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Waveform-Diverse Multiple-Input Multiple-Output Radar Imaging Measurements.

机译:波形多样的多输入多输出雷达成像测量。

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摘要

Multiple-input multiple-output (MIMO) radar is an emerging set of technologies designed to extend the capabilities of multi-channel radar systems. While conventional radar architectures emphasize the use of antenna array beamforming to maximize real-time power on target, MIMO radar systems instead attempt to preserve some degree of independence between their received signals and to exploit this expanded matrix of target measurements in the signal-processing domain. Specifically the use of sparse &;While MIMO radar's theoretical benefits have been well established in the literature, its practical limitations have not received great attention thus far. The effective use of MIMO radar techniques requires a diversity of signals, and to date almost all MIMO system demonstrations have made use of time-staggered transmission to satisfy this requirement. Doing so is reliable but can be prohibitively slow. Waveform-diverse systems have been proposed as an alternative in which multiple, independent waveforms are broadcast simultaneously over a common bandwidth and separated on receive using signal processing. Operating in this way is much faster than its time-diverse equivalent, but finding a set of suitable waveforms for this technique has proven to be a difficult problem. In light of this, many have questioned the practicality of MIMO radar imaging and whether or not its theoretical benefits may be extended to real systems.;Work in this writing focuses specifically on the practical aspects of MIMO radar imaging systems and provides performance data sourced from experimental measurements made using a four-channel software-defined MIMO radar platform. Demonstrations of waveform-diverse imaging data products are provided and compared directly against time-diverse equivalents in order to assess the performance of prospective MIMO waveforms. These are sourced from the pseudo-noise, short-term shift orthogonal, and orthogonal frequency multiplexing signal families while experimental results demonstrate waveform-diverse measurements of polarimetric radar cross section, top-down stationary target images, and finally volumetric MIMO synthetic aperture radar imagery. The data presented represents some of the first available concerning the overall practicality of waveform-diverse MIMO radar architectures, and results suggest that such configurations may achieve a reasonable degree of performance even in the presence of significant practical limitations.
机译:多输入多输出(MIMO)雷达是一组旨在扩展多通道雷达系统功能的新兴技术。传统的雷达体系结构强调使用天线阵列波束成形来最大化目标的实时功率,而MIMO雷达系统却试图保留其接收信号之间的某种程度的独立性,并在信号处理领域中利用目标测量的扩展矩阵。具体而言,虽然在文献中已经充分确立了稀疏&MIMO雷达的理论优势,但到目前为止,其实际局限性尚未引起人们的广泛关注。有效使用MIMO雷达技术需要多种信号,迄今为止,几乎所有MIMO系统演示都使用了时间交错传输来满足这一要求。这样做是可靠的,但可能会太慢。已经提出了波形多样的系统作为替代方案,其中多个独立的波形在公共带宽上同时广播,并在接收时使用信号处理进行分离。以这种方式进行操作比其时分等效方式要快得多,但是事实证明,为该技术找到一组合适的波形是一个难题。有鉴于此,许多人质疑MIMO雷达成像的实用性,以及其理论上的好处是否可以扩展到实际系统中。本书的工作重点是MIMO雷达成像系统的实际方面,并提供了源自MIMO雷达成像系统的性能数据。使用四通道软件定义的MIMO雷达平台进行的实验测量。提供了波形多样化成像数据产品的演示,并将其与时分等效项直接进行比较,以评估预期的MIMO波形的性能。这些来自伪噪声,短期移位正交和正交频率多路复用信号族,而实验结果证明了极化雷达横截面,自顶向下的固定目标图像以及最终的体积MIMO合成孔径雷达图像的波形多样化测量。所提供的数据代表了有关波形多样化MIMO雷达架构整体实用性的首批可用数据,结果表明,即使存在重大实际限制,此类配置也可以实现合理的性能。

著录项

  • 作者

    Stewart, Kyle B.;

  • 作者单位

    The Ohio State University.;

  • 授予单位 The Ohio State University.;
  • 学科 Electrical engineering.;Remote sensing.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 289 p.
  • 总页数 289
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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