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Ultra-wideband technology for short-range wireless communications.

机译:用于短距离无线通信的超宽带技术。

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摘要

The ultra-wideband (UWB) radio core idea is to open large amounts of spectrum to a variety of users with little mutual interference between them. While ultra-wideband is being championed by several commercial companies, this technology has not followed the conventional path where commercial interest is preceded by years of academic research. This work attempts to fill in some of the gap by studying fundamental properties of communications with impulse-based radio UWB signals. We study jam resistance and capacity of UWB. Jam resistance is analyzed for binary pulse position modulation (PPM) with the interference being modeled as correlated Gaussian. Closed-form expressions are provided for the jam resistance of a PPM UWB system utilizing rectangular pulses. Simple approximations are obtained for special cases (narrowband interference). Such analysis is extended to other practical UWB waveforms such as Gaussian and Rayleigh monocycles. It is shown that under some conditions, the UWB jam resistance is superior to that of direct sequence spread spectrum (DS-SS). In the second part of this work, we study the capacity of the single-user UWB communication systems utilizing M-ary PPM and bi-phase as well as on-off keying modulation scheme over additive white Gaussian noise (AWGN) and multipath channels. Starting from the known capacity of M-ary modulated signals, the computation of UWB capacity over the AWGN channel takes into account UWB specific constraints. The constraints are the power spectrum density limitation under Federal Communications Commission (FCC) Part 15 rules and the spreading ratio required to achieve a specified jam resistance level. UWB capacity over AWGN channel is expressed as a function of spreading ratio and communication range. Trade-offs between capacity and range of communications and between capacity and spreading ratio are explored. We extend the study of capacity of UWB communications to the multipath channel using the modified S-V model proposed by the IEEE 802.15.3a task group. The complementary cumulative distribution function (CCDF) of the capacities, subject to the FCC power spectral density (PSD) limitation, are obtained for the all Rake (ARake) and selective Rake (SRake) receivers. In both of the cases, maximum ratio combining is employed. Finally, the capacity of multiple-access UWB communications is studied over the AWGN channel. Under certain assumptions, the multiple-access noise component at the receiver is modeled as Gaussian. An expression for the UWB capacity of the multiple-access channel is developed as a function of number of users.
机译:超宽带(UWB)无线电核心思想是向各种用户开放大量频谱,而它们之间的相互干扰很小。尽管几家商业公司都拥护超宽带,但这项技术并没有遵循传统的方法,在商业发展之前先进行了多年的学术研究。这项工作试图通过研究与基于脉冲的无线电UWB信号进行通信的基本特性来填补一些空白。我们研究了UWB的抗干扰性和容量。分析抗干扰性以进行二进制脉冲位置调制(PPM),并将干扰建模为相关高斯模型。对于使用矩形脉冲的PPM UWB系统的抗干扰性,提供了封闭形式的表达式。对于特殊情况(窄带干扰),可以获得简单的近似值。这种分析扩展到其他实际的UWB波形,例如高斯和瑞利单周期。结果表明,在某些情况下,UWB的抗干扰性优于直接序列扩频(DS-SS)。在这项工作的第二部分,我们研究了利用Mary PPM和双相以及在加性高斯白噪声(AWGN)和多径信道上的开关键控调制方案的单用户UWB通信系统的容量。从已知的M进制调制信号容量开始,在AWGN信道上的UWB容量的计算考虑了UWB特定的约束。约束条件包括联邦通信委员会(FCC)第15部分规则中的功率谱密度限制,以及达到指定抗干扰水平所需的扩展比。 AWGN信道上的UWB容量表示为扩频比和通信范围的函数。探讨了容量和通信范围之间以及容量和传播比率之间的权衡。我们使用IEEE 802.15.3a任务组提出的改进的S-V模型,将UWB通信容量的研究扩展到多径信道。对于所有Rake(ARake)和选择性Rake(SRake)接收器,均要获得受FCC功率谱密度(PSD)限制的容量的互补累积分布函数(CCDF)。在这两种情况下,都采用最大比率合并。最后,在AWGN信道上研究了多址UWB通信的容量。在某些假设下,接收机的多址噪声成分被建模为高斯模型。根据用户数量开发了多址信道的UWB容量表达式。

著录项

  • 作者

    Zhao, Li.;

  • 作者单位

    New Jersey Institute of Technology.;

  • 授予单位 New Jersey Institute of Technology.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 93 p.
  • 总页数 93
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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