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A Measurement Correlation Algorithm for Line-of-Bearing Geo-Location

机译:用于轴承地理位置的测量相关算法

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This paper develops an algorithm that can be used to solve the data association problem faced by a surveillance aircraft using Direction of Arrival angle measurements to locate a stationary RF signal source. The algorithm is based on statistical clustering of measurements with clusters being formed using a Mahalanobis distance association criterion. This approach accounts for angle measurement error statistics and avoids the computational complexity of an exhaustive combinatorial assignment. The optimal cluster is the one that maximized the target position log-likelihood function. This cluster is used to compute a target position estimate then removed from the set of measurements. The process is repeated until no additional clusters can be formed. Simulation results are shown where 100 measurements are distributed randomly across 7 target signal sources.
机译:本文开发了一种算法,该算法可用于解决监视飞机面临的数据关联问题,使用到达角度测量方向来定位静止的RF信号源。 该算法基于使用Mahalanobis距离关联标准形成的群集的测量统计聚类。 这种方法考虑了角度测量误差统计,避免了详尽的组合分配的计算复杂性。 最佳群集是最大化目标位置日志似然函数的群集。 该群集用于计算目标位置估计,然后从测量集中删除。 重复该过程,直到可以形成额外的簇。 示出了仿真结果,其中100测量在7个目标信号源上随机分布。

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