Parameters estimate of recurrent quantum stochastic filter for time variant frequency periodic signals

来源期刊:中南大学学报(英文版)2019年第12期

论文作者:周丽春 金福江 吴浩瀚 王波

文章页码:3328 - 3337

Key words:quantum stochastic filter (QSF); parameters estimation; least square (LS); short-time Fourier transform (STFT)

Abstract: Designing optimal time and spatial difference step size is the key technology for quantum-random filtering (QSF) to realize time-varying frequency periodic signal filtering. In this paper, it was proposed to use the short-time Fourier transform (STFT) to dynamically estimate the signal to noise ratio (SNR) and relative frequency of the input time-varying frequency periodic signal. Then the model of time and space difference step size and signal to noise ratio (SNR) and relative frequency of quantum random filter is established by least square method. Finally, the parameters of the quantum filter can be determined step by step by analyzing the characteristics of the actual signal. The simulation results of single-frequency signal and frequency time-varying signal show that the proposed method can quickly and accurately design the optimal filter parameters based on the characteristics of the input signal, and achieve significant filtering effects.

Cite this article as: ZHOU Li-chun, JIN Fu-jiang, WU Hao-han, WANG Bo. Parameters estimate of recurrent quantum stochastic filter for time variant frequency periodic signals [J]. Journal of Central South University, 2019, 26(12): 3328-3337. DOI: https://doi.org/10.1007/s11771-019-4256-7.

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