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Evaluation Method of Switchgear State Based on Adaptive DBSCAN Algorithm

机译:基于自适应DBSCAN算法的开关柜状态评估方法

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In order to better identify the outlier in the detection data and reasonably evaluate the state of the switchgear, we propose a method for evaluating the state of switchgear based on the Density-Based Spatial Clustering of Applications with Noise (DBSCAN). First, the feature quantities of the switchgear is composed of the insulation state index , the Transient Earth Voltage (TEV), the Ultrasonic Testing (UT), the ambient temperature, the ambient humidity and the operation life. Standardization method is carried out for all feature quantities to form multi-dimensional feature dataset .Then the k-average nearest neighbor method and mathematical expectation method are used to generate the R radius and the minimum number of MinPts parameters. The density threshold (Den) is introduced to automatically find the stable range of cluster number. Finally, In this paper, the field test data is used as an example to verify the feasibility of the method and provide a theoretical basis for the evaluation of switchgear.
机译:为了更好地识别检测数据中的异常值并合理地评估开关设备的状态,我们提出了一种基于基于噪声的应用程序基于密度的空间聚类(DBSCAN)来评估开关设备的状态的方法。首先,开关设备的特征量由绝缘状态指数,瞬态接地电压(TEV),超声测试(UT),环境温度,环境湿度和使用寿命组成。对所有特征量进行标准化,形成多维特征数据集。然后,使用k平均最近邻法和数学期望法生成R半径和最小数量的MinPts参数。引入密度阈值(Den)以自动找到簇数的稳定范围。最后,以现场测试数据为例,验证了该方法的可行性,为开关柜的评估提供了理论依据。

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