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Occupancy estimation in smart buildings using audio-processing techniques

机译:使用音频处理技术估算智能建筑中的占用率

摘要

In the past few years, several case studies have illustrated that the use of occupancy information in buildings leads to energy-efficient and low-cost HVAC operation. The widely presented techniques for occupancy estimation include temperature, humidity, CO2 concentration, image camera, motion sensor and passive infrared (PIR) sensor. So far little studies have been reported in literature to utilize audio and speech processing as indoor occupancy prediction technique. With rapid advances of audio and speech processing technologies, nowadays it is more feasible and attractive to integrate audio-based signal processing component into smart buildings. In this work, we propose to utilize audio processing techniques (i.e., speaker recognition and background audio energy estimation) to estimate room occupancy (i.e., the number of people inside a room). Theoretical analysis and simulation results demonstrate the accuracy and effectiveness of this proposed occupancy estimation technique. Based on the occupancy estimation, smart buildings will adjust the thermostat setups and HVAC operations, thus, achieving greater quality of service and drastic cost savings.
机译:在过去的几年中,一些案例研究表明,在建筑物中使用占用信息可以实现节能和低成本的HVAC运行。占用率估算的广泛介绍的技术包括温度,湿度,CO2浓度,摄像头,运动传感器和无源红外(PIR)传感器。迄今为止,在文献中很少有研究将音频和语音处理用作室内占用预测技术。随着音频和语音处理技术的飞速发展,如今将基于音频的信号处理组件集成到智能建筑中变得更加可行和有吸引力。在这项工作中,我们建议利用音频处理技术(即说话者识别和背景音频能量估计)来估计房间的占用率(即房间内的人数)。理论分析和仿真结果证明了该拟议的占用估计技术的准确性和有效性。根据占用率估算,智能建筑将调整恒温器设置和HVAC操作,从而实现更高的服务质量并节省大量成本。

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