GLBR: A novel global load balancing routing scheme based on intelligent computing in partially disconnected wireless sensor networks

IF 1.9 4区 计算机科学 Q3 COMPUTER SCIENCE, INFORMATION SYSTEMS
Zeyu Sun, G. Liao, Cao Zeng, Lan Lan, Guozeng Zhao
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引用次数: 0

Abstract

Load balancing is of great significance to extend the longevity of wireless sensor networks, due to the inherent imbalanced energy overhead in such networks. However, existing solutions cannot balance the load distribution in partially disconnected wireless sensor networks. For example, if a network is partitioned into several segments with different area sizes, some areas have much more traffic load than other areas. In this article, we propose a load-balanced routing scheme, which aims to balance energy consumption within each segment and among different segments. First, we adopt unequal transmission distances to build initial routing for intrasegment load balancing. Second, we adopt the genetic algorithm to build extra routing between different segments for intersegment load balancing. The unique character of our work is twofold. On one hand, we investigate partitioned wireless sensor networks where there are several isolated segments. On the other hand, we pursue load balancing from a global perspective rather than from a local one. Some simulations verify the effectiveness and the advantages of our scheme in terms of extra deployment cost, system longevity, and load balancing degree.
GLBR:一种新的基于智能计算的部分断开无线传感器网络全局负载平衡路由方案
由于无线传感器网络固有的不平衡能量开销,负载平衡对延长无线传感器网络的寿命具有重要意义。然而,现有的解决方案无法平衡部分断开的无线传感器网络中的负载分布。例如,如果一个网络被划分为具有不同区域大小的几个段,则某些区域的流量负载比其他区域大得多。在本文中,我们提出了一种负载平衡路由方案,旨在平衡每个分段内和不同分段之间的能量消耗。首先,我们采用不相等的传输距离来建立用于段内负载平衡的初始路由。其次,我们采用遗传算法在不同的分段之间建立额外的路由,以实现分段间的负载平衡。我们工作的独特性是双重的。一方面,我们研究了有几个隔离段的分区无线传感器网络。另一方面,我们从全局的角度而不是从本地的角度来追求负载平衡。一些仿真验证了我们的方案在额外部署成本、系统寿命和负载平衡程度方面的有效性和优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
6.50
自引率
4.30%
发文量
94
审稿时长
3.6 months
期刊介绍: International Journal of Distributed Sensor Networks (IJDSN) is a JCR ranked, peer-reviewed, open access journal that focuses on applied research and applications of sensor networks. The goal of this journal is to provide a forum for the publication of important research contributions in developing high performance computing solutions to problems arising from the complexities of these sensor network systems. Articles highlight advances in uses of sensor network systems for solving computational tasks in manufacturing, engineering and environmental systems.
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