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首页> 外文期刊>IEEE Journal on Selected Areas in Communications >Blind beamforming on a randomly distributed sensor array system
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Blind beamforming on a randomly distributed sensor array system

机译:随机分布传感器阵列系统上的盲波束成形

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摘要

We consider a digital signal processing sensor array system, based on randomly distributed sensor nodes, for surveillance and source localization applications. In most array processing the sensor array geometry is fixed and known and the steering array vector/manifold information is used in beamformation. In this system, array calibration may be impractical due to unknown placement and orientation of the sensors with unknown frequency/spatial responses. This paper proposes a blind beamforming technique, using only the measured sensor data, to form either a sample data or a sample correlation matrix. The maximum power collection criterion is used to obtain array weights from the dominant eigenvector associated with the largest eigenvalue of a matrix eigenvalue problem. Theoretical justification of this approach uses a generalization of Szego's (1958) theory of the asymptotic distribution of eigenvalues of the Toeplitz form. An efficient blind beamforming time delay estimate of the dominant source is proposed. Source localization based on a least squares (LS) method for time delay estimation is also given. Results based on analysis, simulation, and measured acoustical sensor data show the effectiveness of this beamforming technique for signal enhancement and space-time filtering.
机译:我们考虑一种基于随机分布的传感器节点的数字信号处理传感器阵列系统,用于监视和源定位应用。在大多数阵列处理中,传感器阵列的几何形状是固定的并且是已知的,并且操纵阵列矢量/歧管信息用于波束形成。在该系统中,由于具有未知频率/空间响应的传感器的未知放置和方向,阵列校准可能不切实际。本文提出了一种盲波束成形技术,仅使用测得的传感器数据来形成样本数据或样本相关矩阵。最大功率收集标准用于从与矩阵特征值问题的最大特征值关联的主要特征向量中获得阵列权重。这种方法的理论论证使用了Szego(1958)关于Toeplitz形式的特征值的渐近分布的理论的推广。提出了一种有效的盲源波束成形时延估计方法。还给出了基于最小二乘(LS)方法进行时延估计的源定位。基于分析,模拟和测得的声学传感器数据的结果表明,这种波束成形技术对于信号增强和时空滤波有效。

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