深水移动源距离估计的综合自适应匹配场处理。

IF 1.2 Q3 ACOUSTICS
Zhaokai Zhai, Fenghua Li, Feilong Zhu, Bo Zhang, Duo Zhai, Junjie Mao
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引用次数: 0

摘要

自适应匹配场处理(AMFP)已被证明是一种有效的深水源定位方法。然而,当目标处于运动状态时,需要大量的快照样本会导致协方差估计失真,从而降低AMFP的性能。提出了一种综合AMFP方法来补偿多快照信号的相位,提高了AMFP的性能。此外,还得到了目标速度的粗略估计。通过数值模拟和实验数据验证了该方法的有效性,结果表明,在9 km范围内,与传统AMFP相比,平均定位误差降低了1.45 km。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Synthetic adaptive matched field processing for moving source range estimation in deep water.

Adaptive matched field processing (AMFP) has proven effective for source localization in deep-water environments. However, when the target is in motion, the need for numerous snapshot samples can lead to distortion in covariance estimation, degrading AMFP performance. A synthetic AMFP method has been proposed to compensate for the phase of multi-snapshot signals, enhancing AMFP performance. Additionally, a rough estimation of target velocity is obtained. The efficacy of the method has been validated through numerical simulations and experimental data, with results showing that, within a 9 km range, the average localization error is reduced by 1.45 km compared to traditional AMFP.

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