Signal detection for communications in the underwater acoustic environment

被引:8
|
作者
Preisig, JC [1 ]
Johnson, MP [1 ]
机构
[1] Woods Hole Oceanog Inst, Dept Appl Ocean Phys & Engn, Woods Hole, MA 02543 USA
关键词
F-distribution; robust detection; underwater acoustic communication;
D O I
10.1109/48.972096
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Signal detection is a critical stage in the implementation of any effective communications system. The underwater acoustic environment, particularly in the presence of underwater vehicles, presents significant challenges to reliable detection without excessive false alarms. While there is often sufficient signal-to-noise ratio with respect to stationary broad-band background noise to permit reliable operation, the presence of strong event-like interference signals such as narrow-band signals and impulsive broad-band signals complicates the detection problem significantly. Frequency-hopped signals interleaved with quiescent bands are proposed as the basis of a robust detection system. These signals also make robust detection possible in a multi-access communications system. Two new detection algorithms that exploit the particular structure of these frequency-hopped signals are developed and their performance is analyzed. This analysis uses a modification of the doubly noncentral F-distribution that has not been used, previously for such analysis. This distribution makes possible the direct calculation of probabilities of detection and false-alarm under interference and signal scenarios that cannot be analyzed using the better known noncentral F-distribution. With this analysis, the two developed detectors are shown to offer superior performance to that of either the CFAR detector or the binary data sequence detector. Experimental data confirms the theoretically derived results.
引用
收藏
页码:572 / 585
页数:14
相关论文
共 50 条
  • [31] Joint Bayesian Channel Estimation and Data Detection for Underwater Acoustic Communications
    Liang, Yaokun
    Yu, Hua
    Xu, Lijun
    Zhao, Hao
    Ji, Fei
    Yan, Shefeng
    IEEE TRANSACTIONS ON COMMUNICATIONS, 2024, 72 (09) : 5868 - 5883
  • [32] Preamble Detection for Underwater Acoustic Communications based on Convolutional Neural Networks
    Jin, Huyong
    Li, Wei
    Wang, Xin
    Zhang, Yingen
    Yu, Shiqi
    Shi, Qingchuan
    2018 OCEANS - MTS/IEEE KOBE TECHNO-OCEANS (OTO), 2018,
  • [33] Detection of underwater transient acoustic signal under chaotic background
    Yang, De-Sen
    Xiao, Di
    Zhang, Lan-Yue
    Zhendong yu Chongji/Journal of Vibration and Shock, 2013, 32 (10): : 26 - 30
  • [34] APPLICATION OF WAVELET TRANSFORM IN LASER DETECTION OF UNDERWATER ACOUSTIC SIGNAL
    Zhang, Lie-Shan
    Zhang, Xiao-Lin
    Zou, Bin
    Tang, Wen-Yan
    2014 11TH INTERNATIONAL COMPUTER CONFERENCE ON WAVELET ACTIVE MEDIA TECHNOLOGY AND INFORMATION PROCESSING (ICCWAMTIP), 2014, : 110 - 113
  • [35] Multi-model detection and simulation of underwater acoustic signal
    Hu, ZJ
    Wang, CM
    Kong, DR
    Zhu, YP
    PROCEEDINGS OF THE 2004 INTERNATIONAL CONFERENCE ON MACHINE LEARNING AND CYBERNETICS, VOLS 1-7, 2004, : 523 - 526
  • [36] Coherent detection and simulation of the vibration characteristics of underwater acoustic signal
    Zhang Jun
    Wang Qing-E
    Qi Hong-Xin
    JOURNAL OF INFRARED AND MILLIMETER WAVES, 2016, 35 (04) : 449 - 453
  • [37] Narrowband Detection of Underwater Acoustic Signal Under Noise Uncertainties
    Gurugopinath, Sanjeev
    Anand, G. V.
    OCEANS 2015 - GENOVA, 2015,
  • [38] ONR program in underwater acoustic communications
    Curtin, TB
    Benson, RA
    SEA TECHNOLOGY, 1999, 40 (05) : 17 - +
  • [39] Generalized equalization for underwater acoustic communications
    Song, Aijun
    Badiey, Mohsen
    OCEANS 2005, VOLS 1-3, 2005, : 1522 - 1527
  • [40] Underwater Acoustic Communications Based on OTFS
    Feng, Xiao
    Esmaiel, Hamada
    Wang, Junfeng
    Qi, Jie
    Zhou, Mingzhang
    Qasem, Zeyad A. H.
    Sun, Haixin
    Gu, Yaping
    PROCEEDINGS OF 2020 IEEE 15TH INTERNATIONAL CONFERENCE ON SIGNAL PROCESSING (ICSP 2020), 2020, : 439 - 444