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首页> 外文期刊>Sustainable Energy Technologies and Assessments >A complementary unsupervised load disaggregation method for residential loads at very low sampling rate data
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A complementary unsupervised load disaggregation method for residential loads at very low sampling rate data

机译:在非常低的采样率数据下的住宅负载互动的无监督负载分组方法

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摘要

In this paper, low-resolution smart metering data analysis is applied to breakdown the load consumption for household appliances to facilitate the deployment of residential energy management solutions. A complementary NILM approach for smart meter data with a very low sampling rate is designed to disaggregate the energy consumption data for both household space thermal appliances and small appliances. The load disaggregation approach relies only on the general activity time usage data and public statistical data for appliance consumptions. A novel three-step disaggregation topology is applied to complement NILM problems. The first step is separating white appliances loads using existing NILM algorithms (commercial algorithm of WATT-IS company). The second disaggregation step couples an edge detection technique with a k-means cluster method to detect the ON/OFF event for heating and cooling loads, from the residual aggregated loads. Finally, a novel disaggregation approach using a dynamic fuzzy logic model and a predictive method is applied for the remaining aggregated loads to identify the ON/OFF event occurrence for small appliances. The proposed method is validated using French household dataset with 10 min sample data rates. Then it is applied to disaggregate the load consumption for Portuguese household dataset with 15 min sample data rates.
机译:本文采用低分辨率智能计量数据分析来分解家用电器的负荷消耗,以促进住宅能源管理解决方案的部署。具有非常低采样率的智能仪表数据的互补尼尔方法旨在将家庭空间热电器和小家电的能量消耗数据分解。负载分解方法仅依赖于Appliance Conseptions的一般活动时间使用数据和公共统计数据。新颖的三步分解拓扑应用于补体尼米问题。第一步是使用现有的NILM算法(WATT-IS公司的商业算法)分离白具负载。第二分解步骤将边缘检测技术与K-Means簇方法耦合,以检测用于加热和冷却负载的开/关事件,从残留的聚集负载中耦合。最后,应用使用动态模糊逻辑模型的新型分类方法和预测方法,用于剩余的聚合负载,以识别小设备的开/关事件发生。使用法国家庭数据集进行了验证的方法,具有10分钟的示例数据速率。然后应用于将葡萄牙家庭数据集的负载消耗分解为15分钟的示例数据速率。

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