Title :
The Elimination of Spatial-Temporal Uncertainty in Underwater Sensor Networks
Author :
Chih-Cheng Hsu ; Ming-Shing Kuo ; Cheng-Fu Chou ; Lin, Kate Ching-Ju
Author_Institution :
Dept. of Comput. Sci. & Inf. Eng., Nat. Taiwan Univ., Taipei, Taiwan
Abstract :
Since data in underwater sensor networks (UWSNs) is transmitted by acoustic signals, the characteristics of a UWSN are different from those of a terrestrial sensor network. Specifically, due to the high propagation delay of acoustic signals in UWSNs, referred as spatial-temporal uncertainty, current terrestrial MAC schemes do not work well in UWSNs. Hence, we consider spatial-temporal uncertainty in the design of an energy-efficient TDMA-based MAC protocol for UWSNs. We first translate the TDMA-based scheduling problem in UWSNs into a special vertex-coloring problem in the context of a spatial-temporal conflict graph (ST-CG) that describes explicitly the conflict delays among transmission links. With the help of the ST-CG, we propose two novel heuristic approaches: 1) the traffic-based one-step trial approach (TOTA) to solve the coloring problem in a centralized fashion; and for scalability, 2) the distributed traffic-based one-step trial approach (DTOTA) to assign the data schedule for tree-based routing structures in a distributed manner. In addition, a mixed integer linear programming (MILP) model is derived to obtain a theoretical bound for the TDMA-based scheduling problem in UWSNs. Finally, a comprehensive performance study is presented, showing that both TOTA and DTOTA guarantee collision-free transmission. They thus outperform existing MAC schemes such as S-MAC, ECDiG, and T-Lohi in terms of network throughput and energy consumption.
Keywords :
access protocols; graph colouring; integer programming; linear programming; time division multiple access; trees (mathematics); underwater acoustic communication; wireless sensor networks; DTOTA; MILP model; ST-CG; TDMA-based scheduling problem; TOTA; UWSN; acoustic signals; conflict delays; distributed traffic-based one-step trial approach; energy-efficient TDMA-based MAC protocol; high propagation delay; mixed integer linear programming model; spatial-temporal conflict graph; spatial-temporal uncertainty; special vertex-coloring problem; terrestrial MAC schemes; terrestrial sensor network; traffic-based one-step trial approach; tree-based routing structures; underwater sensor networks; Acoustics; Delay; Propagation delay; Routing; Schedules; Topology; Uncertainty; MAC schedule; TDMA; spatial-temporal uncertainty; underwater sensor networks (UWSNs);
Journal_Title :
Networking, IEEE/ACM Transactions on
DOI :
10.1109/TNET.2012.2220155