解决国内消费管理异常事件的学习算法和系统方法

L. Gomes, F. Fernandes, Z. Vale, P. Faria, C. Ramos
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引用次数: 3

摘要

将智能电网概念整合到电网中,需要中小企业的积极参与。这种主动参与可以通过分散式决策来实现,在这种决策中,终端用户可以管理与智能电网需求相关的负载。负载管理必须处理用户的偏好、意愿和需求。然而,用户的偏好、意愿和需求在面对特殊事件时可能会发生变化。本文提出将异常事件集成到作者开发的SCADA房屋智能管理(SHIM)系统中,以处理家庭消费背景下的机器学习问题。本文提供了一个说明性的应用和学习案例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A learning algorithm and system approach to address exceptional events in domestic consumption management
The integration of the Smart Grid concept into the electric grid brings to the need for an active participation of small and medium players. This active participation can be achieved using decentralized decisions, in which the end consumer can manage loads regarding the Smart Grid needs. The management of loads must handle the users' preferences, wills and needs. However, the users' preferences, wills and needs can suffer changes when faced with exceptional events. This paper proposes the integration of exceptional events into the SCADA House Intelligent Management (SHIM) system developed by the authors, to handle machine learning issues in the domestic consumption context. An illustrative application and learning case study is provided in this paper.
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