PCL-PET 混合异构网络中的目标定位和测量关联

IF 7 2区 计算机科学 Q1 ENGINEERING, AEROSPACE IEEE Transactions on Aerospace and Electronic Systems Pub Date : 2024-10-25 DOI:10.1109/TAES.2024.3486263
Yueyang Hu;Jianxin Yi;Xianrong Wan;Feng Cheng
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引用次数: 0

摘要

讨论了由无源相干定位(PCL)和无源辐射源跟踪(PET)组成的混合异构网络中目标定位和测量关联问题。与现有文献的区别在于本文考虑了PCL接收器只能接收来自特定发射机的信号的一般情况。针对目标初始位置未知和已知的情况,分别提出了基于半定松弛法和牛顿同伦法的目标定位算法。此外,本文还介绍了一种针对PCL-PET混合异构网络的测量关联算法。检验统计量服从卡方分布,为假设决策中阈值的选择提供了理论指导。蒙特卡罗仿真结果表明,所提出的定位算法的精度接近cram - rao下界,并且测量关联算法可以有效地识别测量是否来自同一目标。此外,定位精度的等高线图表明,与单一PCL和PET网络相比,PCL-PET混合异构网络具有更大的潜力。
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Target Localization and Measurement Association in PCL-PET Hybrid Heterogeneous Network
This article discusses the problem of target localization and measurement association in a hybrid heterogeneous network consisting of passive coherent location (PCL) and passive emitter tracking (PET). The distinction from existing literature lies in this article's consideration of the general scenario where PCL receivers can only receive signals from specific transmitters. Two target localization algorithms are proposed based on semidefinite relaxation and Newton–Homotopy methods, corresponding to situations where the initial target position is unknown and known, respectively. Furthermore, this article introduces a measurement association algorithm for the PCL-PET hybrid heterogeneous network. It demonstrates that the test statistic follows a chi-square distribution, providing theoretical guidance for selecting thresholds in hypothesis decisions. Monte Carlo simulations indicate that the proposed localization algorithms achieve accuracy close to the Cramér–Rao lower bound, and the measurement association algorithm effectively discerns whether measurements originate from the same target. In addition, contour plots of localization accuracy illustrate the more significant potential of the PCL-PET hybrid heterogeneous network compared to single PCL and PET networks.
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来源期刊
CiteScore
7.80
自引率
13.60%
发文量
433
审稿时长
8.7 months
期刊介绍: IEEE Transactions on Aerospace and Electronic Systems focuses on the organization, design, development, integration, and operation of complex systems for space, air, ocean, or ground environment. These systems include, but are not limited to, navigation, avionics, spacecraft, aerospace power, radar, sonar, telemetry, defense, transportation, automated testing, and command and control.
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