DocumentCode
1458860
Title
Spatial diversity equalization for MIMO ocean acoustic communication channels
Author
Song, Bong-Gee ; Ritcey, James A.
Author_Institution
Dept. of Electr. Eng., Washington Univ., Seattle, WA, USA
Volume
21
Issue
4
fYear
1996
fDate
10/1/1996 12:00:00 AM
Firstpage
505
Lastpage
512
Abstract
The available bandwidth of ocean acoustic channels is inherently narrow that impedes high-transmission rate and makes it difficult for multiple users to communicate simultaneously. To alleviate this problem, spatial diversity antennas are used to increase the date rate. In this paper, we employ the spatial diversity equalizers (SDE) to increase the effective channel bandwidth by minimizing the mean-square error (mse). Although joint equalizers have been used in digital telephone subscriber lines to suppress crosstalk, we apply the concept to ocean acoustic channels and show that multiuser communication is possible despite the narrow-channel bandwidth. In addition, we will show that the advantage of SDE is not because we use more taps, but because we collect the data carried through various ocean paths. By applying the saddle point integration method to multiinput multioutput (MIMO) channels, we compute the probability of error (PE) to show that a factor of 3-4 of channel reuse is possible
Keywords
MIMO systems; antennas; digital simulation; diversity reception; equalisers; error statistics; oceanographic techniques; probability; simulation; telecommunication channels; telecommunication computing; underwater sound; MIMO; bandwidth; channel reuse; date rate; digital telephone subscriber lines; joint equalizers; mean-square error; multiinput multioutput; multiple users; multiuser communication; narrow-channel bandwidth; ocean acoustic channels; ocean acoustic communication channels; ocean paths; probability of error; saddle point integration; spatial diversity antennas; spatial diversity equalization; Bandwidth; Communication channels; Crosstalk; Degradation; Equalizers; Impedance; Interchannel interference; MIMO; Oceans; Radiofrequency interference;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/48.544060
Filename
544060
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