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A non-data-aided algorithm based on ML for OFDM synchronization

机译:基于ML的非数据辅助算法,用于OFDM同步

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Orthogonal frequency division multiplexing (OFDM) is more sensitive to symbol timing offset (STO) and carrier frequency offset (CFO) than single-carrier signals, which requires more accurate synchronization algorithms. In this paper, the traditional ML synchronization algorithm is improved by accumulating multiple OFDM symbols, and joint estimation of symbol timing offset and carrier frequency offset is accomplished without data aiding. The simulation illustrates that the improved ML algorithm has a higher accuracy for STO estimation and a lower MSE for CFO estimation.
机译:正交频分复用(OFDM)对符号定时偏移(STO)和载波频率偏移(CFO)比单载波信号更敏感,这需要更准确的同步算法。在本文中,通过累积多个OFDM符号来提高传统的ML同步算法,并且在没有数据控矛的情况下完成符号定时偏移和载波频率偏移的联合估计。仿真说明了改进的ML算法具有更高的STO估计的精度和用于CFO估计的较低的MSE。

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