| Literature DB >> 26633408 |
Peng Jiang1,2, Jun Liu3,4, Feng Wu5,6.
Abstract
A node non-uniform deployment based on clustering algorithm for underwater sensor networks (UWSNs) is proposed in this study. This algorithm is proposed because optimizing network connectivity rate and network lifetime is difficult for the existing node non-uniform deployment algorithms under the premise of improving the network coverage rate for UWSNs. A high network connectivity rate is achieved by determining the heterogeneous communication ranges of nodes during node clustering. Moreover, the concept of aggregate contribution degree is defined, and the nodes with lower aggregate contribution degrees are used to substitute the dying nodes to decrease the total movement distance of nodes and prolong the network lifetime. Simulation results show that the proposed algorithm can achieve a better network coverage rate and network connectivity rate, as well as decrease the total movement distance of nodes and prolong the network lifetime.Entities:
Keywords: clustering; network lifetime; non-uniform deployment; underwater sensor networks
Year: 2015 PMID: 26633408 PMCID: PMC4721707 DOI: 10.3390/s151229786
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Network clustering model.
Figure 2Initial adjustment phase of NNDBC algorithm.
Parameter settings.
| Parameter Names | Parameter Values |
|---|---|
| Initial energy of node ( | 1000 J |
| Node energy threshold ( | 10 J |
| Network coverage rate threshold ( | 0.1 |
| Energy consumption per movement distance ( | 1.5 J/m |
| Size of information package ( | 1 Kbit |
| Power threshold ( | 0.05 w |
| Frequency of carrier acoustic signal ( | 25 kHz |
| Transmission speed of information package ( | 5 kbps |
| Energy spreading factor (λ) | 1.5 |
| Sensing range of node ( | 15 m |
Figure 3Comparison of network coverage rate during network operation.
Figure 4Comparison of network connectivity rate during network operation.
Figure 5Comparison of reconstruction node rate when number of nodes varies.
Figure 6Comparison of total movement distance of nodes during network operation.
Figure 7Comparison of network lifetime when number of nodes varies.
Figure 8Comparison of network lifetime when number of events varies.