DOE OSTI · 1826315
Data-Driven Modeling and Optimization of Building Energy Consumption: a Case Study
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Abstract
Installing sensors and Building Automation Systems (BAS) allows controlling the facility operations while generating data that can be analyzed for model development. This work focuses on data-driven modeling of the building to optimize energy consumption. The City of Orlando aims to reduce its energy consumption so, they provided us access to their BAS for data and studying the operation of its facilities. We selected a mid-size pilot building to conduct data analysis and modeling. We develop an Application Programming Interface (API) to login to the servers and scrape data. The scraped data contains features ranging from environmental conditions to equipment activity. This dataset is a time series so, it's handled in accordance and analyzed to investigate patterns and relations between data points that help choose parameters for predictive models for building and equipment. Finally, the models are optimized to reduce the energy consumption of the facility.
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Grover, Divas, Fallah, Yaser P., Zhou, Qun, Ian LaHiff, P. E.. 2020-08-02. Data-Driven Modeling and Optimization of Building Energy Consumption: a Case Study. https://doi.org/10.1109/pesgm41954.2020.9281663
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