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DOE OSTI · code-73278

Load Disaggregation (Modeling Individual Appliance Power Generation & Consumption in Real-Time)

Abstract

We developed a machine learning-based load disaggregation method to estimate the real-time output of individual appliances from the whole-house measurements. We first learn the important features associated with each type of appliances using the ground truth consumption data of individual appliances potentially available for a small set of houses equipped with submeters. The learned features are then be used to estimate the power generation/consumption of the appliances from the whole-house consumption. This developed load disaggregation software includes two steps. The first step is to identify the on/off status of different appliances using a classification method, and the second step is to estimate the appliance output using a regression method.

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BibTeXRIS

Hao, Jun, Yang, Rui. 2022-04-05. Load Disaggregation (Modeling Individual Appliance Power Generation & Consumption in Real-Time). https://doi.org/10.11578/dc.20220826.2

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