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Combining Occupancy User Profiles in a Multi-user Environment: An Academic Office Case Study

机译:在多用户环境中合并占用用户配置文件:学术办公室案例研究

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In a worldwide context, space heating is the largest energy consumer in commercial buildings, it accounts for 35% of the total energy consumed in the US. Energy efficient thermostats, that learn occupancy patterns and user preferences, haven been studied in literature. However, they are oriented to single-user environments, therefore, they are not applicable in offices where several users interact, i.e. multi-user environments. To expand the single-user techniques in order to cope with multi-user environments, two methods are proposed to derive the user's expected temperatures demands based on their occupancy profiles and individual preferences in terms of desired temperature and tolerance. This paper presents the implications of the implementation of such techniques by means of a case study of two users in an academic office. We observed that the proposed methods reduced the operational time up to 33% compared to a reference fixed schedule of 12 hours while maintaining user comfort. In conclusion, smart thermostats can also reduce energy consumption in multi-user environments while guaranteeing individual user expectations.
机译:在全球范围内,空间采暖是商业建筑中最大的能源消耗,占美国总能耗的35%。节能的温控器可以学习占用模式和用户喜好,但尚未在文献中进行过研究。但是,它们面向单用户环境,因此,它们不适用于有多个用户交互的办公室,即多用户环境。为了扩展单用户技术以应对多用户环境,提出了两种方法来基于用户的占用情况和在期望温度和容差方面的个人偏好来推导用户的期望温度需求。本文通过对一个学术办公室中两个用户的案例研究,介绍了实施此类技术的意义。我们观察到,与12小时的参考固定时间表相比,所提出的方法将操作时间减少了多达33%,同时又保持了用户的舒适度。总之,智能恒温器还可以降低多用户环境中的能耗,同时保证个人用户的期望。

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