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Network resource information scheduling based on non-convex function optimization algorithm

机译:基于非凸函数优化算法的网络资源信息调度

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When the network resource information is scheduled with the current algorithm, the execution time of the resource scheduling task cannot be improved. The utilization of network resources is reduced in the case of the heavy scheduling task. To address this problem, a network resource information scheduling based on non-convex function optimization algorithm is proposed in this paper. The network resource is modeled as a non-convex function. The execution interval of task is divided into subspaces of multiple units. Task density is introduced into network resource scheduling model. In this model, computing resources and storage resources of the network are considered. Ant colony particle swarm optimization algorithm is used for scheduling with the built network resource scheduling model. The initial solution is obtained by initial search with the particle swarm algorithm. Then the initial solution is transformed into the initial pheromone distribution of the ant colony. The resource information is searched by using ant colony algorithm until the optimal solution is found, so as to achieve network resource information scheduling. Experimental results show that the proposed algorithm can reduce the execution time of task and improve the utilization rate of network resource information.
机译:当使用当前算法调度网络资源信息时,无法提高资源调度任务的执行时间。在调度任务繁重的情况下,网络资源的利用率会降低。针对这一问题,本文提出了一种基于非凸函数优化算法的网络资源信息调度算法。将网络资源建模为非凸函数。任务的执行间隔被划分为多个单元的子空间。在网络资源调度模型中引入任务密度。该模型考虑了网络的计算资源和存储资源。采用蚁群粒子群优化算法进行调度,建立了网络资源调度模型。采用粒子群算法进行初始搜索,得到初始解。然后将初始解转化为蚁群的初始信息素分布。利用蚁群算法搜索资源信息,直到找到最优解,从而实现网络资源信息调度。实验结果表明,该算法可以减少任务的执行时间,提高网络资源信息的利用率。

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