Title :
QUO VADIS: QoS-aware underwater optimization framework for inter-vehicle communication using acoustic directional transducers
Author :
Chen, Baozhi ; Pompili, Dario
Author_Institution :
Dept. of Electr. & Comput. Eng., Rutgers Univ., New Brunswick, NJ, USA
Abstract :
Underwater acoustic communications consume a significant amount of energy due to the high transmission power (10-50 W) and long data packet transmission times (0.1-1 s). Mobile Autonomous Underwater Vehicles (AUVs) can conserve energy by waiting for the `best´ network topology configuration, e.g., a favorable alignment, before starting to communicate. Due to the frequency-selective underwater acoustic ambient noise and high medium power absorption - which increases exponentially with distance - a shorter distance between AUVs translates into a lower transmission loss and a higher available bandwidth. By leveraging the predictability of AUV trajectories, a novel solution is proposed that optimizes communications by delaying packet transmissions in order to wait for a favorable network topology (thus trading end-to-end delay for energy and/or throughput). In addition, the solution proposed - which is implemented and compared with other solutions using an emulator that integrates underwater acoustic WHOI Micro-Modems - exploits the frequency-dependent radiation pattern of underwater acoustic transducers to reduce communication energy consumption by adjusting the transducer directivity on-the-fly.
Keywords :
acoustic transducers; antenna radiation patterns; energy conservation; energy consumption; modems; quality of service; remotely operated vehicles; telecommunication control; telecommunication network topology; underwater acoustic communication; underwater vehicles; AUV trajectory; QUO VADIS; QoS-aware underwater optimization framework; acoustic directional transducers; communication energy consumption; conserve energy; emulator; end-to-end delay; frequency-dependent radiation pattern; frequency-selective underwater acoustic ambient noise; high medium power absorption; high transmission power; higher available bandwidth; inter-vehicle communication; long data packet transmission times; lower transmission loss; mobile autonomous underwater vehicles; network topology configuration; packet transmissions; predictability; transducer directivity; underwater acoustic WHOI micromodems; underwater acoustic communications; underwater acoustic transducers; Delay; Optimization; Trajectory; Transducers; Uncertainty; Underwater acoustics;
Conference_Titel :
Sensor, Mesh and Ad Hoc Communications and Networks (SECON), 2011 8th Annual IEEE Communications Society Conference on
Conference_Location :
Salt Lake City, UT
Print_ISBN :
978-1-4577-0094-1
DOI :
10.1109/SAHCN.2011.5984916