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An Improved Method for Load Taxonomy Using Sample Shifting Technique and Signature Analysis

机译:基于样本移位技术和签名分析的负荷分类方法的改进

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摘要

This paper illustrates an improved method of classification of electrical appliances, particularly for domestic loads, to construct load taxonomy on the basis of their signature analysis. Each electrical load is characterized by its own distinct signature and hence load signature analysis is useful in monitoring the health of the equipment, power quality, in determining individual energy usage etc. type of services. On the other hand, load taxonomy classifies these loads in several clusters on the basis of some features extracted from their signatures. In traditional methods of construction of load taxonomy, different signature patterns based on power metrics, V-I trajectories, Eigen vectors, etc. In this proposed method, with the adoption of sample shifting technique the required number of feature extraction is reduced to a lower value to find out various signature patterns than those are required in traditional load taxonomies. Moreover, a better taxonomy, having well separated groups of loads is achieved with lower number of extracted features.
机译:本文阐述了一种改进的电器分类方法,特别是针对家庭负载的电器,可以在其签名分析的基础上构建负载分类法。每个电气负载都有其自己独特的特征,因此负载特征分析可用于监视设备的运行状况,电源质量,确定单个能源使用情况等服务类型。另一方面,负载分类法根据从其签名中提取的某些特征将这些负载分类为几个群集。在传统的负载分类法构建方法中,基于功率度量,VI轨迹,特征向量等的不同签名模式。在此方法中,通过采用样本移位技术,将特征提取的所需数量减少到较低值找出与传统负载分类法不同的各种签名模式。此外,通过较少数量的提取特征,可以实现更好的分类法,将负荷组很好地分开。

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