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Finite sensor selection algorithm in distributed MIMO radar for joint target tracking and detection

机译:接头目标跟踪和检测分布式MIMO雷达有限传感器选择算法

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摘要

Due to the requirement of anti-interception and the limitation of processing capability of the fusion center, the subarray selection is very important for the distributed multiple-input multiple-output (MIMO) radar system, especially in the hostile environment. In such conditions, an efficient subarray selection strategy is proposed for MIMO radar performing tasks of target tracking and detection. The goal of the proposed strategy is to minimize the worst-case predicted posterior Cramer-Rao lower bound (PCRLB) while maximizing the detection probability for a certain region. It is shown that the subarray selection problem is NP-hard, and a modified particle swarm optimization (MPSO) algorithm is developed as the solution strategy. A large number of simulations verify that the MPSO can provide close performance to the exhaustive search (ES) algorithm. Furthermore, the MPSO has the advantages of simpler structure and lower computational complexity than the multi-start local search algorithm.
机译:由于抗拦截的要求和融合中心的处理能力的限制,子阵列选择对于分布式多输入多输出(MIMO)雷达系统非常重要,尤其是在敌对环境中。在这种情况下,提出了一种有效的子阵列选择策略,用于执行目标跟踪和检测任务的MIMO雷达。拟议策略的目标是最小化最坏情况预测的后克拉姆 - RAO下限(PCRLB),同时最大化某个区域的检测概率。结果表明,子阵列选择问题是NP-Hard,并且改进的粒子群优化(MPSO)算法被开发为解决方案策略。大量模拟验证了MPSO是否可以为穷举搜索(ES)算法提供密切性能。此外,MPSO具有比多启动本地搜索算法更简单的结构和较低的计算复杂性的优点。

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