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Performance Optimization of Digital Spectrum Analyzer With Gaussian Input Signal

机译:具有高斯输入信号的数字频谱分析仪的性能优化

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摘要

Analog to digital converters (ADC) and cascade integrator-comb (CIC) filters are the basic modules in a digital intermediate frequency (IF) spectrum analyzer. The optimal output signal-to-noise ratio (SNR) of the digital IF spectrum analyzer with the Gaussian input signal is considered in this letter. The idea is to strike a trade-off between the saturation error and granular error when quantizing the Gaussian input signal. This letter firstly derives a relationship among the maximum allowed input signal amplitude, input signal power, ADC quantization bits and optimal quantization SNR. Besides, an optimal clipping strategy for the CIC decimation filter with variable decimation rates is proposed. Both numerical and simulation results are presented to demonstrate that the proposed clipping method is able to achieve significant SNR gain compared with the traditional rounding or truncation method.
机译:模数转换器(ADC)和级联积分梳状(CIC)滤波器是数字中频(IF)频谱分析仪中的基本模块。在此字母中考虑了具有高斯输入信号的数字IF频谱分析仪的最佳输出信噪比(SNR)。想法是在量化高斯输入信号时在饱和度误差和颗粒度误差之间进行权衡。该字母首先得出最大允许输入信号幅度,输入信号功率,ADC量化位和最佳量化SNR之间的关系。此外,提出了具有可变抽取率的CIC抽取滤波器的最佳限幅策略。数值和仿真结果均表明,与传统的舍入或截断方法相比,所提出的削波方法能够实现显着的SNR增益。

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