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Design and Optimization of Physical Waveform-Diverse and Spatially-Diverse Radar Emissions

机译:物理波形多样和空间多样的雷达辐射的设计与优化

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摘要

With the advancement of arbitrary waveform generation techniques, new radar transmission modes can be designed via precise control of the waveform's time-domain signal structure. The finer degree of emission control for a waveform (or multiple waveforms via a digital array) presents an opportunity to reduce ambiguities in the estimation of parameters within the radar backscatter. While this freedom opens the door to new emission capabilities, one must still consider the practical attributes for radar waveform design. Constraints such as constant amplitude (to maintain sufficient power efficiency) and continuous phase (for spectral containment) are still considered prerequisites for high-powered radar waveforms. These criteria are also applicable to the design of multiple waveforms emitted from an antenna array in a multiple-input multiple-output (MIMO) mode.;In this work, three spatially-diverse radar emission design methods are introduced that provide constant amplitude, spectrally-contained waveforms implemented via a digital array radar (DAR). The first design method, denoted as spatial modulation, designs the radar waveforms via a polyphase-coded frequency-modulated (PCFM) framework to steer the coherent mainbeam of the emission within a pulse. The second design method is an iterative scheme to generate waveforms that achieve a desired wideband and/or widebeam radar emission. However, a wideband and widebeam emission can place a portion of the emitted energy into what is known as the `invisible' space of the array, which is related to the storage of reactive power that can damage a radar transmitter. The proposed design method purposefully avoids this space and a quantity denoted as the Fractional Reactive Power (FRP) is defined to assess the quality of the result. The third design method produces simultaneous radar and communications beams in separate spatial directions while maintaining constant modulus by leveraging the orthogonal complement of the emitted directions. This orthogonal energy defines a trade-space between power efficiency gained from constraining waveforms to be constant amplitude and power efficiency lost by emitting energy in undesired directions.;The design of FM waveforms via traditional gradient-based optimization methods is also considered. A waveform model is proposed that is a generalization of the PCFM implementation, denoted as coded-FM (CFM), which defines the phase of the waveform via a summation of weighted, predefined basis functions. Therefore, gradient-based methods can be used to minimize a given cost function with respect to a finite set of optimizable parameters. A generalized integrated sidelobe level (GISL) metric is used as the optimization cost function to minimize the correlation range sidelobes of the radar waveform. System specific waveform optimization is explored by incorporating the linear models of three different loopback configurations into the GISL metric to match the optimized waveforms to the particular systems.
机译:随着任意波形生成技术的发展,可以通过精确控制波形的时域信号结构来设计新的雷达传输模式。波形(或通过数字阵列的多个波形)的发射控制的更精细程度为减少雷达反向散射内的参数估计中的模糊性提供了机会。尽管这种自由为新的发射功能打开了大门,但人们仍然必须考虑雷达波形设计的实用属性。诸如恒定幅度(以保持足够的功率效率)和连续相位(用于频谱抑制)之类的约束仍然被认为是高功率雷达波形的先决条件。这些标准也适用于在多输入多输出(MIMO)模式下从天线阵列发射的多个波形的设计。;在这项工作中,引入了三种空间分立的雷达发射设计方法,这些方法可在频谱上提供恒定的幅度通过数字阵列雷达(DAR)实现的包含波形。第一种设计方法称为空间调制,它通过多相编码的调频(PCFM)框架设计雷达波形,以控制脉冲内发射的相干主光束。第二种设计方法是一种迭代方案,用于生成实现所需宽带和/或宽波束雷达发射的波形。但是,宽带发射和宽带发射可以将一部分发射的能量放到阵列的“不可见”空间中,这与可能损坏雷达发射机的无功功率的存储有关。所提出的设计方法有目的地避免了该空间,并定义了表示为无功分数的数量来评估结果的质量。第三种设计方法在分离的空间方向上同时产生雷达和通信波束,同时通过利用发射方向的正交互补来保持恒定模数。该正交能量定义了从约束波形获得恒定幅度的功率效率与通过沿不希望的方向发射能量而损失的功率效率之间的权衡空间。还考虑了通过传统的基于梯度的优化方法设计FM波形。提出了一种波形模型,将其作为PCFM实现的概括,表示为已编码FM(CFM),该模型通过加权的预定义基函数之和定义波形的相位。因此,基于梯度的方法可用于相对于有限的一组可优化参数最小化给定的成本函数。通用集成旁瓣电平(GISL)度量用作优化代价函数,以最小化雷达波形的相关范围旁瓣。通过将三种不同环回配置的线性模型合并到GISL度量中,以将优化的波形与特定系统进行匹配,来探索系统特定的波形优化。

著录项

  • 作者

    McCormick, Patrick M.;

  • 作者单位

    University of Kansas.;

  • 授予单位 University of Kansas.;
  • 学科 Electrical engineering.;Engineering.
  • 学位 Ph.D.
  • 年度 2018
  • 页码 402 p.
  • 总页数 402
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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