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Computational Intelligence Routing for lifetime Maximization in Heterogeneous Wireless Sensor Networks

机译:异构无线传感器网络中生命周期最大化的计算智能路由

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In wireless sensor networks, sensor nodes are typically power-constrained with limited lifetime, and thus it is necessary to know how long the network sustains its networking operations. Heterogeneous WSNs consists of different sensor devices with different capabilities. One of major issue in WSNs is finding the coverage distance and connectivity between sensors and sink. To increase the network lifetime, this paper proposed Swarm Intelligence, routing technique called Ant Colony Optimization (ACO). Ant colony optimization algorithm provides a natural and intrinsic way of exploration of search space of coverage area. Ants communicate with their nest-mates using chemical scents known as pheromones, Based on Pheromone trail between sensor devices the shortest path is found. By finding the coverage distance and sensing range, the network lifetime maximized and reduces the energy usage. Extensive Java Agent Framework (JADE) multi agent simulator result clearly provides more approximate, effective and efficient way for maximizing the lifetime of heterogeneous WSNs.
机译:在无线传感器网络中,传感器节点通常受到功率的限制,并且使用寿命有限,因此有必要知道网络维持其网络操作多长时间。异构WSN由具有不同功能的不同传感器设备组成。 WSN的主要问题之一是找到传感器和接收器之间的覆盖距离和连接性。为了延长网络寿命,本文提出了一种名为“蚁群优化”(ACO)的“群智能”路由技术。蚁群优化算法提供了一种自然而固有的探索覆盖区域搜索空间的方法。蚂蚁使用称为信息素的化学气味与巢伙伴进行交流。基于传感器设备之间的信息素轨迹,可以找到最短的路径。通过查找覆盖距离和感应范围,网络寿命得以最大化并减少了能耗。广泛的Java代理框架(JADE)多代理仿真器结果显然为最大化异构WSN的生存期提供了更为近似,有效和高效的方式。

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