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基于高阶累积量和循环谱的信号调制方式混合识别算法
引用本文:赵雄文,郭春霞,李景春.基于高阶累积量和循环谱的信号调制方式混合识别算法[J].电子与信息学报,2016,38(3):674-680.
作者姓名:赵雄文  郭春霞  李景春
作者单位:1.(华北电力大学电气与电子工程学院 北京 102206) ②(国家无线电监测中心 北京 100037)
基金项目:国家自然科学基金(61372051)
摘    要:为了识别当前通信系统所采用的主要调制方式,该文结合高阶累积量和循环谱的特点,采用混合识别算法,同时应用智能决策算法(神经网络)对信号进行识别。该算法基于四阶和六阶高阶累积量构造出一个新的特征参数,将数字调制信号分为{BPSK, 2ASK}, {QPSK}, {2FSK, 4FSK}, {MSK}和{16QAM, 64QAM}5类。然后利用高阶累积量的其它特征参数以及循环谱特征对{OFDM}, {16QAM, 64QAM}, {2ASK, BPSK}及{2FSK, 4FSK}进行识别。为便于工程实现,该文采用半实物仿真以及LabVIEW和MATLAB混合编程来验证算法。仿真结果证明,该算法能够在较低信噪比下实现对{OFDM, BPSK, QPSK, 2ASK, 2FSK, 4FSK, MSK, 16QAM, 64QAM}等多种信号的分类,在信噪比高于 5 dB时,调制方式识别率可达94%以上,由此证明了该方法的有效性。

关 键 词:调制识别    高阶累积量    循环谱    神经网络
收稿时间:2015-06-18

Mixed Recognition Algorithm for Signal Modulation Schemes by High-order Cumulants and Cyclic Spectrum
ZHAO Xiongwen,GUO Chunxia,LI Jingchun.Mixed Recognition Algorithm for Signal Modulation Schemes by High-order Cumulants and Cyclic Spectrum[J].Journal of Electronics & Information Technology,2016,38(3):674-680.
Authors:ZHAO Xiongwen  GUO Chunxia  LI Jingchun
Affiliation:1.(School of Electrical and Electronic Engineering, North China Electric Power University, Beijing 102206, China)2.(The State Radio Monitoring Center, Beijing 100037, China)
Abstract:To recognize the major modulation schemes which are applied to concurrent communication systems, a joint method based on the high-order cumulants and cyclic spectrum with intelligent decision algorithm (neural network) is proposed to recognize the modulation schemes for digital signals. Firstly, a new featured parameter is extracted from the four-order and six-order cumulants of the digital signals to identify the modulation schemes of {BPSK, 2ASK}, {QPSK}, {2FSK, 4FSK}, {MSK}, and {16QAM, 64QAM}, then {OFDM}, {16QAM, 64QAM}, {2ASK, BPSK}, and {2FSK, 4FSK} are classified by the other featured parameters of the joint high-order cumulants and cyclic spectrum algorithms. In order to facilitate the engineering implementation, the semi-physical simulation and mixed programming of LabVIEW and MATLAB are used to validate the proposed algorithms. Simulation results show that the algorithms can recognize modulations {OFDM, BPSK, QPSK, 2ASK, 2FSK, 4FSK, MSK, 16QAM, 64QAM} with small Signal-to-Noise Ratio (SNR). The average recognition rate is more than 94% with SNR greater or equal than 5 dB, which validates the effectiveness of the proposed algorithms.
Keywords:
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