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Investigating Energy-Saving Potentials in the Cloud

机译:调查云中的节能潜力

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摘要

Collecting webpage messages can serve as a sensor for investigating the energy-saving potential of buildings. Focusing on stores, a cloud sensor system is developed to collect data and determine their energy-saving potential. The owner of a store under investigation must register online, report the store address, area, and the customer ID number on the electric meter. The cloud sensor system automatically surveys the energy usage records by connecting to the power company website and calculating the energy use index (EUI) of the store. Other data includes the chain store check, company capital, location price, and the influence of weather conditions on the store; even the exposure frequency of store under investigation may impact the energy usage collected online. After collecting data from numerous stores, a multi-dimensional data array is constructed to determine energy-saving potential by identifying stores with similarity conditions. Similarity conditions refer to analyzed results that indicate that two stores have similar capital, business scale, weather conditions, and exposure frequency on web. Calculating the EUI difference or pure technical efficiency of stores, the energy-saving potential is determined. In this study, a real case study is performed. An 8-dimensional (8D) data array is constructed by surveying web data related to 67 stores. Then, this study investigated the savings potential of the 33 stores, using a site visit, and employed the cloud sensor system to determine the saving potential. The case study results show good agreement between the data obtained by the site visit and the cloud investigation, with errors within 4.17%. Among 33 the samples, eight stores have low saving potentials of less than 5%. The developed sensor on the cloud successfully identifies them as having low saving potential and avoids wasting money on the site visit.
机译:收集网页消息可以用作调查建筑物节能潜力的传感器。针对商店,开发了云传感器系统以收集数据并确定其节能潜力。被调查商店的所有者必须在线注册,并在电表上报告商店地址,区域和客户ID号。云传感器系统通过连接到电力公司的网站并计算商店的能源使用指数(EUI),自动调查能源使用记录。其他数据包括连锁店支票,公司资本,位置价格以及天气状况对商店的影响;即使被调查商店的曝光频率也可能会影响在线收集的能源使用。从众多商店收集数据后,将构建一个多维数据阵列,通过识别具有相似条件的商店来确定节能潜力。相似条件是指分析结果,表明两个商店的资本,业务规模,天气条件和网络曝光频率相似。通过计算商店的EUI差异或纯技术效率,可以确定节能潜力。在这项研究中,进行了实际案例研究。通过调查与67家商店有关的Web数据来构建8维(8D)数据阵列。然后,本研究通过现场访问调查了33家商店的储蓄潜力,并使用云传感器系统确定了储蓄潜力。案例研究结果表明,通过现场访问获得的数据与云调查之间的一致性很好,误差在4.17%之内。在33个样本中,有8家商店的储蓄潜力低于5%。在云端开发的传感器可以成功地将其识别为具有较低的节省潜力,并避免在现场访问时浪费金钱。

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