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Operating Points as Communication Bridge between Energy Evaluation with Air Temperature and Velocity based on Extreme Learning Machine (ELM) Models

机译:基于极端学习机(ELM)型号的空气温度和速度与空气温度和速度之间的通信桥

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This paper aims to evaluate the high energy demand components in the buildings, such as HVAC system, with respect to the indoor environmental parameters, such as ambient air temperature and velocity. The Extreme Learning Machine (ELM) was chosen to be trained from the experimental data in the thermal laboratory due to its accuracy and less computational complexity from many previous researches and studies. Therefore the given physical environmental parameters are able to be predicting the energy consumptions level from the ELM model of Air Handling Unit (AHU) of HVAC systems.
机译:本文旨在评估建筑物中的高能量需求组件,例如HVAC系统,相对于室内环境参数,例如环境空气温度和速度。选择极端的学习机(ELM),从热实验室的实验数据中选择培训,因为其精确度和较少的计算复杂性来自许多以前的研究和研究。因此,给定的物理环境参数能够预测HVAC系统的空气处理单元(AHU)的ELM模型的能量消耗水平。

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