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Optimization of array pattern for efficient control of adaptive nulling and side lobe level

机译:优化阵列模式以有效控制自适应零陷和旁瓣电平

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The array synthesis problem is modeled as a nonlinear optimization problem with the constraints of a reduced side lobe level (SLL). The goal is to impose deeper nulls in the interference direction of an uniform linear antenna arrays. This paper focuses on the array synthesis of adaptive nulling and side lobe level control which is a highly nonlinear problem fit for an evolutionary optimization algorithm. The limitations with the available optimization algorithms are mainly subjected to premature convergence and stagnation problem hence resulting in a non satisfactory array synthesis results. Hence, a new optimization technique known as Collective Social Behavior (CSB) is developed with concepts adopted from evolution of social behavior to address the current limitations to achieve a better result in array synthesis problem. The optimal set of weight coefficients for the linear antenna arrays is determined by the CSB algorithm by evaluating the objective function for the array synthesis problem. To establish the CSB algorithm as an efficient optimization tool for adaptive nulling applications, several numerical benchmark tests have been conducted. The simulation results reveal that the proposed CSB algorithm enhances the performance of array pattern synthesis with precise deeper nulls and suppressed side lobe levels.
机译:阵列综合问题被建模为具有减少的旁瓣电平(SLL)约束的非线性优化问题。目的是在均匀线性天线阵列的干扰方向上施加更深的零点。本文着重于自适应归零和旁瓣电平控制的阵列综合,这是一个高度非线性的问题,适合于进化优化算法。可用的优化算法的局限性主要受到过早的收敛和停滞问题的影响,因此导致不令人满意的阵列合成结果。因此,开发了一种称为集体社会行为(CSB)的新的优化技术,该概念从社会行为的演变中采用,以解决当前的局限性,从而在阵列综合问题中获得更好的结果。 CSB算法通过评估阵列综合问题的目标函数,确定线性天线阵列的最佳权重系数集。为了将CSB算法建立为自适应调零应用程序的有效优化工具,已进行了一些数字基准测试。仿真结果表明,所提出的CSB算法以更精确的更深零点和抑制的旁瓣电平增强了阵列模式合成的性能。

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