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首页> 外文期刊>E3S Web of Conferences >Computer Vision-based Reader for analogue Energy/Water Meters in low-cost embedded System: a Case Study in an Office Building in Scotland
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Computer Vision-based Reader for analogue Energy/Water Meters in low-cost embedded System: a Case Study in an Office Building in Scotland

机译:基于计算机视觉读者的低成本嵌入式系统模拟能量/水表:苏格兰办公楼的案例研究

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摘要

Implementation of cost-effective energy conservation measures (ECMs) is expected to generate up to 18% of carbon emissions reductions in office buildings. In order to determine adequate ECMs for a specific building, operational data is required. However, buildings generally lack operational data in the form of time series that can limit a breath of analysis required for determining adequate ECMs. Energy time-series data is commonly lacking in the UK due to uneven availability of smart meters (heat, gas, water), security restrictions in Energy Information Systems (EIS) and building management systems (BMS), restrictions and costs associated for automated reporting from utility companies, etc. This work presents a non-intrusive computer vision-based reader to generate energy readings at 10-minute resolution using a Raspberry-Pi, a traditional webcam and an LED light. OpenCV, an open source computer vision library, is used to detect and interpret numeric values from a heat meter, which are in turn uploaded to a cloud-based energy platform to create a complete operational data set enabling detailed analytics, fault detection and diagnostics (FDD) and model calibration. A case study of an office building in Scotland is presented. The building has a heat meter with no remote access capabilities. The accuracy of the method, i.e. the ability of the script to accurately derive the rate of change between readings, resulted on a 92% percent during a test done for 100 samples. Recommendations for accuracy improvements are included in the conclusions.
机译:预计经济效益节能措施(ECM)的实施将在办公楼中产生高达18%的碳排放量。为了确定特定建筑物的适当ECM,需要操作数据。然而,建筑物通常以时间序列的形式缺乏运营数据,这可以限制确定适当ECM所需的分析呼吸。由于智能仪表(热,天然气,水),能源信息系统(EIS)和建筑物管理系统(BMS)的安全限制,安全限制,对自动报告相关的限制和成本,能量时序数据通常缺乏英国缺乏来自公用事业公司等。这项工作介绍了一个非侵入式计算机视觉读者,使用覆盆子-PI,传统的网络摄像头和LED灯以10分钟的分辨率产生能量读数。 OpenCV是一个开源计算机视觉库,用于检测和解释来自热量表的数值,又将上传到基于云的能量平台,以创建完整的操作数据集,实现详细的分析,故障检测和诊断( FDD)和模型校准。提出了对苏格兰办公楼的案例研究。该建筑的热量表不具有远程访问功能。方法的准确性,即脚本准确得出读数之间变化率的能力,导致100个样本的测试期间的92%。准确性改进的建议包括在结论中。

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