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Development of Underwater Acoustic Communication System with Positioning Capability

机译:具有定位能力的水下声通信系统的开发

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摘要

An acoustic positioning system is an essential element for navigating underwater vehicles and it usually achieves underwater positioning by acoustic communication between acoustic transceiver and transponder. We are developing an underwater acoustic transceiver which is capable of localizing a remote autonomous underwater vehicle as well as communicating data with it. It is based on quadrature phase-shift keying (QPSK) and adopts a linear equalizer to compensate the underwater acoustic channel distortion. For positioning of remote transponder, the transceiver has a two-dimensional acoustic sensor array which consists of four receiving and one transmitting transducers. It can estimate the transponder position by time of arrival and incident angles obtained from phase of cross spectrum. In order to obtain the spatial diversity gain of multiple receiving elements, equal gain combining (EGC) is applied to the equalized data and information bits are recovered after the combining. To evaluate its performance, we carried out an experiment in an anechoic water tank which has two main signal transmission paths of line-of-sight path and surface reflected path. Through the experiment, we compare two different positioning methods; one using time of arrival only and the other using incident angles estimated from phase of cross spectrum. We also analyze the effect of channel equalizer on positioning accuracy. The results demonstrate that positioning by the incident angle estimation is superior to the other when the channel equalizer is used and EGC greatly reduces bit-errorrate of data communication.
机译:声波定位系统是在水下航行器上航行的基本要素,通常通过声波收发器与应答器之间的声波通信实现水下定位。我们正在开发一种水下声学收发器,该收发器能够定位远程自主水下航行器并与之通信数据。它基于正交相移键控(QPSK),并采用线性均衡器来补偿水下声通道失真。为了定位远程应答器,收发器具有一个二维声传感器阵列,该阵列由四个接收和一个发射换能器组成。它可以通过到达时间和从交叉谱的相位获得的入射角来估计应答器的位置。为了获得多个接收元件的空间分集增益,对均衡后的数据应用等增益合并(EGC),并在合并后恢复信息位。为了评估其性能,我们在一个消音水箱中进行了一项实验,该水箱有两条主要的信号传输路径:视线路径和表面反射路径。通过实验,我们比较了两种不同的定位方法。一个仅使用到达时间,另一个使用根据交叉光谱的相位估计的入射角。我们还分析了信道均衡器对定位精度的影响。结果表明,当使用信道均衡器时,通过入射角估计进行的定位要优于其他方法,并且EGC可以大大降低数据通信的误码率。

著录项

  • 来源
  • 会议地点 Beijing(CN);Beijing(CN)
  • 作者单位

    Maritime Ocean Engineering Research Institute,KORDI,171 Jang-dong,Yuseong-gu,Daejeon,Republic of Korea;

    Maritime Ocean Engineering Research Institute,KORDI,171 Jang-dong,Yuseong-gu,Daejeon,Republic of Korea;

    Maritime Ocean Engineering Research Institute,KORDI,171 Jang-dong,Yuseong-gu,Daejeon,Republic of Korea;

    Maritime Ocean Engineering Research Institute,KORDI,171 Jang-dong,Yuseong-gu,Daejeon,Republic of Korea;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 声学;声学;
  • 关键词

  • 入库时间 2022-08-26 14:23:07

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