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首页> 外文期刊>The Journal of the Acoustical Society of America >Source motion detection, estimation, and compensation for underwater acoustics inversion by wideband ambiguity lag-Doppler filtering
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Source motion detection, estimation, and compensation for underwater acoustics inversion by wideband ambiguity lag-Doppler filtering

机译:宽带模糊滞后多普勒滤波对水下声学反演的源运动检测,估计和补偿

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Acoustic channel properties in a shallow water environment with moving source and receiver are difficult to investigate. In fact, when the source-receiver relative position changes, the underwater environment causes multipath and Doppler scale changes on the transmitted signal over low-to-medium frequencies (300 Hz–20 kHz). This is the result of a combination of multiple paths propagation, source and receiver motions, as well as sea surface motion or water column fast changes. This paper investigates underwater acoustic channel properties in a shallow water (up to 150 m depth) and moving source-receiver conditions using extracted time-scale features of the propagation channel model for low-to-medium frequencies. An average impulse response of one transmission is estimated using the physical characteristics of propagation and the wideband ambiguity plane. Since a different Doppler scale should be considered for each propagating signal, a time-warping filtering method is proposed to estimate the channel time delay and Doppler scale attributes for each propagating path. The proposed method enables the estimation of motion-compensated impulse responses, where different Doppler scaling factors are considered for the different time delays. It was validated for channel profiles using real data from the BASE'07 experiment conducted by the North Atlantic Treaty Organization Undersea Research Center in the shallow water environment of the Malta Plateau, South Sicily. This paper provides a contribution to many field applications including passive ocean tomography with unknown natural sources position and movement. Another example is active ocean tomography where sources motion enables to rapidly cover one operational area for rapid environmental assessment and hydrophones may be drifting in order to avoid additional flow noise.
机译:在源和接收器移动的浅水环境中,难以研究声通道的特性。实际上,当源接收器的相对位置发生变化时,水下环境会在中低频率(300 Hz–20 kHz)上对发射信号造成多径和多普勒刻度变化。这是多种路径传播,源和接收器运动以及海面运动或水柱快速变化相结合的结果。本文使用提取的中低频率传播通道模型的时标特征,研究了浅水区(最大深度为150 m)和移动源接收器条件下的水下声通道特性。使用传播的物理特性和宽带歧义平面估计一次传输的平均脉冲响应。由于应为每个传播信号考虑不同的多普勒尺度,因此提出了一种时间扭曲滤波方法来估计每个传播路径的信道时间延迟和多普勒尺度属性。所提出的方法使得能够估计运动补偿的脉冲响应,其中针对不同的时间延迟考虑了不同的多普勒比例因子。使用北大​​西洋公约组织海底研究中心在南西西里岛马耳他浅水环境中进行的BASE'07实验的真实数据对通道剖面进行了验证。本文为许多现场应用做出了贡献,包括无源自然位置和运动的被动海洋层析成像。另一个例子是主动海洋层析成像,其中源运动可以迅速覆盖一个操作区域以进行快速环境评估,并且水听器可能会漂移,以避免额外的流动噪声。

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