Abdulrab Hakim, Hussin Fawnizu Azmadi, Ismail Idris, Assad Maher, Awang Azlan, Shutari Hussein, Arun Devan
School of Elecetrical Engineering & Artificial Intelligence Xiamen University Malaysia, Jalan Sunsuria, Bandar Sunsuria, 43900 Sepang, Selangor, Malaysia.
Department of Elecetrical & Electronics Engineering Universiti Teknologi PETRONAS, Seri Iskandar, 31750, Perak, Malaysia.
Heliyon. 2024 Mar 27;10(7):e28719. doi: 10.1016/j.heliyon.2024.e28719. eCollection 2024 Apr 15.
Wireless mesh networks (WMNs) play a vital role in modern communication systems, and optimizing the placement of wireless mesh routers is crucial for achieving efficient network performance in terms of coverage and connectivity. However, network congestion caused by overlapping routers poses challenges in WMN optimization. To address these issues, researchers have explored metaheuristic algorithms to strike a balance between coverage and connectivity in WMNs. This study introduces a novel hybrid optimization algorithm, namely Transient Trigonometric Harris Hawks Optimizer (TTHHO), specifically designed to tackle the optimization problems in WMNs. The primary objective of TTHHO is to find an optimal placement of routers that maximizes network coverage and ensures full connectivity among mesh routers. Notably, TTHHO's unique advantage lies in its efficient utilization of residual energy, strategically placing the sink node in areas with higher energy levels. The effectiveness of TTHHO is demonstrated through a comprehensive comparison with seven well-known algorithms, including Harris Hawks optimization (HHO), Sine Cosine Algorithm (SCA), Gray Wolf Optimization (GWO), Particle Swarm Optimization (PSO), Moth Flame Optimization (MFO), Equilibrium Optimizer (EO), and Transient Search Optimizer (TSO). The proposed algorithm is rigorously validated using 33 benchmark functions, and statistical analyses and simulation results confirm its superiority over other algorithms in terms of network connectivity, coverage, congestion reduction, and convergence. The simulation outcomes demonstrate the effectiveness and efficacy of the proposed TTHHO algorithm in optimizing WMNs, making it a promising approach for enhancing the performance of wireless communication systems.
无线网状网络(WMN)在现代通信系统中发挥着至关重要的作用,优化无线网状路由器的布局对于在覆盖范围和连接性方面实现高效的网络性能至关重要。然而,路由器重叠导致的网络拥塞给WMN优化带来了挑战。为了解决这些问题,研究人员探索了元启发式算法,以在WMN的覆盖范围和连接性之间取得平衡。本研究引入了一种新颖的混合优化算法,即瞬态三角哈里斯鹰优化算法(TTHHO),专门设计用于解决WMN中的优化问题。TTHHO的主要目标是找到路由器的最佳布局,以最大化网络覆盖范围并确保网状路由器之间的完全连接。值得注意的是,TTHHO的独特优势在于其对剩余能量的有效利用,将汇聚节点战略性地放置在能量水平较高的区域。通过与七种著名算法进行全面比较,证明了TTHHO的有效性,这七种算法包括哈里斯鹰优化算法(HHO)、正弦余弦算法(SCA)、灰狼优化算法(GWO)、粒子群优化算法(PSO)、蛾火焰优化算法(MFO)、平衡优化器(EO)和瞬态搜索优化器(TSO)。使用33个基准函数对所提出的算法进行了严格验证,统计分析和仿真结果证实了其在网络连接性、覆盖范围、拥塞减少和收敛方面优于其他算法。仿真结果证明了所提出的TTHHO算法在优化WMN方面的有效性和功效,使其成为提高无线通信系统性能的一种有前途的方法。