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Statistical Analysis of the MUSIC Algorithm in the Presence of Modeling Errors, Taking Into Account the Resolution Probability

机译:考虑建模概率的MUSIC算法在存在建模误差的情况下的统计分析

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This paper considers the statistical performance of the MUSIC method under the condition that two closely spaced sources impinging on an array of sensors are effectively resolved, i.e., the spectrum exhibits two peaks in the neighborhood of the true directions-of-arrival (DOA). The MUSIC algorithm is known to have an infinite resolution power in theory. However, in the presence of modeling errors, sources can not be resolved with certainty, even if the array correlation matrix is perfectly known. The focus of this paper is to predict the bias and variance of the DOA estimates taking into account the possible resolution failure of MUSIC. This performance prediction, based on our recent mathematical investigation, is new to the best of our knowledge. A general mathematical framework to derive closed form expressions of the bias and variance versus the model mismatch, conditioned on a general statistical resolution test is proposed. In order to illustrate our mathematical approach, statistical tests with one and two conditions, respectively, are investigated. The accuracy of the performance prediction is illustrated in a simulation study. It is found that the proposed approach outperforms the “classical” technique, which ignores the possible resolution failure of the MUSIC algorithm. Therefore, our results provide better tools for determining the necessary antenna calibration accuracy to achieve some targeted specifications on the estimator performance.
机译:本文考虑了在两个紧密间隔的光源撞击到传感器阵列的情况下MUSIC方法的统计性能,即两个光谱在真实到达方向(DOA)附近均表现出两个峰值。理论上,MUSIC算法具有无限的分辨率。但是,在存在建模错误的情况下,即使阵列相关矩阵是众所周知的,也无法确定地解析源。本文的重点是在考虑MUSIC可能的分辨率失败的情况下预测DOA估计值的偏差和方差。根据我们最近的数学研究,这种性能预测是我们所知的最新知识。提出了一个通用的数学框架,以一般的统计分辨率测试为条件,得出偏差和方差与模型不匹配的闭合形式表达式。为了说明我们的数学方法,分别研究了一个条件和两个条件下的统计检验。仿真研究说明了性能预测的准确性。发现所提出的方法优于“经典”技术,后者忽略了MUSIC算法可能的解析失败。因此,我们的结果为确定必要的天线校准精度提供了更好的工具,以实现估计器性能的某些目标指标。

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