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Correction Method for Magnitude and Phase Variations in Acoustic Arrays Based on Focused Beamforming

机译:基于聚焦波束形成的声学阵列幅度和相变的校正方法

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摘要

The inconsistency in the magnitude and phase variations among the receiving array elements in multibeam soundings can seriously affect the beam pattern characteristics, which reduces the array gain, increases the sidelobe level, and deteriorates the direction-of-arrival (DOA) estimation. The accuracy of the beamforming result may be improved by correcting for magnitude and phase variations among the array elements. Therefore, a novel estimation and correction method based on near-field focused beamforming is proposed to overcome deficiencies of the conventional methods. The magnitude and phase variation model and the corresponding influence on the direction-finding accuracy are analyzed. The near-field focused beamforming model is established for multielement systems, and the root-mean-square error (RMSE) method is used to determine the ideal-source incident angle for correction. We construct the receiving signal covariance matrix in the frequency domain and further estimate the magnitude and phase variations in each array element. The performance and effectiveness of the proposed method are verified by simulations and small anechoic tank experiments. The proposed method requires the employment of a rotation platform that provides necessary rotation information and, thus, can accurately and effectively estimate and correct for variations in the magnitude and phase response of elements in the receiving array. The experimental results show that the sidelobe level can be reduced by approximately 3 dB after the array is corrected, and the angle deviation is reduced by approximately 1.0°.
机译:多次辐射中的接收阵列元素之间的幅度和相位变化的不一致可以严重影响减少阵列增益的波束图案特性,增加了侧链电平,并劣化到达方向(DOA)估计。可以通过校正阵列元件之间的幅度和相位变化来提高波束形成结果的精度。因此,提出了一种基于近场聚焦波束形成的新颖估计和校正方法来克服传统方法的缺陷。分析了大小和相位变化模型和对方向探测精度的相应影响。近场聚焦波束成形模型是为多元首系统建立的,并且使用根均方误差(RMSE)方法来确定校正的理想源入射角。我们在频域中构建接收信号协方差矩阵,并进一步估计每个阵列元件中的幅度和相位变化。通过模拟和小型化学罐实验验证了所提出的方法的性能和有效性。所提出的方法需要采用提供必要的旋转信息的旋转平台,从而可以准确且有效地估计和校正接收阵列中元件的幅度和相位响应的变化。实验结果表明,在校正阵列之后,侧链水平可以减小大约3dB,并且角度偏差减小约1.0°。

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