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Single-Point Array Response Control: An Efficient Beampattern Synthesis Approach Based on the Maximum Magnitude Response Principle

机译:单点阵列响应控制:基于最大幅度响应原理的高效波束图案合成方法

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摘要

This article considers the beampattern synthesis problem, and a single-point array response control (SPARC) algorithm is presented to adjust the array response at an arbitrary direction. Based on the theoretical analysis, it is found that the adaptive array theory-based optimal weight vector is a linear combination of the signal steering vector and the interference steering vector multiplied by a complex factor, and that the complex factor determines the array response at the interference direction. Inspired by this observation, the SPARC algorithm is presented to achieve quiescent pattern control. In contrast to other array response control-based pattern synthesis techniques, the SPARC algorithm obtains a deterministic expression of the complex factor after maximizing the magnitude response at the main-beam direction, and the closed-form expression of the designed weight vector is devised. Because of different pattern constraints in focused and shaped beampatterns, two low-complexity pattern synthesis schemes are presented employing the SPARC algorithm in an iterative manner. Moreover, the parameter selection principle of the SPARC and its comparison with other pattern synthesis methods are discussed. Simulation results show the effectiveness of the SPARC algorithm and the efficiency of the beampattern synthesis schemes.
机译:本文考虑了波束模式合成问题,并提出了单点阵列响应控制(SPARC)算法以在任意方向上调整阵列响应。基于理论分析,发现基于自适应阵列理论的最优重量向量是信号转向载体和干涉转向向量的线性组合乘以复数,并且复数是确定阵列响应干涉方向。灵感来自该观察,提出了SPARC算法以实现静态图案控制。与基于其他阵列响应控制的模式合成技术相比,SPARC算法在最大化主光束方向上最大化幅度响应之后获得复杂因子的确定性表达,并且设计了设计的权重向量的闭合表达式。由于聚焦和形状的束图案中的不同模式约束,以迭代方式提出了两个低复杂性模式合成方案,采用SPARC算法。此外,讨论了SPARC的参数选择原理及其与其他模式合成方法的比较。仿真结果表明了SPARC算法的有效性及梁薄板合成方案的效率。

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