Recommending energy tariffs and load shifting based on smart household usage profiling

J. Fischer, S. Ramchurn, Michael A. Osborne, Oliver Parson, T. D. Huynh, Muddasser Alam, Nadia Pantidi, Stuart Moran, K. Bachour, S. Reece, Enrico Costanza, T. Rodden, N. Jennings
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引用次数: 45

Abstract

We present a system and study of personalized energy-related recommendation. AgentSwitch utilizes electricity usage data collected from users' households over a period of time to realize a range of smart energy-related recommendations on energy tariffs, load detection and usage shifting. The web service is driven by a third party real-time energy tariff API (uSwitch), an energy data store, a set of algorithms for usage prediction, and appliance-level load disaggregation. We present the system design and user evaluation consisting of interviews and interface walkthroughs. We recruited participants from a previous study during which three months of their household's energy use was recorded to evaluate personalized recommendations in AgentSwitch. Our contributions are a) a systems architecture for personalized energy services; and b) findings from the evaluation that reveal challenges in designing energy-related recommender systems. In response to the challenges we formulate design recommendations to mitigate barriers to switching tariffs, to incentivize load shifting, and to automate energy management.
根据智能家庭使用情况分析,建议能源价格和负荷转移
我们提出了一个个性化能源相关推荐的系统和研究。AgentSwitch利用从用户家庭收集的一段时间内的用电数据,实现一系列与能源相关的智能建议,包括能源关税、负荷检测和使用转移。该web服务由第三方实时能源价格API (uSwitch)、一个能源数据存储、一组用于使用预测的算法和设备级负载分解驱动。我们介绍了系统设计和用户评估,包括访谈和界面演练。我们从之前的一项研究中招募了参与者,在此期间,记录了他们三个月的家庭能源使用情况,以评估AgentSwitch中的个性化建议。我们的贡献是a)个性化能源服务的系统架构;b)评估结果揭示了设计与能源相关的推荐系统的挑战。为了应对这些挑战,我们制定了设计建议,以减轻转换关税的障碍,激励负荷转移,并实现能源管理的自动化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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