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Cognitive Artificial Intelligence Method for Interpreting Transformer Condition Based on Maintenance Data

机译:基于维护数据的变压器状态判读的认知人工智能方法

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A3S(Arwin-Adang-Aciek-Sembiring) is a method of information fusion at a single observation and OMA3S(Observation Multi-time A3S) is a method of information fusion for time-series data. This paper proposes OMA3S-based Cognitive Artificial-Intelligence method for interpreting Transformer Condition, which is calculated based on maintenance data from Indonesia National Electric Company (PLN). First, the proposed method is tested using the previously published data, and then followed by implementation on maintenance data. Maintenance data are fused to obtain part condition, and part conditions are fused to obtain transformer condition. Result shows proposed method is valid for DGA fault identification with the average accuracy of 91.1%. The proposed method not only can interpret the major fault, it can also identify the minor fault occurring along with the major fault, allowing early warning feature. Result also shows part conditions can be interpreted using information fusion on maintenance data, and the transformer condition can be interpreted using information fusion on part conditions. The future works on this research is to gather more data, to elaborate more factors to be fused, and to design a cognitive processor that can be used to implement this concept of intelligent instrumentation.
机译:A3S(Arwin-Adang-Aciek-Sembiring)是一种单次观测信息融合的方法,而OMA3S(Observation Multi-time A3S)是时序数据信息融合的方法。本文提出了一种基于OMA3S的认知人工智能方法来解释变压器状态,该方法是根据印尼国家电力公司(PLN)的维护数据计算得出的。首先,使用先前发布的数据对提出的方法进行测试,然后对维护数据进行实施。合并维护数据以获得零件状态,并合并零件条件以获得变压器状态。结果表明,该方法对DGA故障的识别是有效的,平均准确率为91.1%。提出的方法不仅可以解释主要故障,还可以识别与主要故障一起发生的次要故障,具有预警功能。结果还表明,可以通过对维护数据进行信息融合来解释零件状况,而可以通过对零件状况进行信息融合来解释变压器状况。这项研究的未来工作是收集更多的数据,阐述更多要融合的因素,并设计可用于实现智能仪器概念的认知处理器。

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