| Literature DB >> 29439439 |
Xiaomin Li1, Di Li2, Zhijie Dong3, Yage Hu4, Chengliang Liu5.
Abstract
In recent years, industrial wireless networks (IWNs) have been transformed by the introduction of mobile nodes, and they now offer increased extensibility, mobility, and flexibility. Nevertheless, mobile nodes pose efficiency and reliability challenges. Efficient node deployment and management of channel interference directly affect network system performance, particularly for key node placement in clustered wireless networks. This study analyzes this system model, considering both industrial properties of wireless networks and their mobility. Then, static and mobile node coverage problems are unified and simplified to target coverage problems. We propose a novel strategy for the deployment of clustered heads in grouped industrial mobile wireless networks (IMWNs) based on the improved maximal clique model and the iterative computation of new candidate cluster head positions. The maximal cliques are obtained via a double-layer Tabu search. Each cluster head updates its new position via an improved virtual force while moving with full coverage to find the minimal inter-cluster interference. Finally, we develop a simulation environment. The simulation results, based on a performance comparison, show the efficacy of the proposed strategies and their superiority over current approaches.Entities:
Keywords: clustered network; deployment; industrial wireless network; maximal clique; reliability
Year: 2018 PMID: 29439439 PMCID: PMC5856136 DOI: 10.3390/s18020545
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Discrete and continuous moving paths.
Figure 2The distributed parallel improved Tabu search algorithm.
Parameters values used in the simulation.
| Parameter | Value | Description |
|---|---|---|
| 50, 100, 150, 200 | Communication radius | |
| 50, 60, 70, 80, 90, 100 | Number of target points | |
| 0 | Virtual force threshold | |
| 100 Mb | Communication load of wireless node | |
| 500 Mb | Maximum allowable communication load | |
| 0.1 J/Mb | Coefficient of communication energy consumption | |
| 0.08 J/Mb | Coefficient of wireless channel energy consumption | |
| 20% | Data recommunication probability | |
| 10 Mb/s | Communication rate | |
| D | 10, 20, 30 | Moving step length |
| 100 | Number of iterations |
Figure 3The results of CHN in different methods.
Figure 4Location changing in different iteration with virtual force and motion.
Figure 5The results of NICIT in different methods.
Figure 6The maximal communication latency (MCL) and maximal energy consumption (MEC) in different methods.