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Load-aware multicast routing in multi-radio wireless mesh networks using FCA-CMAC neural network

机译:使用FCA-CMAC神经网络的多无线电无线网状网络中的负载感知多播路由

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Multicasting is a useful network service in wireless mesh networks (WMNs) for delivering same data from a source to multiple destinations. An effective multicast routing protocol in multi-channel multi-radio WMNs (MCMR-WMNs) is required to satisfy the following criteria together: high network throughput, low end-to-end delay, low tree cost, low computational time, and load-aware routing. Furthermore, how to fully exploit channel diversity in MCMR-WMNs to accomplish low channel interference criteria is a critical issue in designing multicast routing protocol. In spite of its significance, multicast routing which satisfies all of the mentioned criteria, has not drawn much attention so far. Besides, major multicast routing protocols proposed in MCMR-WMNs are centralized or solve two problems of multicast tree construction and channel assignment sequentially. These protocols are time-consuming in addition to suffering from a single-point-of-failure. In this paper, we propose a distributed cross-layer algorithm for joint multicast routing and channel assignment in MCMR-WMNs. For the first time, we apply fuzzy credit assigned cerebellum model articulation controller (FCA-CMAC) neural network model to construct multicast routing tree considering load on the mesh nodes and the delay between neighboring mesh nodes. Moreover, we present a heuristic channel assignment algorithm aiming to reduce interference among the links of the multicast tree. FCA-CMAC converges quickly and creates minimal delay and load-aware multicast tree. Therefore, proposed method can optimize the network throughput, end-to-end delay, tree cost, and computational time. Additionally, channel assignment algorithm is subject to produce the minimal interference multicast tree. Simulation results show that in terms of a forementioned criteria, the proposed FCA-CMAC based multicast algorithm achieves better performance than those comparative references.
机译:组播是无线网状网络(WMN)中有用的网络服务,用于将相同的数据从源传递到多个目标。多通道多无线电WMN(MCMR-WMN)中需要有效的多播路由协议,以同时满足以下条件:高网络吞吐量,低端到端延迟,低树成本,低计算时间和负载感知路由。此外,如何充分利用MCMR-WMN中的信道分集来实现低信道干扰标准是设计组播路由协议的关键问题。尽管具有重要意义,但满足所有上述标准的多播路由尚未引起人们的广泛关注。此外,MCMR-WMN中提出的主要组播路由协议是集中式的,或者依次解决了组播树构造和信道分配的两个问题。这些协议除了遭受单点故障外,还很耗时。在本文中,我们为MCMR-WMN中的联合组播路由和信道分配提出了一种分布式跨层算法。首次,我们考虑到网格节点上的负载和相邻网格节点之间的延迟,应用模糊信用分配小脑模型关节控制器(FCA-CMAC)神经网络模型构建多播路由树。此外,我们提出了一种启发式信道分配算法,旨在减少多播树的链路之间的干扰。 FCA-CMAC快速收敛,并创建了最小的延迟和负载感知多播树。因此,提出的方法可以优化网络吞吐量,端到端延迟,树成本和计算时间。另外,信道分配算法易于产生最小干扰多播树。仿真结果表明,基于上述标准,本文提出的基于FCA-CMAC的组播算法比比较参考算法具有更好的性能。

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