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Modeling the Tracking Area Planning Problem Using an Evolutionary Multi-Objective Algorithm

机译:使用进化多目标算法对跟踪区域规划问题建模

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When planning the Tracking Areas (TAs) for a Long Term Evolution (LTE) network, the main concern of mobile operators is to achieve the minimization of both location update cost and paging cost. This paper proposes a new green field TA planning model using multi-objective optimization with constraints, aiming at finding a better trade-off between the two conflicting objectives. This new model integrates the network geographical information, therefore making it more realistic. Considering the impact of constraints, we design an evolutionary multi-objective algorithm based on a population decomposition strategy for the proposed model. Information about infeasible solutions can be fully utilized by population decomposition and thus the algorithmic efficiency can be greatly improved. A new coding scheme inspired by the famous four-color theorem is specially designed for this multi-objective TA planning model. Computer simulations are conducted and the quality of the new model is confirmed by comparing the results of the multi-objective model with those of a single-objective model. The essential role of the population decomposition strategy has also been identified by comparing the proposed algorithm with the Multi-objective Evolutionary Algorithm based on Decomposition (MOEA/D).
机译:在规划长期演进(LTE)网络的跟踪区域(TA)时,移动运营商的主要关注点是实现位置更新成本和寻呼成本的最小化。本文提出了一种新的绿地技术援助计划模型,该模型使用了具有约束条件的多目标优化,旨在在两个相互冲突的目标之间找到更好的权衡。这种新模型集成了网络地理信息,因此使其更加真实。考虑到约束的影响,我们针对种群模型设计了一种基于种群分解策略的进化多目标算法。人口分解可以充分利用有关不可行解决方案的信息,因此可以大大提高算法效率。受此著名的四色定理启发而设计的一种新的编码方案,是专门为该多目标TA规划模型设计的。通过将多目标模型的结果与单目标模型的结果进行比较,进行了计算机仿真并确认了新模型的质量。通过将提出的算法与基于分解的多目标进化算法(MOEA / D)进行比较,也确定了人口分解策略的重要作用。

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