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Particle swarm optimization with Monte-Carlo simulation and hypothesis testing for network reliability problem

机译:基于monte-Carlo模拟的粒子群优化算法及网络可靠性问题的假设检验

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摘要

The performance of Monte-Carlo Simulation(MCS) is highly related to the number of simulation. This paper introduces a hypothesis testing technique and incorporated into a Particle Swarm Optimization(PSO) based Monte-Carlo Simulation(MCS) algorithm to solve the complex network reliability problem. The function of hypothesis testing technique is to reduce the dispensable simulation in network system reliability estimation. The proposed technique contains three components: hypothesis testing, network reliability calculation and PSO algorithm for finding solutions. The function of hypothesis testing is to abandon unpromising solutions; we use Monte-Carlo simulation to obtain network reliability; since the network reliability problem is NP-hard, PSO algorithm is applied. Since the execution time can be better decreased with the decrease of Confidence level of hypothesis testing in a range, but the solution becomes worse when the confidence level exceed a critical value, the experiment are carried out on different confidence levels for finding the critical value. The experimental results show that the proposed method can reduce the computational cost without any loss of its performance under a certain confidence level.
机译:蒙特卡洛仿真(MCS)的性能与仿真次数密切相关。本文介绍了一种假设检验技术,并将其结合到基于粒子群优化(PSO)的蒙特卡洛模拟(MCS)算法中,以解决复杂的网络可靠性问题。假设测试技术的功能是减少网络系统可靠性评估中不必要的仿真。所提出的技术包括三个部分:假设检验,网络可靠性计算和用于找到解决方案的PSO算法。假设检验的功能是放弃毫无希望的解决方案。我们使用蒙特卡洛仿真来获得网络可靠性;由于网络可靠性问题是NP难的,因此应用了PSO算法。由于在一定范围内降低假设检验的置信度可以更好地减少执行时间,但是当置信度超过临界值时解决方案变得更糟,因此需要在不同的置信度下进行实验以找到临界值。实验结果表明,在一定的置信度下,该方法可以降低计算量,并且不损失性能。

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