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Transmit waveform design for coexisting radar and communications systems.

机译:共存雷达和通信系统的发射波形设计。

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摘要

In recent years, there has been an increased interest in sharing available bandwidth to avoid spectrum congestion. With an ever-increasing number wireless users, it is critical to develop signal processing based spectrum sharing algorithms to achieve cooperative use of the allocated spectrum among multiple systems in order to reduce interference between systems. This work studies the radar and communications systems coexistence problem using two main approaches. The first approach develops methodologies to increase radar target tracking performance under low signal-to-interference-plus-noise ratio (SINR) conditions due to the coexistence of strong communications interference. The second approach jointly optimizes the performance of both systems by co-designing a common transmit waveform.;When concentrating on improving radar tracking performance, a pulsed radar that is tracking a single target coexisting with high powered communications interference is considered. Although the Cramer-Rao lower bound (CRLB) on the covariance of an unbiased estimator of deterministic parameters provides a bound on the estimation mean squared error (MSE), there exists an SINR threshold at which estimator covariance rapidly deviates from the CRLB. After demonstrating that different radar waveforms experience different estimation SINR thresholds using the Barankin bound (BB), a new radar waveform design method is proposed based on predicting the waveform-dependent BB SINR threshold under low SINR operating conditions.;A novel method of predicting the SINR threshold value for maximum likelihood estimation (MLE) is proposed. A relationship is shown to exist between the formulation of the BB kernel and the probability of selecting sidelobes for the MLE. This relationship is demonstrated as an accurate means of threshold prediction for the radar target parameter estimation of frequency, time-delay and angle-of-arrival.;For the co-design radar and communications system problem, the use of a common transmit waveform for a pulse-Doppler radar and a multiuser communications system is proposed. The signaling scheme for each system is selected from a class of waveforms with nonlinear phase function by optimizing the waveform parameters to minimize interference between the two systems and interference among communications users. Using multi-objective optimization, a trade-off in system performance is demonstrated when selecting waveforms that minimize both system interference and tracking MSE.
机译:近年来,人们越来越关注共享可用带宽以避免频谱拥塞的兴趣。随着无线用户数量的不断增长,开发基于信号处理的频谱共享算法以实现多个系统之间分配频谱的协作使用以减少系统之间的干扰至关重要。这项工作使用两种主要方法研究雷达和通信系统的共存问题。第一种方法是开发由于强通信干扰的共存而在低信噪比(SINR)条件下提高雷达目标跟踪性能的方法。第二种方法是通过共同设计一个共同的发射波形来共同优化两个系统的性能。当着眼于提高雷达跟踪性能时,要考虑一个跟踪单个目标并与高功率通信干扰共存的脉冲雷达。尽管确定性参数的无偏估计量的协方差的Cramer-Rao下界(CRLB)提供了估计均方误差(MSE)的界限,但存在一个SINR阈值,在该阈值处,估计量协方差迅速偏离CRLB。在使用Barankin界线(BB)证明不同的雷达波形经历不同的估计SINR阈值之后,基于低SINR工作条件下预测与波形有关的BB SINR阈值,提出了一种新的雷达波形设计方法。提出了用于最大似然估计(MLE)的SINR阈值。 BB核的制定与为MLE选择旁瓣的概率之间存在关系。这种关系被证明是一种准确的阈值预测手段,可用于估计雷达目标参数的频率,时延和到达角。;对于共同设计的雷达和通信系统问题,使用通用的发射波形提出了一种脉冲多普勒雷达和多用户通信系统。通过优化波形参数以最小化两个系统之间的干扰以及通信用户之间的干扰,从具有非线性相位函数的一类波形中选择每个系统的信令方案。使用多目标优化,当选择最小化系统干扰和跟踪MSE的波形时,就证明了系统性能的折衷。

著录项

  • 作者

    Kota, John S.;

  • 作者单位

    Arizona State University.;

  • 授予单位 Arizona State University.;
  • 学科 Electrical engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 135 p.
  • 总页数 135
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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