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Generating Capacity Reliability Evaluation Based on Monte Carlo Simulation and Cross-Entropy Methods

机译:基于蒙特卡洛模拟和交叉熵方法的发电容量可靠性评估

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摘要

This paper presents a new Monte Carlo simulation (MCS) approach based on cross-entropy (CE) method to evaluate generating capacity reliability (GCR) indices. The basic idea is to use an auxiliary importance sampling density function, whose parameters are obtained from an optimization process that minimizes the computational effort of the MCS estimation approach. In order to improve the performance of the CE-based method as applied to the GCR assessment, various aspects are considered: system size, rarity of the failure event, number of different units, unit capacity sizes, and load shape. The IEEE Reliability Test System is used to test the proposed methodology, and also various modifications of this system are created to fully verify the ability of the proposed approach against both, a crude MCS and an extremely efficient analytical technique based on discrete convolution. A configuration of the Brazilian South-Southeastern generating system is also used to demonstrate the capability of the proposed CE-based MCS method in real applications.
机译:本文提出了一种新的基于交叉熵(CE)方法的蒙特卡洛模拟(MCS)方法,以评估发电容量可靠性(GCR)指标。基本思想是使用辅助重要性采样密度函数,该函数的参数是从优化过程中获得的,该过程使MCS估计方法的计算工作最小化。为了提高应用于GCR评估的基于CE的方法的性能,考虑了各个方面:系统大小,故障事件的稀有性,不同单元的数量,单元容量大小和负载形状。 IEEE可靠性测试系统用于测试所提出的方法,并且还对该系统进行了各种修改,以充分验证所提出的方法针对粗略MCS和基于离散卷积的极其有效的分析技术的能力。巴西东南东南发电系统的配置也被用来证明所提出的基于CE的MCS方法在实际应用中的能力。

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