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无线电近炸引信混沌码调相与线性调频复合调制波形设计与分析 被引量:9
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作者 陈齐乐 晏祺 +1 位作者 郝新红 杜涵宇 《兵工学报》 EI CAS CSCD 北大核心 2018年第11期2127-2136,共10页
为提高复杂战场环境下的无线电引信探测性能和抗干扰性能,设计一种混沌码调相与线性调频复合调制无线电引信发射波形。以模糊函数为工具,理论推导了复合调制波形的模糊函数,定量分析与计算了发射波形分辨性能及抗有源欺骗式干扰性能,并... 为提高复杂战场环境下的无线电引信探测性能和抗干扰性能,设计一种混沌码调相与线性调频复合调制无线电引信发射波形。以模糊函数为工具,理论推导了复合调制波形的模糊函数,定量分析与计算了发射波形分辨性能及抗有源欺骗式干扰性能,并进行了抗干扰性能的实验验证。仿真分析与测试结果表明,混沌码调相与线性调频复合调制信号波形具有更好的分辨性能以及更强的抗有源欺骗式干扰性能。 展开更多
关键词 无线电引信 复合调制波形 混沌码调相 线性调频 抗干扰性能 模糊函数 分辨力 抗截获性
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Radar emitter multi-label recognition based on residual network 被引量:10
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作者 Yu Hong-hai Yan Xiao-peng +2 位作者 Liu Shao-kun Li Ping hao xin-hong 《Defence Technology(防务技术)》 SCIE EI CAS CSCD 2022年第3期410-417,共8页
In low signal-to-noise ratio(SNR)environments,the traditional radar emitter recognition(RER)method struggles to recognize multiple radar emitter signals in parallel.This paper proposes a multi-label classification and... In low signal-to-noise ratio(SNR)environments,the traditional radar emitter recognition(RER)method struggles to recognize multiple radar emitter signals in parallel.This paper proposes a multi-label classification and recognition method for multiple radar-emitter modulation types based on a residual network.This method can quickly perform parallel classification and recognition of multi-modulation radar time-domain aliasing signals under low SNRs.First,we perform time-frequency analysis on the received signal to extract the normalized time-frequency image through the short-time Fourier transform(STFT).The time-frequency distribution image is then denoised using a deep normalized convolutional neural network(DNCNN).Secondly,the multi-label classification and recognition model for multi-modulation radar emitter time-domain aliasing signals is established,and learning the characteristics of radar signal time-frequency distribution image dataset to achieve the purpose of training model.Finally,time-frequency image is recognized and classified through the model,thus completing the automatic classification and recognition of the time-domain aliasing signal.Simulation results show that the proposed method can classify and recognize radar emitter signals of different modulation types in parallel under low SNRs. 展开更多
关键词 Radar emitter recognition Image processing PARALLEL Residual network MULTI-LABEL
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