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Prior Knowledge-Based Simultaneous Multibeam Power Allocation Algorithm for Cognitive Multiple Targets Tracking in Clutter

机译:基于先验知识的杂波认知多目标同时功率跟踪算法

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摘要

In this paper, a power allocation scheme for tracking multiple targets, with radar measurements either target generated or false alarms, is developed for colocated multiple-input multiple-output (MIMO) radar system. Such a system adopts a multibeam concept, in which multiple simultaneous transmit beams are synthesized by different probing signals from various colocated transmitters. To ensure that the limited power resource can be exploited effectively, we adjust the transmit power of each beam according to the prior knowledge predicted from the tracking recursion cycle. Specifically, the whole algorithm can be viewed as a reaction of the cognitive transmitters to the environment, in order to improve the worst case tracking performance of the multiple targets. By incorporating an information reduction factor (IRF), the Bayesian Cramér-Rao lower bound (BCRLB) gives a measure of the best achievable performance for target tracking in clutter. Hence, it is derived and utilized as an optimization criterion for the simultaneous multibeam power allocation algorithm. The optimization problem is nonconvex and is solved by the modified gradient projection (MGP) method in this paper. Simulation results show that the proposed algorithm significantly outperforms equal power allocation, in terms of the worst case tracking root mean-square error (RMSE).
机译:在本文中,针对共置多输入多输出(MIMO)雷达系统,开发了一种用于跟踪多个目标的功率分配方案,该方案使用目标生成或错误警报的雷达测量结果。这样的系统采用多波束概念,其中多个同时发送的波束由来自不同位置的发射机的不同探测信号合成。为了确保可以有效地利用有限的功率资源,我们根据从跟踪递归循环预测的先验知识来调整每个波束的发射功率。具体而言,整个算法可以看作是认知发射器对环境的反应,以提高多个目标的最坏情况跟踪性能。通过合并信息缩减因子(IRF),贝叶斯Cramér-Rao下界(BCRLB)可以衡量杂波中目标跟踪的最佳可实现性能。因此,它被导出并用作同时多波束功率分配算法的优化准则。优化问题是非凸的,可以通过改进的梯度投影(MGP)方法解决。仿真结果表明,在最坏情况下跟踪均方根误差(RMSE)方面,该算法明显优于等功率分配。

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