首页> 外文会议>Intelligent Systems Applications to Power Systems, 1996. Proceedings, ISAP '96., International Conference on >A probabilistic approach to alarm processing in power systems using a refined genetic algorithm
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A probabilistic approach to alarm processing in power systems using a refined genetic algorithm

机译:使用改进的遗传算法的电力系统警报处理的概率方法

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In this paper, a probabilistic approach Is proposed for alarming processing in power systems based on a genetic algorithm (GA). Although alarm processing and fault diagnosis have different explanations in the power system community, from the viewpoint of the artificial intelligence community, the alarm processing problem is a typical multiple fault diagnosis (MFD) problem. Thus, at first we attribute the alarm processing problem to an MFD problem and discuss the MFD problem in general with special emphasis on the evaluation criteria. Then, a probabilistic criterion is introduced to describe the alarm processing problem, which is deemed more reasonable than the currently used criteria. Thirdly, a novel method is developed to solve the alarm processing problem using a refined genetic algorithm. Finally, a sample example is used to demonstrate the feasibility and efficiency of the developed method. The key features of this proposed method are that it has solid mathematical foundation and can find multiple global optimal solutions directly and efficiently in a single run. This is very suitable for complex alarm processing problems especially for the situations with missing or false alarms, because different combinations of events can produce the same set of alarms under these circumstances. The test results, although preliminary, suggest that the developed GA-based probabilistic method to the alarm processing problem is promising.
机译:本文提出了一种基于遗传算法(GA)的概率方法,用于电力系统的告警处理。尽管警报处理和故障诊断在电力系统界有不同的解释,但从人工智能界的角度来看,警报处理问题是典型的多故障诊断(MFD)问题。因此,首先,我们将警报处理问题归因于MFD问题,并通常着重于评估标准来讨论MFD问题。然后,引入概率标准来描述警报处理问题,该概率标准被认为比当前使用的标准更合理。第三,提出了一种新的方法,利用改进的遗传算法来解决报警处理问题。最后,通过一个样本实例来说明该方法的可行性和有效性。该方法的主要特点是它具有扎实的数学基础,可以在一次运行中直接有效地找到多个全局最优解。这非常适用于复杂的警报处理问题,尤其是对于缺少警报或错误警报的情况,因为事件的不同组合可以在这些情况下生成相同的警报集。测试结果虽然是初步的,但表明针对警报处理问题开发的基于GA的概率方法是有希望的。

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