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DOA Estimation of Desired Signals by Cyclic ESPRIT Based on Noise Subspace and Its Performance Improvement

机译:基于噪声子空间的循环ESPRIT信号对DOA估计及其性能改进

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Because of the rapid development of mobile communications and ITS (intelligent transport systems), the electromagnetic wave propagation environment is becoming complex, and there is an increasing demand for techniques to estimate the direction of arrival with high resolution and to reduce the effect of interference waves. Among these, Cyclic MUSIC and Cyclic ESPRIT, in which the direction of the arriving wave can be estimated selectively by utilizing the periodic stationary property of the arriving wave, are attracting attention. The authors are proposing Cyclic ESPRIT based on the noise subspace (NS Cyclic ESPRIT) in order to remedy the performance degradation produced by the fact that the correlation matrix of the array input used in Cyclic ESPRIT is not a Hermitian matrix. However, when the number of snapshots is finite in the estimation of arrival direction by Cyclic MUSIC or Cyclic ESPRIT, the interference wave component remaining in the correlation matrix has an adverse effect on the accuracy of direction-of-arrival estimation. Consequently, adaptive spatial smoothing processing and generalized eigenvalue decomposition are introduced into NS Cyclic ESPRIT in this study, aiming at reduction of the remaining interference component and at performance improvement in direction-of-arrival estimation. A computer simulation verifies that the performance in direction-of-arrival estimation in NS Cyclic ESPRIT is improved.
机译:由于移动通信和ITS(智能传输系统)的飞速发展,电磁波的传播环境变得越来越复杂,因此对以高分辨率估算到达方向并减少干扰波影响的技术的需求日益增长。 。其中,可以通过利用到达波的周期性平稳特性来选择性地估计到达波的方向的循环MUSIC和循环ESPRIT引起关注。作者提出基于噪声子空间(NS Cyclic ESPRIT)的循环ESPRIT,以纠正由于循环ESPRIT中使用的数组输入的相关矩阵不是Hermitian矩阵这一事实而导致的性能下降。然而,当通过循环MUSIC或循环ESPRIT估计到达方向的快照数量是有限的时,相关矩阵中剩余的干扰波分量对到达方向估计的精度产生不利影响。因此,本研究将自适应空间平滑处理和广义特征值分解引入NS循环ESPRIT中,旨在减少剩余干扰分量并提高到达方向估计的性能。计算机仿真验证了NS循环ESPRIT中到达方向估计的性能得到了改善。

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