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A new method of spatial-spectrum detection based on noise suppression in signal subspace

机译:一种新的信号子空间噪声抑制的空间频谱检测方法

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In this paper, a new method to overcome the poor spatial-spectrum detective performance of Minimum Variance Distortionless Response (MVDR) is proposed for weak broadband signal. The new approach, called EBMVDR in this paper, is based on noise suppression in signal subspace. Firstly, Eigen decomposition is used in covariance matrix of the received data vector in frequency domain, and then estimate noise power using the pre-estimated signal dimension. Next, the covariance matrix is reconstructed by suppressing noise in the signal subspace. Finally, the weight vector can be got for the new method. At the same time, array gain of EBMVDR is deduced. Theory analysis and statistical simulation results show that: when the noise is white, the lowest detection signal-noise ratio (SNR) performance improves 6dB compared to the conventional MVDR method. Moreover, the new method has good robustness and stable array gain within the whole bandwidth.
机译:在本文中,提出了一种克服最小方差失真响应(MVDR)的不良空间频谱检测性能的新方法,以实现弱宽带信号。在本文中称为EBMVDR的新方法,基于信号子空间中的噪声抑制。首先,在频域中接收的数据矢量的协方差矩阵中使用特征分解,然后使用预估计的信号维度来估计噪声功率。接下来,通过抑制信号子空间中的噪声来重建协方差矩阵。最后,可以获得重量向量的新方法。同时,推导出EBMVDR的阵列增益。理论分析和统计仿真结果表明:当噪声是白色的时,与传统的MVDR方法相比,最低检测信噪比(SNR)性能提高了6dB。此外,新方法在整个带宽内具有良好的鲁棒性和稳定的阵列增益。

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