Software Demodulation of Weak Radio Signals using Convolutional Neural Network

Mykola Kozlenko, Ihor Lazarovych, Valerii Tkachuk, V. Vialkova
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引用次数: 8

Abstract

In this paper we proposed the use of JT65A radio communication protocol for data exchange in wide-area monitoring systems in electric power systems. We investigated the software demodulation of the multiple frequency shift keying weak signals transmitted with JT65A communication protocol using deep convolutional neural network. We presented the demodulation performance in form of symbol and bit error rates. We focused on the interference immunity of the protocol over an additive white Gaussian noise with average signal-to-noise ratios in the range from −30 dB to 0 dB, which was obtained for the first time. We proved that the interference immunity is about 1.5 dB less than the theoretical limit of non-coherent demodulation of orthogonal MFSK signals.
基于卷积神经网络的弱无线电信号软件解调
本文提出了在电力系统广域监控系统中使用JT65A无线通信协议进行数据交换。研究了利用深度卷积神经网络对JT65A通信协议传输的多频移键控微弱信号进行软件解调。我们以码元误码率和误码率的形式给出了解调性能。我们重点研究了该协议对加性高斯白噪声的抗干扰性,平均信噪比在−30 dB到0 dB之间,这是首次获得的。证明了正交MFSK信号非相干解调的抗干扰性比理论极限低1.5 dB左右。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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