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Noninvasive Load Identification Method Based on Feature Similarity

机译:基于特征相似性的非侵入载荷识别方法

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The traditional power load identification is greatly restricted in application because of its high cost and low efficiency. In this paper, the similarity model is established to realize the noninvasive load identification of power by determining the feature database for the equipment. Firstly, the wavelet decomposition method and the wavelet threshold processing method are used to remove abnormal points and reduce noise of the original data, respectively. Secondly, the transient and steady-state characteristics of electrical equipment (active power and reactive power, harmonic current, and voltage-current trajectory) are extracted, and the feature database for the equipment is established. Thirdly, the feature similarity is defined to describe the similarity degree of any two devices under a certain feature, and the similarity model of automatic recognition of a single device is established. Finally, the device identification and calculation of power consumption are carried out for the part of data in annex 2 of question A in the 6th “teddy cup” data mining challenge competition.
机译:由于其高成本和低效率,传统的电力负载识别在应用中受到极大限制。在本文中,建立了相似模型来实现通过确定设备的特征数据库来实现功率的非侵入负载识别。首先,使用小波分解方法和小波阈值处理方法来分别去除异常点并降低原始数据的噪声。其次,提取电气设备的瞬态和稳态特性(有源电力和无功,谐波电流和电压电流轨迹),建立了设备的特征数据库。第三,特征相似度被定义为描述某些特征下的任何两个设备的相似度,并且建立了单个设备的自动识别的相似性模型。最后,在第六个“泰迪杯”数据挖掘挑战竞争中,为第6个“泰迪杯”数据挖掘竞争中的问题A附件2中的数据进行了识别和计算。

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