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Context-specific urban occupancy modeling using location-based services data

机译:使用基于位置的服务数据的上下文特定的城市占用建模

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摘要

Energy-related occupant behavior is a major source of uncertainty in building and urban energy performance simulations. Standardized assumptions, published by ASHRAE and others in the form of occupancy schedules, are widely used in research and practice, especially on the district-scale. In this work, we gathered location-based services data to create context-specific, data-driven occupancy schedules. Using a web mapping service, we collected data for retail and restaurant uses in the downtown neighborhoods of 13 different U.S. cities to create data-driven schedules for each context. The schedules were compared to ASHRAE standard assumptions using the earth mover's distance approach and the schedules' energy-related features. We found that standard schedules seem to significantly overestimate weekly building occupancy, although the shapes of the schedules are generally similar. The use of standard schedules could therefore, have significant impacts on district-scale energy demand simulations, as the overestimation will be cumulative.As compared to the differences between data-driven and standard schedules, the differences between different locations are significantly smaller. However in extreme cases, the weekly cumulative occupancy and the number of occupied hours differ by more than 30% between locations, which means that context-specific differences together with climatic differences might also impact building performance simulation results. Furthermore, we found differences in daily data between the different days of the week. In particular, the observed behavior on Fridays is significantly different from other weekdays for both considered use-types. This indicates that the conventional categorization of occupant behavior models into three day-types: weekday, Saturday, and Sunday, should be reconsidered.
机译:能源相关的乘员行为是建设和城市能源绩效模拟中不确定性的主要来源。由Ashrae和其他占用时间表的形式出版的标准化假设被广泛用于研究和实践,特别是在地区规模上。在这项工作中,我们收集基于位置的服务数据来创建特定于上下文,数据驱动的占用计划。使用Web映射服务,我们收集了零售和餐厅的数据,在13个不同的美国城市的市中心邻居中使用,为每个上下文创建数据驱动的时间表。将该时间表与Ashrae标准假设进行比较,使用地球移动器的距离方法和计划的能量相关特征。我们发现标准时间表似乎大大高估每周建筑物占用率,尽管日程表的形状普遍相似。因此,使用标准时间表可能会对地区规模能量需求模拟产生重大影响,因为估计率将是累积的。与数据驱动和标准时间表之间的差异相比,不同位置之间的差异明显较小。然而,在极端情况下,当时累计占用和占用时间的数量在地点之间的数量不同,这意味着与气候差异的上下文特定差异也可能影响构建性能模拟结果。此外,我们发现本周不同日期之间的日常数据的差异。特别是,星期五的观察到的行为与两者都考虑过的使用类型的其他工作日有显着差异。这表明乘员行为模型的常规分类为三天:平日,周六和星期日,应被重新考虑。

著录项

  • 来源
    《Building and Environment》 |2020年第5期|106803.1-106803.18|共18页
  • 作者单位

    Singapore ETH Ctr Future Cities Lab 1 Create Way CREATE Tower Singapore 138602 Singapore|Swiss Fed Inst Technol Inst Technol Architecture Architecture & Bldg Syst Stefano Franscini Pl 1 CH-8093 Zurich Switzerland;

    Singapore ETH Ctr Future Cities Lab 1 Create Way CREATE Tower Singapore 138602 Singapore|Swiss Fed Inst Technol Inst Technol Architecture Architecture & Bldg Syst Stefano Franscini Pl 1 CH-8093 Zurich Switzerland;

    Singapore ETH Ctr Future Cities Lab 1 Create Way CREATE Tower Singapore 138602 Singapore|Swiss Fed Inst Technol Inst Technol Architecture Architecture & Bldg Syst Stefano Franscini Pl 1 CH-8093 Zurich Switzerland;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Occupancy schedule; Occupant behavior; Urban building energy modeling; Location-based services data; Mobile phone location data;

    机译:占用时间表;占用行为;城市建筑能源建模;基于位置的服务数据;手机位置数据;
  • 入库时间 2022-08-18 21:37:11

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