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首页> 外文期刊>EURASIP journal on advances in signal processing >Maximum Likelihood DOA Estimation of Multiple Wideband Sources in the Presence of Nonuniform Sensor Noise
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Maximum Likelihood DOA Estimation of Multiple Wideband Sources in the Presence of Nonuniform Sensor Noise

机译:存在非均匀传感器噪声时多个宽带源的最大似然DOA估计

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摘要

We investigate the maximum likelihood (ML) direction-of-arrival (DOA) estimation of multiple wideband sources in the presence of unknown nonuniform sensor noise. New closed-form expression for the direction estimation Cramér-Rao-Bound (CRB) has been derived. The performance of the conventional wideband uniform ML estimator under nonuniform noise has been studied. In order to mitigate the performance degradation caused by the nonuniformity of the noise, a new deterministic wideband nonuniform ML DOA estimator is derived and two associated processing algorithms are proposed. The first algorithm is based on an iterative procedure which stepwise concentrates the log-likelihood function with respect to the DOAs and the noise nuisance parameters, while the second is a noniterative algorithm that maximizes the derived approximately concentrated log-likelihood function. The performance of the proposed algorithms is tested through extensive computer simulations. Simulation results show the stepwise-concentrated ML algorithm (SC-ML) requires only a few iterations to converge and both the SC-ML and the approximately-concentrated ML algorithm (AC-ML) attain a solution close to the derived CRB at high signal-to-noise ratio.
机译:我们调查存在未知的不均匀传感器噪声的情况下多个宽带源的最大似然(ML)到达方向(DOA)估计。推导了方向估计Cramér-Rao-Bound(CRB)的新闭式表达式。研究了常规宽带均匀ML估计器在非均匀噪声下的性能。为了减轻由于噪声不均匀引起的性能下降,推导了一种新的确定性宽带不均匀ML DOA估计器,并提出了两种相关的处理算法。第一种算法基于迭代过程,该过程针对DOA和噪声滋扰参数逐步集中对数似然函数,而第二种算法是使导出的近似集中的对数似然函数最大化的非迭代算法。通过广泛的计算机仿真测试了所提出算法的性能。仿真结果表明,逐步集中式ML算法(SC-ML)仅需进行几次迭代即可收敛,并且SC-ML和近似集中式ML算法(AC-ML)都可以在高信号下获得接近于导出CRB的解决方案噪声比。

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