Design of An All-Pass Phase Compensation Filter Based on Modified Genetic algorithm in FI-DAC

Wenhao Zhao, Shulin Tian, Hongliang Chen, Yindong Xiao, Qiong Wu, Ke Liu
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引用次数: 1

Abstract

Arbitrary waveform generator (AWG) can generate various excitation signals flexibly and is widely used in the automatic testing system (ATS). With the continuous evolution of electronic science and technology, higher demand for the AWG's sampling rate and output bandwidth has been put forward. Frequency-interleaved Digital-to-analog converter (FI-DAC) can improve those parameters quite effectively. However, the phase deviation between sub-band paths in the FI-DAC will cause a severe error in the overlapping band when the sub-band signals are combined. Therefore, we set up the error model for the FI-DAC overlapping band, analyzed the impact of the phase deviation of the output signal, and proposed a phase compensation method based on all-pass filter. The all-pass filter coefficient solution for phase compensation is a non-linear least square (NLS) problem and is usually solved using meta-heuristics. Yet the traditional genetic algorithm (GA) has a slow convergence speed, and the particle swarm optimization (PSO) tends to fall into local optimal when solving for high-order filter coefficient. Hence, we analyzed the parametric characteristics of all-pass filter and proposed a modified GA (MGA) to solve filter coefficients, compensate for the phase deviation between the sub-bands, and guarantee the quality of the final synthesized signals. The experiment result shows that, under the same number of iterations, the root mean square (RMS) error of the traditional GA is 0.1736 rad, PSO is 0.7725 rad, while the error of our MGA is only 0.0387rad, which is significantly better than the conventional method.
基于改进遗传算法的FI-DAC全通相位补偿滤波器设计
任意波形发生器(AWG)可以灵活地产生各种激励信号,广泛应用于自动测试系统(ATS)中。随着电子科学技术的不断发展,对AWG的采样率和输出带宽提出了更高的要求。频率交错数模转换器(FI-DAC)可以有效地改善这些参数。但是,FI-DAC中子带路径之间的相位偏差会在子带信号组合时造成重叠频带的严重误差。为此,我们建立了FI-DAC重叠带的误差模型,分析了输出信号相位偏差的影响,提出了一种基于全通滤波器的相位补偿方法。相位补偿的全通滤波器系数求解是一个非线性最小二乘问题,通常采用元启发式方法求解。但传统遗传算法(GA)收敛速度慢,粒子群算法在求解高阶滤波系数时容易陷入局部最优。因此,我们分析了全通滤波器的参数特性,提出了一种改进的遗传算法(MGA)来求解滤波器系数,补偿子带之间的相位偏差,保证最终合成信号的质量。实验结果表明,在相同迭代次数下,传统遗传算法的均方根误差(RMS)为0.1736 rad, PSO为0.7725 rad,而我们的MGA误差仅为0.0387rad,明显优于传统方法。
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