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首页> 外文期刊>IEEE communications letters >NLL: A Complex Network Model with Compensation for Enhanced Connectivity
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NLL: A Complex Network Model with Compensation for Enhanced Connectivity

机译:NLL:具有补偿功能的复杂网络模型,可增强连接性

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摘要

The canonical scale-free model to describe complex networks is BA model with an power-law exponent γ = 3. Researchers further propose DS model (1 < γ Ȧ4; 4) to consider link failure besides node growth in preferential attachment. However, both models assume globally preferential attachment which is difficult to achieve in real networks. This paper proposes a new scale-free model, i.e. Neighborhood Log-on and Log-off model (NLL) which considers locally preferential connectivity. NLL incorporates both node growth and removal in topology evolvement. Unlike BA and DS, NLL adds compensation mechanism to enhance connectivity. The analysis shows that NLL has 1 < γ Ȧ4; 3. We conduct simulations to evaluate NLL performance and show that, NLL has short average path length and large clustering coefficient, compared with BA and DS models.
机译:描述复杂网络的标准无标度模型是幂律指数为γ= 3的BA模型。研究人员进一步提出了DS模型(1 <γ; 4; 4),除了优先附着的节点增长以外,还考虑了链路故障。但是,这两种模型都假定全局优先连接,这在实际网络中很难实现。本文提出了一种新的无标度模型,即考虑本地优先连通性的邻居登录和注销模型(NLL)。 NLL在拓扑结构演化中同时包含了节点增长和删除。与BA和DS不同,NLL添加了补偿机制来增强连接性。分析表明,NLL为1 <γȦ4。 3.我们进行了仿真以评估NLL性能,结果表明,与BA和DS模型相比,NLL具有较短的平均路径长度和较大的聚类系数。

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