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首页> 外文期刊>Modern Physics Letters, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Diagonal rejection-based minimum variance distortionless response for fiber underwater acoustic array
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Diagonal rejection-based minimum variance distortionless response for fiber underwater acoustic array

机译:基于对角线抑制的基于抑制的最小方差偏差响应光纤水下声学阵列

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摘要

The high mounting precision of the fiber underwater acoustic array leads to an array manifold without perturbation. Besides, the targets are either static or slowly moving in azimuth in underwater acoustic array signal processing. Therefore, the covariance matrix can be estimated accurately by prolonging the observation time. However, this processing is limited to poor bearing resolution due to small aperture, low SNR and strong interferences. In this paper, diagonal rejection (DR) technology for Minimum Variance Distortionless Response (MVDR) was developed to enhance the resolution performance. The core idea of DR is rejecting the main diagonal elements of the covariance matrix to improve the output signal to interference and noise ratio (SINR). The definition of SINR here implicitly assumes independence between the spatial filter and the received observations at which the SINR is measured. The power of noise converges on the diagonal line in the covariance matrix and then it is integrated into the output beams. With the diagonal noise rejected by a factor smaller than 1, the array weights of MVDR will concentrate on interference suppression, leading to a better resolution capability. The algorithm was theoretically proved with optimal rejecting coefficient derived under both infinite and finite snapshots scenarios. Numerical simulations were conducted with an example of a linear array with eight elements half-wavelength spaced. Both resolution and Direction-of-Arrival (DOA) performances of MVDR and DR-based MVDR (DRMVDR) were compared under different SNR and snapshot numbers. A conclusion can be drawn that with the covariance matrix accurately estimated, DRMVDR can provide a lower sidelobe output level and a better bearing resolution capacity than MVDR without harming the DOA performance.
机译:纤维水下声学阵列的高安装精度导致阵列歧管而没有扰动。此外,在水下声学阵列信号处理中,目标在方位角处静态或缓慢地移动。因此,通过延长观察时间可以准确地估计协方差矩阵。然而,由于小孔,低SNR和强烈的干扰,该处理仅限于轴承分辨率差。在本文中,开发了用于最小方差无失真响应(MVDR)的对角线抑制(DR)技术以增强分辨率性能。 DR的核心思想拒绝协方差矩阵的主要对角线元素,以改善输出信号与干扰和噪声比(SINR)。 SINR的定义本身隐含地假设空间滤波器和测量SINR的接收观察之间的独立性。噪声的功率会聚在协方差矩阵中的对角线上,然后集成到输出光束中。利用小于1的因子抑制的对角线噪声,MVDR的阵列权重将集中于干扰抑制,导致更好的分辨率能力。理论上,该算法具有在无限和有限快照方案下导出的最佳拒绝系数。用具有八个元件半波长间隔的线性阵列的示例进行数值模拟。在不同的SNR和快照号下比较MVDR和基于DR基于DR和基于DR的MVDR(DRMVDR)的分辨率和到达方式(DOA)性能。可以绘制结论,随着协方差矩阵精确估计,DRMVDR可以提供比MVDR更低的侧瓣输出电平和更好的承载能力,而不会损坏DOA性能。

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