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首页> 外文期刊>Wireless personal communications: An Internaional Journal >Meta-heuristic Ant Colony Optimization Based Unequal Clustering for Wireless Sensor Network
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Meta-heuristic Ant Colony Optimization Based Unequal Clustering for Wireless Sensor Network

机译:基于无线传感器网络的不等聚类的元 - 启发式蚁群优化

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Sensor nodes are randomly deployed to perform specific area monitoring in geographical region and temporal space. The network connectivity maintenance is a major requirement for accurate event detection with minimum energy consumption. To minimize the energy consumption, various clustering algorithms have been evolved in research studies. But, they failed to consider the other performance parameters such as quality of service constraints and the performance level. The initialization of nodes nearer to the base station (BS) as relay nodes reduces the number of relay node participation and increases the performance. This paper proposes the novel ant colony meta-heuristic based unequal clustering for the novel cluster head (CH) selection. The data fusion from the CH node to the intermediate node called Rendezvous node reduces the message transmissions and hence the energy consumed by the nodes is minimum. The neighbor finding phase and the link maintenance through the Meta-Heuristic Ant Colony Optimization approach selects the optimal path between the nodes which increases the packets delivered to the destination. The population initialization requires more time at this stage. Hence, the Haversine distance is estimated among the nodes which also reduces the dimensionality of the message transmission among the nodes. The prediction of optimal path and the CH selection using Ant Colony Optimization Meta-Heuristic and unequal clustering reduces the energy consumption effectively. The comparative analysis of proposed Meta-Heuristic Ant Colony Optimization based Unequal Clustering with the existing unequal clustering approaches on the basis of various performance parameters such as Packet Delivery Ratio, number of packets sent to the BS, energy consumption, residual energy and the percentage of dead nodes shows the effectiveness of proposed work in WSN applications.
机译:传感器节点随机部署,以在地理区域和时间空间中执行特定区域监视。网络连接维护是具有最小能耗的准确事件检测的主要要求。为了最大限度地减少能量消耗,研究研究中的各种聚类算法已经进化。但是,他们未能考虑其他性能参数,例如服务质量限制和性能级别。作为中继节点的初始化节点靠近基站(BS)减少了中继节点参与的数量并提高了性能。本文提出了基于新型蚁群的蚁群间启发式基于簇状头(CH)选择。从CH节点到中间节点的数据融合称为Rendezvous节点的中间节点减少了消息传输,因此节点消耗的能量最小。邻居发现阶段和通过元启发式蚁群优化方法的链路维护选择节点之间的最佳路径,该节点将传递到目的地的数据包增加。人口初始化需要在这个阶段更多的时间。因此,在节点之间估计存在的空隙距离,其在节点中也减少了节点之间的消息传输的维度。利用蚁群优化元启发式和不等聚类的最佳路径和CH选择的预测有效地降低了能量消耗。基于诸如分组传递比例的各种性能参数,诸如分组交付率的各种性能参数,诸如诸如分组传递率的各种性能参数,送到BS,能量消耗,剩余能量和百分比的分组的比较分析死亡节点显示了WSN应用程序中提出的工作的有效性。

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