ESPRIT condition in signal parameter estimation

M. H. El-Shafey
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引用次数: 2

Abstract

ESPRIT is known of high resolution in the general problem of signal parameter estimation. It can be applied to a wide variety of problems including accurate detection and estimation of sinusoids in noise, and estimation of signal direction-of-arrival. ESPRIT comprises the solution of two eigenvalue problems. The first is to obtain the eigen-decomposition of the signal correlation matrix. Based on the rotational invariance property of the eigenvectors of the matrix obtained in the first step, the second eigen-problem is formed from different rows of these eigenvectors. In this paper it is shown that the second eigen-problem is a generalized eigen-problem and the accuracy of ESPRIT estimates depends mainly on the condition of this generalized eigen-problem. It is shown that the problem condition depends on the sampling time of the correlation matrix. Numerical results illustrates the impact of the sampling time on the problem condition and consequently on the estimates accuracy.
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信号参数估计中的ESPRIT条件
在一般的信号参数估计问题中,ESPRIT具有很高的分辨率。它可以应用于各种各样的问题,包括噪声中正弦波的准确检测和估计,以及信号到达方向的估计。ESPRIT包括两个特征值问题的解。首先是得到信号相关矩阵的特征分解。基于第一步得到的矩阵特征向量的旋转不变性,将这些特征向量的不同行组成第二个特征问题。本文证明了第二特征问题是一个广义特征问题,ESPRIT估计的精度主要取决于该广义特征问题的条件。结果表明,问题条件取决于相关矩阵的采样时间。数值结果说明了采样时间对问题条件的影响,从而对估计精度的影响。
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