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Real-Time Recognition and Parameters Estimation of Linear Frequency Modulation Microwave Signal Based on Reservoir Computing

机译:基于储层计算的线性频率调制微波信号的实时识别与参数估计

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Real-time waveform recognition and parameter evaluation for linear frequency modulated (LFM) pulse waveform is crucially important while challenging in microwave detection systems. To address this issue, in this work, we proposed a new artificial intelligence enabled classification method based on reservoir computing (RC). A sampled sequence, generated by random concatenation of LFM signals with different chirp rates and initial frequencies, is used to training the designed reservoir with 200 nodes. The testing result shows that the RC can recognize individual LFM signals in the sequence, and estimate the instantaneous frequency of an LFM signal within the sequence. Compared to conventional computing methods for instantaneous frequency identification such as Hilbert transform or short-time Fourier transform, RC-based approach features faster speed and great potential for hardware implementation using photonic devices.
机译:线性频率调制(LFM)脉冲波形的实时波形识别和参数评估在微波检测系统中挑战,这是至关重要的。为了解决这个问题,在这项工作中,我们提出了一种基于储层计算(RC)的新的人工智能的分类方法。通过具有不同啁啾速率和初始频率的LFM信号的随机连接产生的采样序列,用于训练设计的储层200节点。测试结果表明,RC可以在序列中识别单个LFM信号,并估计序列内的LFM信号的瞬时频率。与诸如Hilbert变换或短时傅里叶变换的瞬时频率识别的传统计算方法相比,基于RC的方法使用光子器件具有更快的速度和硬件实现的巨大潜力。

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