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An IoT-Based Smart Building Solution for Indoor Environment Management and Occupants Prediction

机译:用于室内环境管理和占用者预测的基于物联网智能建筑解决方案

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摘要

Smart buildings use Internet of Things (IoT) sensors for monitoring indoor environmental parameters, such as temperature, humidity, luminosity, and air quality. Due to the huge amount of data generated by these sensors, data analytics and machine learning techniques are needed to extract useful and interesting insights, which provide the input for the building optimization in terms of energy-saving, occupants’ health and comfort. In this paper, we propose an IoT-based smart building (SB) solution for indoor environment management, which aims to provide the following main functionalities: monitoring of the room environmental parameters; detection of the number of occupants in the room; a cloud platform where virtual entities collect the data acquired by the sensors and virtual super entities perform data analysis tasks using machine learning algorithms; a control dashboard for the management and control of the building. With our prototype, we collected data for 10 days, and we built two prediction models: a classification model that predicts the number of occupants based on the monitored environmental parameters (average accuracy of 99.5%), and a regression model that predicts the total volatile organic compound (TVOC) values based on the environmental parameters and the number of occupants (Pearson correlation coefficient of 0.939).
机译:智能建筑用的东西(IOT)传感器因特网用于监测室内环境的参数,如温度,湿度,亮度,和空气质量。由于这些传感器产生的数据,数据分析和机器学习技术的大量需要提取有用和有趣的见解,提供了建筑物最优化的投入,节能,居住者的健康和舒适度方面。在本文中,我们提出了一个基于物联网的智能建筑室内环境的管理,其目的是提供以下主要功能(SB)解决方案:监控室内环境参数;检测在房间居住者的数量;云平台,其中虚拟实体收集由传感器和虚拟实体的超级获取的数据使用机器学习算法执行数据分析的任务;管理和建筑控制的控制仪表板。随着我们的原型,我们收集的数据为10天,我们建立了两个预测模型:即预测总挥发性,预测基于居住者的数量的被监测环境参数(99.5%的平均准确度),和回归模型分类模型有机化合物基于环境参数和居住者的数量(0.939 Pearson相关系数)(TVOC)的值。

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