UWB radio technology opens exciting new opportunities for applications and the proposed research on the realization of an efficient physical layer is crucial enabler towards applications.The shortage of analog, mixed-signal, and RF integrated circuit designers, with in-depth knowledge of the communication systems aspects of the problem, has been a continuous challenge for the advancement of this field. Through research experiences and courses, his program will educate researchers and circuit designers with the cross-disciplinary skills to invent new design principles for integrated circuits in the context of the system in which they operate.The program involves the collaboration of PIs at different institutions. It leverages the industrial expertise and research backgrounds of both PIs. It further offers unique opportunities for graduate and undergraduate students to interact with a broader research effort. To enhance the educational opportunities for students in this emerging field, new courses will be developed. For undergraduate students a research experience program is proposed that will offer research projects specifically designed to provide hands-on experience and extend their expertise.
2002年2月,联邦通信委员会(FCC)修订了其第15部分发射规则,并允许商用超宽带(UWB)传输设备使用大部分射频(RF)频谱。对这些器件的限制包括:从3.1到10.6 GHz的发射功率谱密度限制为-41 dBm/MHz,最小信号带宽为500 MHz。这种宽带宽的可用性使得几种新的短距离、低功率、高比特率的通信、测距和定位应用成为可能。使用上述带宽的工业标准建议允许非常令人印象深刻的吞吐量性能。然而,由于上市时间是一个主要的限制,这些标准中的许多标准使用的是众所周知的基于运营商的通信方法的变体。FCC的这项新政策首次允许公众使用如此大的频谱。因此,它开辟了机会,从根本上新的研究在无线通信的主题,如全新的信令方法和架构,其集成电路实现,与传统的窄带载波调制技术的方法相比,知识的优点:PI建议利用这一独特的机会,研究高效率,集成电路实现的收发器UWB无线电应用。他将探索信号和系统级之间的权衡,以及架构和集成电路实现级。 他建议研究一种易于实现的数字多载波UWB信令格式,有望缓解UWB通信的主要问题,即干扰和多径。他还计划研究一种低功率干扰检测器,该检测器可以检测给定频带中不需要的信号的存在。该检测器与其他收发器共享干扰信息,并允许采用独特的智能干扰缓解策略。干扰检测策略可以很好地与所提出的信令格式相结合,具有最小的硬件成本或功率开销。 这些创新是使我们提出的研究工作,在超大规模集成电路中的收发器的有效实施。UWB中的低RF输出功率电平为使用当前和未来的纳米CMOS技术并利用它们提供的令人印象深刻的操作速度提供了可能性。他计划开发一个电路实现的收发器,包括这样的电路块,如宽带放大器,高线性度放大器和匹配滤波器,高速D/A和A/D转换器,和输出buffers.Broader影响:通信技术,更具体地说,无线communicationtechnologies发挥了突出的作用,在发展一个广泛访问的网络基础设施。UWB无线电技术为应用开辟了令人兴奋的新机会,并且对实现高效物理层的拟议研究是应用的关键使能者。模拟、混合信号和RF集成电路设计人员的短缺,以及对通信系统问题方面的深入了解,一直是该领域进步的持续挑战。通过研究经验和课程,他的计划将教育研究人员和电路设计师的跨学科技能,创造新的集成电路设计原则的背景下,他们在其中操作的系统。该计划涉及在不同机构的PI的合作。它利用了两个PI的行业专业知识和研究背景。它还为研究生和本科生提供了与更广泛的研究工作互动的独特机会。为了增加学生在这一新兴领域的教育机会,将开发新的课程。对于本科生的研究经验计划提出,将提供专门设计的研究项目,以提供实践经验,并扩展他们的专业知识。

项目成果

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Ranjit Gharpurey其他文献

Selected papers from the IEEE Dallas circuits and systems conference 2016
  • DOI:
    10.1007/s10470-018-1115-7
  • 发表时间:
    2018-02-05
  • 期刊:
  • 影响因子:
    1.400
  • 作者:
    Sid Balasubramanian;Ranjit Gharpurey;Rama Venkatasubramanian
  • 通讯作者:
    Rama Venkatasubramanian
Built-in Self Test of RF Subsystems with Integrated Detectors

Ranjit Gharpurey的其他文献

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{{ truncateString('Ranjit Gharpurey', 18)}}的其他基金

High-Efficiency Wireless Transmitters Employing RF Pulse-Width Modulation
采用射频脉宽调制的高效无线发射器
  • 批准号:
    1509615
  • 财政年份:
    2015
  • 资助金额:
    $ 14.42万
  • 项目类别:
    Standard Grant
A Comprehensive Approach to Interference Cancellation and Spurious Reduction in Broadband Wireless Transceivers
宽带无线收发器中干扰消除和杂散减少的综合方法
  • 批准号:
    1408575
  • 财政年份:
    2014
  • 资助金额:
    $ 14.42万
  • 项目类别:
    Standard Grant
Collaborative Research: Iterative Downconversion for Broadband Signal Digitization
合作研究:宽带信号数字化的迭代下变频
  • 批准号:
    1002338
  • 财政年份:
    2010
  • 资助金额:
    $ 14.42万
  • 项目类别:
    Continuing Grant
Adaptive Radio Platforms based on Recursive Receivers Employing Non-Linearity Compensation and Interference Cancellation
基于采用非线性补偿和干扰消除的递归接收器的自适应无线电平台
  • 批准号:
    0824250
  • 财政年份:
    2008
  • 资助金额:
    $ 14.42万
  • 项目类别:
    Standard Grant
Collaborative Research: Architecture and Implementation of Intelligent Transceivers for Ultra-Wideband Communications
合作研究:超宽带通信智能收发器的架构和实现
  • 批准号:
    0424196
  • 财政年份:
    2004
  • 资助金额:
    $ 14.42万
  • 项目类别:
    Continuing Grant

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