Underwater acoustic communication using Doppler-resilient orthogonal signal division multiplexing in a harbor environment

被引:12
作者
Ebihara, Tadashi [1 ]
Leus, Geert [2 ]
Ogasawara, Hanako [3 ]
机构
[1] Univ Tsukuba, Fac Engn Informat & Syst, Tsukuba, Ibaraki 3058573, Japan
[2] Delft Univ Technol, Fac Elect Engn Math & Comp Sci, NL-2628 CD Delft, Zuid Holland, Netherlands
[3] Natl Def Acad, Dept Earth & Ocean Sci, Yokosuka, Kanagawa 2398686, Japan
基金
日本学术振兴会;
关键词
Underwater acoustic communication; Delay spread; Doppler spread; CHANNEL; SPREAD; OFDM; NETWORKS; SYSTEMS;
D O I
10.1016/j.phycom.2018.01.001
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Underwater acoustic (UWA) channels are one of the historical mobile ultrawideband channels characterized by large delay and Doppler spreads, but reliable UWA communication remains challenging. Here we performed an initial demonstration of the Doppler-resilient orthogonal signal division multiplexing (D-OSDM) technique in an actual sea environment. D-OSDM spreads data symbols in both time and frequency with guardbands to exploit the time and frequency diversity of UWA channels. The experiment was performed in a challenging scenario: the transmitter was fixed on a floating pier, and the receiver was mounted on a moving remote-controlled boat. The harbor UWA channel had a delay spread of 50 ms and a Doppler spread of up to 4.5 Hz, in the presence of additive Gaussian noise, and the combination of two Rayleigh fading models (a two-path model without Doppler spread and a multi-path model with Doppler spread) was able to successfully model the actual environment. Our results also confirmed that a UWA communication link using D-OSDM will deliver excellent reliability even for a harbor UWA channel with a mobile receiver; D-OSDM achieves better communication quality compared to other communication schemes in both simulations and experiments. (C) 2018 Elsevier B.V. All rights reserved.
引用
收藏
页码:24 / 35
页数:12
相关论文
共 17 条
[1]  
[Anonymous], 2004, 8021103940R4 IEEE
[2]  
Caiti A., 2013, MARINE TECHNOLOGY SO, V38, P758
[3]   Effect of Doppler spread in OFDM-based UWB systems [J].
Capoglu, IR ;
Li, Y ;
Swami, A .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2005, 4 (05) :2559-2567
[4]   Simulation of an Underwater Acoustic Communication Channel Characterized by Wind-Generated Surface Waves and Bubbles [J].
Dol, Henry S. ;
Colin, Mathieu E. G. D. ;
Ainslie, Michael A. ;
van Walree, Paul A. ;
Janmaat, Jeroen .
IEEE JOURNAL OF OCEANIC ENGINEERING, 2013, 38 (04) :642-654
[5]   Doppler-Resilient Orthogonal Signal-Division Multiplexing for Underwater Acoustic Communication [J].
Ebihara, Tadashi ;
Leus, Geert .
IEEE JOURNAL OF OCEANIC ENGINEERING, 2016, 41 (02) :408-427
[6]   Underwater Acoustic Communication With an Orthogonal Signal Division Multiplexing Scheme in Doubly Spread Channels [J].
Ebihara, Tadashi ;
Mizutani, Koichi .
IEEE JOURNAL OF OCEANIC ENGINEERING, 2014, 39 (01) :47-58
[7]   Review nonlinearity in piezoelectric ceramics [J].
Hall, DA .
JOURNAL OF MATERIALS SCIENCE, 2001, 36 (19) :4575-4601
[8]  
Heidemann J, 2012, PHILOS T R SOC A, V370, P158, DOI [10.1098/rsta.2011.0214, 10.1007/978-3-642-31063-8_32]
[9]   Modeling the vehicle-to-vehicle propagation channel: A review [J].
Matolak, David W. .
RADIO SCIENCE, 2014, 49 (09) :721-736
[10]  
REDD J, 2000, LIGHTWAVE, V17, P110