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Modulation classification for QAM signals based on log-likelihood estimation in NCA environments

机译:NCA环境中基于对数似然估计的QAM信号的调制分类

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In this paper, we focus on the automatic modulation for unsynchronized quadrature amplitude modulation (QAM) signals in both time and frequency in the practical communication systems. In practice, the receiver has little prior knowledge about the transmitted signal such as the timing error and frequency offset, directly applying the log-likelihood estimation to recognize the QAM signal would cause the decline in the recognition performance. To resolve this challenging problem, the paper presents the improved recognition scheme: before recognition, apply the Gardner loop timing synchronization and differential approach to the received signal. Simulation result shows that the proposed scheme is robust to timing and frequency offset and when SNR≥12dB and the number of symbols N is more than 1000, the successful classification rate of the 16QAM signal reach 98%.
机译:在本文中,我们着眼于实际通信系统中时间和频率上非同步正交幅度调制(QAM)信号的自动调制。在实践中,接收机几乎没有关于发射信号的先验知识,例如定时误差和频率偏移,直接应用对数似然估计来识别QAM信号将导致识别性能下降。为了解决这个具有挑战性的问题,本文提出了一种改进的识别方案:在识别之前,将Gardner环路定时同步和差分方法应用于接收信号。仿真结果表明,该方案对定时和频率偏移具有鲁棒性,当SNR≥12dB且符号个数N大于1000时,该16QAM信号的成功分类率达到98%。

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