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Realizing stepped amplitude quantization of low sidelobe linear array using particle swarm optimization algorithm

机译:利用粒子群算法实现低旁瓣线性阵列的阶梯幅度量化

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Two approaches towards realizing stepped amplitude quantization of low sidelobe linear array based on particle swarm optimization (PSO) are presented. One approach is series-PSO algorithm consisting of constrained PSO algorithm coping with integer variables, corresponding with step widths, and PSO algorithm for quantized amplitude weights. The other method is PSO algorithm with the penalty function method using random approximation strategy for integer variables. Method two is better than method one in term of peak sidelobe level (PSLL) and half-power beam width (HP), but method one is more robust than method two. Simulation experiment shows the efficiency of two methods.
机译:提出了两种基于粒子群算法(PSO)的低旁瓣线性阵列步进幅度量化方法。一种方法是系列-PSO算法,它由对应于步长的整数变量组成的约束PSO算法和用于量化振幅权重的PSO算法组成。另一种方法是PSO算法和惩罚函数方法,对整数变量使用随机逼近策略。方法2在峰值旁瓣电平(PSLL)和半功率波束宽度(HP)方面比方法1更好,但是方法1比方法2更健壮。仿真实验表明了两种方法的有效性。

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