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异步多基地雷达分布式批估计方法研究
引用本文:黎 明,王 刚,易 伟,孔令讲.异步多基地雷达分布式批估计方法研究[J].现代雷达,2018,40(5):46-53.
作者姓名:黎 明  王 刚  易 伟  孔令讲
作者单位:电子科技大学电子工程学院,南京长江电子信息产业集团有限公司,电子科技大学电子工程学院,电子科技大学电子工程学院
摘    要:在实际应用中,由于初始偏差、采样速率不同等原因,系统量测一般也非同步。多基地雷达数据通常面临异步数据融合问题。为了解决该问题,该文按照批处理的思路,联合一段时间内的多个异步数据对同一目标状态进行估计,并基于最优贝叶斯估计原理,提出了一种新的批估计数据融合准则;然后,依据该准则推导出了一种解析的分布式批估计方法;最后,针对非线性非高斯场景,提出了一套完备的粒子滤波实现方案。仿真结果表明,文中提出的方法相比现有方法具有跟踪精度高,计算量小等优点。

关 键 词:多基地雷达  目标跟踪  数据融合  分布式批估计  粒子滤波

A Study on Distributed Batch Estimation Method for Asynchronous Multi-static Radar Systems
LI Ming,WANG Gang,YI Wei and KONG Lingjiang.A Study on Distributed Batch Estimation Method for Asynchronous Multi-static Radar Systems[J].Modern Radar,2018,40(5):46-53.
Authors:LI Ming  WANG Gang  YI Wei and KONG Lingjiang
Affiliation:School of Electronis Engineering, University of Electronic Science and Technology,Nanjing Changjiang Electronics Group Co. Ltd,School of Electronis Engineering, University of Electronic Science and Technology and School of Electronis Engineering, University of Electronic Science and Technology
Abstract:In practical applications, due to the different initial bias and sample rates of different multi-static radars, usually, the measurements of the system is non-synchronous. Therefore, there exists an annoying asynchronous data fusion problem in multi-radar data fusion. To address this problem, in this paper, we adopt the idea of batch processing, i. e. , utilizing the multiple asynchronous data during a period to estimate the same target state, and propose a batch estimation data fusion rule based on the optimal Bayesian estimation. Then, a distributed batch estimation approach is derived based on this rule. Finally, with regard to the nonlinear and non-Gaussian scenarios, a particle filtering based implementation of distributed batch estimation is derived. Simulation results show that our method has a better performance in tracking accuracy and computation cost comparing with the existing methods.
Keywords:multi-static radar  target tracking  data fusion  distributed batch estimation  particle filtering
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