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首页> 外文期刊>Sadhana: Academy Proceedings in Engineering Science >Nonstationary weak signal detection based on normalization stochastic resonance with varying parameters
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Nonstationary weak signal detection based on normalization stochastic resonance with varying parameters

机译:基于变参数归一化随机共振的非平稳弱信号检测

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摘要

The nonlinear stochastic resonance system possesses the ability of taking advantage of background noise to enhance the weak signal. It provides a new approach to detect the weak signal embedded with heavy noise. This study proposes a new varying parameter stochastic resonance employing the fourth-order Runge-Kutta numerical method as well as the normalized transformation of a bistable stochastic resonance system. The model performs well in the detection of a time-varying signal with background noise for denoising and signal recovery. We take the fitness coefficient and cross-correlation coefficient as the criteria and analyze the influence of different parameters. The simulating results indicate its availability, validity and that it generates a better performance than the traditional stochastic resonance. The method develops the area of time-varying signal detection with stochastic resonance and presents new strategy for detection and denoising of a time-varying signal. It can be expected to be widely used in the areas of aperiodic signal processing, radar communication, etc.
机译:非线性随机共振系统具有利用背景噪声增强弱信号的能力。它提供了一种新的方法来检测嵌入了重噪声的微弱信号。这项研究提出了一种新的可变参数随机共振,采用四阶Runge-Kutta数值方法以及双稳态随机共振系统的归一化变换。该模型在具有背景噪声的时变信号的检测中表现良好,用于降噪和信号恢复。我们以适应度系数和互相关系数为准则,分析不同参数的影响。仿真结果表明了其有效性,有效性,并且比传统的随机共振具有更好的性能。该方法开拓了具有随机共振的时变信号检测领域,为时变信号的检测和去噪提出了新的策略。可以预期它将广泛用于非周期性信号处理,雷达通信等领域。

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