A Nonisovelocity Geometry-Based Underwater Acoustic Channel Model

被引:19
作者
Naderi, Meisam [1 ]
Zajic, Alenka G. [2 ]
Patzold, Matthias [1 ]
机构
[1] Univ Agder, Fac Engn & Sci, N-4879 Grimstad, Norway
[2] Georgia Inst Technol, Sch Elect & Comp Engn, Atlanta, GA 30332 USA
关键词
Shallow underwater acoustic channels; non-isovelocity condition; vehicle-to-vehicle communications; power delay profile; temporal autocorrelation function; frequency correlation function; SIMULATION;
D O I
10.1109/TVT.2017.2778261
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
This paper proposes a new geometry-based shallow underwater acoustic (UWA) channel model allowing for nonisovelocity ocean conditions. The fact that the isovelocity assumption does not hold in many real-world scenarios motivates the need for developing channel models for nonisovelocity UWA propagation environments. Starting from a geometrical model, we develop a stochastic channel model for a single- input single- output (SISO) vehicle-to-vehicle UWA channel assuming that the ocean surface and bottom are rough and that the speed of sound varies with depth. The effect of the nonisovelocity condition has been assessed regarding its influence on the temporal autocorrelation function, the frequency correlation function (FCF), and the power delay profile of the UWA channel model. The UWA channel model has also been validated by matching its FCF as well as the therefrom derived main characteristic quantities, such as the average delay, delay spread, and coherence bandwidth againstmeasurement data. The proposed UWA channelmodel is very useful for the design and performance analysis of UWA communication systems under realistic propagation conditions.
引用
收藏
页码:2864 / 2879
页数:16
相关论文
共 35 条
[11]  
Etter PC, 2009, OCEANS-IEEE, P1
[12]   Moment-method estimation of the Ricean K-factor [J].
Greenstein, LJ ;
Michelson, DG ;
Erceg, V .
IEEE COMMUNICATIONS LETTERS, 1999, 3 (06) :175-176
[13]  
Hovem JM, 2013, MODELING AND MEASUREMENT METHODS FOR ACOUSTIC WAVES AND FOR ACOUSTIC MICRODEVICES, P573
[14]  
Jeffrey A., 2007, Table of integrals, series, and products
[15]   Measurements and Modeling of Effects of Out-of-Plane Reverberation on the Power Delay Profile for Underwater Acoustic Channels [J].
Jenserud, Trond ;
Ivansson, Sven .
IEEE JOURNAL OF OCEANIC ENGINEERING, 2015, 40 (04) :807-821
[16]   Doubly Selective Underwater Acoustic Channel Model for a Moving Transmitter/Receiver [J].
Liu, Chunshan ;
Zakharov, Yuriy V. ;
Chen, Teyan .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2012, 61 (03) :938-950
[17]  
Medwin H., 1997, FUNDAMENTALS ACOUSTI
[18]   A Geometry-Based Underwater Acoustic Channel Model Allowing for Sloped Ocean Bottom Conditions [J].
Naderi, Meisam ;
Patzold, Matthias ;
Hicheri, Rym ;
Youssef, Neji .
IEEE TRANSACTIONS ON WIRELESS COMMUNICATIONS, 2017, 16 (04) :2394-2408
[19]  
Naderi M, 2014, 2014 IEEE FIFTH INTERNATIONAL CONFERENCE ON COMMUNICATIONS AND ELECTRONICS (ICCE), P112, DOI 10.1109/CCE.2014.6916689
[20]   Validation of Replay-Based Underwater Acoustic Communication Channel Simulation [J].
Otnes, Roald ;
van Walree, Paul A. ;
Jenserud, Trond .
IEEE JOURNAL OF OCEANIC ENGINEERING, 2013, 38 (04) :689-700