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Application of an Ant Colony Algorithm based on complex networks in migration of mobile agents

机译:基于复杂网络的蚁群算法在移动代理迁移中的应用

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One of the main problems in mobile agent migration is planning out an optimal migration path according to the agent tasks and other restrictions when agents migrate to several other hosts. The ant colony algorithm, which has the characteristic of parallelism, positive feedback and heuristic search, is a new evolutionary algorithm and is extremely suitable to the mobile agent migration problem. But it still has some shortcomings such as slowly speed and stagnation behavior. Complex networks theory is a new kind of theory, which finds that some practical networks have new characters. In order to describe these new characters, some new characteristic measures are introduced, one of which is the node's "degree". Based on the classical ant algorithm, the parameter "degree" is added into the state transfer rules of the ant algorithm and a self-adaptive pheromone evaporation rate is proposed, which can accelerate the convergence rate and improve the ability of searching an optimum solution. This improved ant colony algorithm is used to plan out an optimal migration path of mobile agents. The results of contrastive experiments show that the algorithm is superior to other related methods both on the quality of solution and on the convergence rate.
机译:移动代理迁移中的主要问题之一是根据代理任务和其他限制规划了最佳迁移路径,当代理迁移到其他几个主机时。具有并行性,正反馈和启发式搜索的特征的蚁群算法是一种新的进化算法,非常适合移动代理迁移问题。但它仍然存在一些缺点,如缓慢的速度和停滞行为。复杂的网络理论是一种新的理论,这发现一些实用的网络有新的角色。为了描述这些新的角色,引入了一些新的特征措施,其中一个是节点的“程度”。基于经典蚂蚁算法,将参数“程度”添加到蚂蚁算法的状态转移规则中,提出了自适应信息素蒸发速率,可以加速收敛速率并提高搜索最佳解决方案的能力。这种改进的蚁群算法用于规划移动代理的最佳迁移路径。对比实验结果表明,该算法优于溶液质量和收敛速度的其他相关方法。

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