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Efficient Actor Recovery Paradigm for Wireless Sensor and Actor Networks

机译:无线传感器和Actor网络的有效Actor恢复范例

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摘要

The actor nodes are the spine of wireless sensor and actor networks (WSANs) that collaborate to perform a specific task in an unverified and uneven environment. Thus, there is a possibility of high failure rate in such unfriendly scenarios due to several factors such as power consumption of devices, electronic circuit failure, software errors in nodes or physical impairment of the actor nodes and inter-actor connectivity problem. Therefore, it is extremely important to discover the failure of a cut-vertex actor and network-disjoint in order to improve the Quality-of-Service (QoS). In this paper, we propose an Efficient Actor Recovery (EAR) paradigm to guarantee the contention-free traffic-forwarding capacity. The EAR paradigm consists of a Node Monitoring and Critical Node Detection (NMCND) algorithm that monitors the activities of the nodes to determine the critical node. In addition, it replaces the critical node with backup node prior to complete node-failure which helps balancing the network performance. The packets are handled using Network Integration and Message Forwarding (NIMF) algorithm that determines the source of forwarding the packets; either from actor or sensor. This decision-making capability of the algorithm controls the packet forwarding rate to maintain the network for a longer time. Furthermore, for handling the proper routing strategy, Priority-Based Routing for Node Failure Avoidance (PRNFA) algorithm is deployed to decide the priority of the packets to be forwarded based on the significance of information available in the packet. To validate the effectiveness of the proposed EAR paradigm, the proposed algorithms were tested using OMNET++ simulation.
机译:行动者节点是无线传感器和行动者网络(WSAN)的骨干,它们可以在未经验证的不平衡环境中协作执行特定任务。因此,由于诸如设备的功耗,电子电路故障,节点中的软件错误或参与者节点的物理损坏以及参与者之间的连接性问题等多种因素,在这种不友好的场景中存在高故障率的可能性。因此,发现割断顶点角色和网络不相交的故障对于提高服务质量(QoS)极为重要。在本文中,我们提出了一种有效的参与者恢复(EAR)范式,以确保无竞争的流量转发能力。 EAR范式由节点监视和关键节点检测(NMCND)算法组成,该算法监视节点的活动以确定关键节点。此外,它在完成节点故障之前用备份节点替换关键节点,这有助于平衡网络性能。使用网络集成和消息转发(NIMF)算法处理数据包,该算法确定转发数据包的来源。来自演员还是传感器。该算法的这种决策能力控制着数据包的转发速率,以使网络维持更长的时间。此外,为了处理适当的路由策略,部署了基于优先级的节点故障避免路由(PRNFA)算法,根据数据包中可用信息的重要性来决定要转发的数据包的优先级。为了验证所提出的EAR范式的有效性,使用OMNET ++仿真对提出的算法进行了测试。

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