DocumentCode
2597166
Title
Acoustic channel equalization results for the ASIMOV high-speed coherent data link
Author
Gomes, João ; Barroso, Victor
Author_Institution
Inst. de Sistemas e Robotica, Inst. Superior Tecnico, Lisbon, Portugal
Volume
2
fYear
2000
fDate
2000
Firstpage
1437
Abstract
Equalization results are provided for an underwater acoustic coherent communication system operating at 30 kbps in a vertical channel. This is one of two data links that are used in project ASIMOV to convey data between an autonomous underwater vehicle and an autonomous surface craft. The two vehicles cooperate to remain vertically positioned while executing missions at sea, thereby establishing a communication channel where acoustic transmission at high data rates is possible. The receiver structure and algorithms must be kept relatively simple to enable real-time operation, but tolerance to moderate intersymbol interference and channel fluctuations is required. Experimental results are presented for timing and carrier recovery, as well as channel equalization using several reference-driven and blind algorithms. Blind equalization algorithms are unsuitable for more complex ocean channels, but under these favorable transmission conditions the performance degradation relative to their reference-driven counterparts is quite small. Channel characterization confirms that, although intersymbol interference has a short time span and may easily be compensated, error rates remain relatively high as a result of strong noise contamination in the received signal
Keywords
acoustic receivers; blind equalisers; intersymbol interference; remotely operated vehicles; synchronisation; underwater acoustic communication; underwater vehicles; ASIMOV high-speed coherent data link; acoustic channel equalization; autonomous surface craft; autonomous underwater vehicle; blind algorithms; blind equalization; carrier recovery; channel fluctuations; error rates; intersymbol interference; noise contamination; performance degradation; receiver structure; reference-driven algorithm; timing recovery; underwater acoustic coherent communication system; vertical channel; Blind equalizers; Communication channels; Fluctuations; Intersymbol interference; Oceans; Remotely operated vehicles; Sea surface; Timing; Underwater acoustics; Underwater vehicles;
fLanguage
English
Publisher
ieee
Conference_Titel
OCEANS 2000 MTS/IEEE Conference and Exhibition
Conference_Location
Providence, RI
Print_ISBN
0-7803-6551-8
Type
conf
DOI
10.1109/OCEANS.2000.881806
Filename
881806
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