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An explicit evolutionary approach for multiobjective energy consumption planning considering user preferences in smart homes

机译:考虑智能家居用户偏好的多目标能耗规划的明确进化方法

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Modern Smart Cities are highly dependent on an efficient energy service since electricity is used in an increasing number of urban activities. In this regard, Time-of-Use prices for electricity is a widely implemented policy that has been successful to balance electricity consumption along the day and, thus, diminish the stress and risk of shortcuts of electric grids in peak hours. Indeed, residential customers may now schedule the use of deferrable electrical appliances in their smart homes in off-peak hours to reduce the electricity bill. In this context, this work aims to develop an automatic planning tool that accounts for minimizing the electricity costs and enhancing user satisfaction, allowing them to make more efficient usage of the energy consumed. The household energy consumption planning problem is addressed with a multiobjective evolutionary algorithm, for which problem-specific operators are devised, and a set of state-of-the-art greedy algorithms aim to optimize different criteria. The proposed resolution algorithms are tested over a set of realistic instances built using real-world energy consumption data, Time-of-Use prices from an electricity company, and user preferences estimated from historical information and sensor data. The results show that the evolutionary algorithm is able to improve upon the greedy algorithms both in terms of the electricity costs and user satisfaction and largely outperforms to a large extent the current strategy without planning implemented by users.
机译:现代智能城市高度依赖于高效的能源服务,因为电力用于越来越多的城市活动。在这方面,电力的使用时间价格是一项广泛实施的政策,一直成功地沿当天平衡电力消耗,从而减少了高峰时段中电网的捷径的压力和风险。实际上,住宅客户现在可以在智能家庭中安排在智能家庭中使用可推迟的电器,以减少电费。在这种情况下,这项工作旨在开发一个自动规划工具,用于最大限度地降低电力成本并提高用户满意度,使它们能够更有效地使用所消耗的能量。利用多目标进化算法解决了家庭能源消耗计划问题,针对哪些问题的运算符进行了设计,并且一组最先进的贪婪算法旨在优化不同的标准。所提出的分辨率算法经过一套使用现实世界能源消耗数据,从电力公司的使用时间价格建造的一套现实实例以及从历史信息和传感器数据估算的用户偏好。结果表明,在电力成本和用户满意度方面,进化算法能够改善贪婪算法,并且在很大程度上在很大程度上优于当前的策略,而无需由用户实现的规划。

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