首页> 外文学位 >Novel techniques of polarization diversity and extended-aperture spatial diversity for sensor-array direction-finding in radar, sonar, and wireless communications.
【24h】

Novel techniques of polarization diversity and extended-aperture spatial diversity for sensor-array direction-finding in radar, sonar, and wireless communications.

机译:用于雷达,声纳和无线通信中传感器阵列测向的极化分集和扩展孔径空间分集的新技术。

获取原文
获取原文并翻译 | 示例

摘要

An array of diversely polarized antennas can resolve impinging sources based on the sources' different polarizational states in addition to the sources' different directions-of arrival (DOA). Alternately in the sonar environment, an array of diversely oriented velocity-hydrophones can exploit DOA information embedded in the acoustic particle velocity vector-field, in addition to the scalar pressure field. Array aperture extension using sparse array configurations enhances direction-finding (DF) accuracy and resolution capabilities without undue increase in hardware and software costs. The main part of this presentation involves the use of electromagnetic vector-sensors, each of which is composed of six spatially co-located, orthogonally oriented, diversely polarized antennas, distinctly measuring all six electromagnetic-field components of an incident multi-source wave-field. The pivotal insight is that the DOA's may be estimated from the Poynting-vector estimates obtainable from each vector-sensor's steering vector. This vector-sensor based DF provides DOA estimates independent of the traditional estimation based on the phase shifts between the sensor-array's spatially displaced elements as in interferometry.; These two separate approaches to DOA estimation allow: (1) extension of intervector-sensor spacing in a uniform array geometry beyond the Nyquist half-wavelength maximum in a closed-form ESPRIT-based DF algorithm, while disambiguating the resultant cyclic ambiguity using the Poynting-vector DOA estimates as coarse references, (2) derivation of coarse DOA estimates to initiate a MUSIC-based iterative search algorithm for any irregularly spaced array of vector-sensors, (3) closed-form DF using only one vector-sensor under certain signal scenarios, (4) closed-form DF using any array of sonar vector-sensors at unknown and arbitrary locations. (The sonar vector-sensor is composed of co-located but orthogonally oriented velocity-hydrophones & a pressure-hydrophone.); Two other DF methods not using the aforementioned vector-sensors are: (5) a close-form Root-MUSIC-based DF algorithm allowing adjacent spatially displaced antennas to have different polarizational states, and (6) an extended-aperture ESPRIT-based algorithm applicable with identical scalar-sensors spaced in a novel geometry with dual sizes of spatial invariances.; These various novel DF methods result in order-of-magnitude improvements in estimation accuracy and resolution capability compared with customary non-diversely-polarized half-wavelength spaced interferometry-type DF approaches.
机译:除辐射源的不同到达方向(DOA)外,一系列极化天线还可以根据辐射源的不同极化状态来解析撞击源。或者,在声纳环境中,除了标量压力场之外,一系列方向不同的速度水听器还可以利用嵌入声粒子速度矢量场中的DOA信息。使用稀疏阵列配置的阵列孔径扩展可提高测向(DF)的准确性和分辨率,而不会过度增加硬件和软件成本。本演示文稿的主要部分涉及电磁矢量传感器的使用,每个矢量传感器均由六个空间共处一地,正交定位,不同极化的天线组成,分别测量入射多源波的所有六个电磁场分量。领域。关键的见解是,可以从可从每个矢量传感器的操纵向量获得的Poynting矢量估计来估计DOA。这种基于矢量传感器的DF提供了独立于传统估计的DOA估计,而传统估计基于干涉阵列中传感器阵列的空间位移元素之间的相移。这两种单独的DOA估计方法允许:(1)在基于ESPRIT的封闭形式DF算法中,将均匀阵列几何中的矢量传感器间距扩展到超过Nyquist半波长最大值,同时使用Poynting消除所得的循环歧义-矢量DOA估计作为粗参考,(2)推导粗DOA估计以启动针对任何不规则间隔的矢量传感器阵列的基于MUSIC的迭代搜索算法,(3)在一定条件下仅使用一个矢量传感器的闭式DF (4)在未知和任意位置使用声纳矢量传感器的任何阵列的闭式DF。 (声纳矢量传感器由位于同一位置但正交的速度水听器和压力水听器组成。)另两种不使用上述矢量传感器的DF方法是:(5)一种基于Root-MUSIC的闭式DF算法,允许相邻的空间位移天线具有不同的极化状态,以及(6)一种基于扩展孔径ESPRIT的算法适用于以新颖的几何形状隔开的相同标量传感器,具有空间不变性的双重大小。与常规的非分极化半波间隔干涉式DF方法相比,这些各种新颖的DF方法可提高估计精度和分辨率的数量级。

著录项

  • 作者

    Wong, Kainam Thomas.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 1996
  • 页码 250 p.
  • 总页数 250
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 无线电电子学、电信技术;
  • 关键词

  • 入库时间 2022-08-17 11:49:12

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号