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Occupancy patterns obtained by heuristic approaches: Cluster analysis and logical flowcharts. A case study in a university office

机译:通过启发式方法获得的占用模式:聚类分析和逻辑流程图。某大学办公室的案例研究

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An experimental set-up was built in an office with the aim of obtaining information regarding occupancy patterns by monitoring occupancy state, air temperature, relative humidity, CO2, VOC, door and window opening, and electricity usage. Heuristic approaches were applied: cluster analysis and models based on logical flowcharts. Cluster analysis was implemented in the ground truth occupancy data to identify daily occupancy patterns by considering different time steps. Clusters marked by daily occupancy lower and greater than 40% were identified. Furthermore, in high occupancy clusters, the analysis distinguished groups in which the day with the highest occupancy was lower or greater than 40%.The same approach was applied with continuous parameters to verify the ability of sensors to replicate the characteristics of each identified cluster. CO2 and power clusters showed similarities in the number of clusters, days in each cluster, and occupancy percentage.In addition, both continuous and binary variables were used in models based on logical flowcharts to describe hourly occupancy profiles.The best solution with one parameter returned an error of 12%, by using two parameters an error of 10%. Models with three parameters showed errors of less than 10%, accuracy did not improve significantly by adding the fourth parameter. (C) 2019 Elsevier B.V. All rights reserved.
机译:在办公室中建立了一个实验装置,目的是通过监视占用状态,气温,相对湿度,CO2,VOC,门窗打开和用电量来获取有关占用模式的信息。应用了启发式方法:基于逻辑流程图的聚类分析和模型。在地面真实占用率数据中进行了聚类分析,以通过考虑不同的时间步长来确定日常占用模式。确定了以每日居住率低且大于40%为标志的聚类。此外,在高占用率群集中,该分析区分了占用率最高的一天低于或大于40%的组。对连续参数应用相同方法来验证传感器复制每个已识别群集的特征的能力。 CO2和电力集群在集群数量,每个集群中的天数和占用百分比方面表现出相似性,此外,基于逻辑流程图在模型中使用连续变量和二元变量来描述每小时的占用情况,返回具有一个参数的最佳解决方案通过使用两个参数,误差为12%,误差为10%。具有三个参数的模型显示的误差小于10%,通过添加第四个参数,准确性没有显着提高。 (C)2019 Elsevier B.V.保留所有权利。

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