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A new Blind Source Separation algorithm based on non-orthogonal joint diagonalization of second-order statistics under lower SNR

机译:低信噪比下基于二阶统计量非正交联合对角化的盲源分离新算法

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To solve the problem of Blind Source Separation (BSS) of the communication signals without knowing the source number, we propose a new algorithm based on the second-order statistics. By jointly diagonalizing the time delay correlation matrix of the observed signals and using the improved new non-orthogonal joint diagonalization (NOJD), a better solution of BSS under lower SNR can be achieved. The simulation result shows that the proposed algorithm can successfully separate communication signals with SNR as low as 10dB under conditions such as the source number is unknown or dynamically changing, and in the over-determined mode regardless of the signals' modulation methods. We use Signal to Interference Ratio (SIR), Crosstalk Error(CTE) and Correlation Coefficient as the performance indexes to prove the superiority of the proposed algorithm over the classical Second-Order Blind Identification(SOBI).
机译:为了解决通信信号盲源分离(BSS)而又不知道源编号的问题,提出了一种基于二阶统计量的新算法。通过联合对角化观测信号的时延相关矩阵并使用改进的新型非正交联合对角化(NOJD),可以在较低SNR下实现BSS的更好解决方案。仿真结果表明,该算法可以在信源数未知或动态变化的情况下,无论信号的调制方式如何,都可以在超限模式下成功分离出信噪比低至10dB的通信信号。我们以信号干扰比(SIR),串扰误差(CTE)和相关系数为性能指标,证明了该算法优于经典的二阶盲识别(SOBI)。

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