• MUSIC (MUltiple SIgnal Characterization) is a special spectral estimation method based on the eigen decomposition of the sample covariance matrix.

    多重信号分类(MUSIC)算法通过数据协方差矩阵进行分解获得信号空间估计方法

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  • A spectral estimator based on the rank-deficient sample covariance matrix was developed to improve the robustness of estimates of the rank-deficient robust Capon filter-bank (RCF) spectral estimator.

    为了解决秩亏RCFrobust Capon filter-bank)估计方法估计性能不稳健问题,提出一种基于奇异方差矩阵谱 估计 方法。

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  • This approach, unlike the conventional statistical techniques requiring for a covariance matrix of sample, is based on direct spatial processing of the array data.

    这种方法不同于传统统计方法需要计算样本方差矩阵逆矩阵,而是基于阵列数据一种直接计算方法。

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  • However, there have been few outcomes about the positive definitiveness of covariance matrix, most of which have been restricted to the Covariance-matrix of continuous sample.

    然而,目前国内外关协方差矩阵定性研究结果并不多,并且大多集中在连续样本协方差矩阵方面。

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  • However, there have been few outcomes about the positive definitiveness of covariance matrix, most of which have been restricted to the Covariance-matrix of continuous sample.

    然而,目前国内外关协方差矩阵定性研究结果并不多,并且大多集中在连续样本协方差矩阵方面。

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