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A weak signal detection method based on adaptive parameter-induced tri-stable stochastic resonance

机译:一种基于自适应参数诱导的三稳态随机共振的弱信号检测方法

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摘要

Aiming at detecting the weak signal in a strong noise background, an enhanced weak signal detection method based on adaptive parameter-induced tri-stable stochastic resonance is proposed. Firstly, because the system can switch among the monostable, bistable and tri-stable state, the potential function characteristic of tri-stable systems is studied by analyzing the potential function curves with different system parameters. And the dynamic characteristics of system parameters on the depth of the potential well is analyzed. The ranges of R and the system parameters are determined, which is essential for ensuring the system is tri-stable state. Secondly, the range of R is used as the constraint condition and the average output signal-to-noise ratio is used as the fitness function of the adaptive algorithm. The system parameters a, b, c are optimized by the differential evolution particle swarm optimization (DEPSO) method to obtain the best output effect. Finally, the proposed adaptive parameter-induced tri-stable stochastic resonance method is adopted to detect the mixed multiple high-frequency weak signal. The detection results are compared with that of adaptive bistable stochastic resonance. At the meanwhile, the method is also applied to detect the fault signal of single crystal furnace. Both the simulation analysis and experiment results show that the proposed method can effectively improve the output signal-to-noise ratio and detect multi-frequency weak signal in the strong noise background.
机译:旨在检测强噪声背景中的弱信号,提出了一种基于自适应参数诱导的三稳定随机谐振的增强弱信号检测方法。首先,由于系统可以在单稳态,双稳态和三稳态之间切换,所以通过分析具有不同系统参数的潜在函数曲线来研究三稳态系统的电位功能。分析了系统参数的动态特性,在潜在井的深度上进行了分析。确定R和系统参数的范围,这对于确保系统是必不可少的。其次,将R的范围用作约束条件,并且平均输出信噪比用作自适应算法的适应性函数。系统参数A,B,C由差分演进粒子群优化(DEPSO)方法进行优化,以获得最佳输出效果。最后,采用所提出的自适应参数诱导的三稳定随机共振方法检测混合多频弱信号。将检测结果与自适应双稳态随机共振进行比较。同时,还应用该方法来检测单晶炉的故障信号。仿真分析和实验结果表明,该方法可以有效地提高输出信噪比并检测强噪声背景中的多频弱信号。

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