Creating a Dataset Used for Applying Machine Learning Techniques to Accurately Forecast the Energy Cost in Home-Based Small Businesses.

Edwin Arrey Agbor,Yanzhen Qu

CSCI(2022)

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摘要
A systematic approach to creating datasets for applying machine learning techniques to forecast the energy cost in home-based small businesses accurately remains a primary requirement in this practice. However, a ready-to-use dataset remains a significant challenge when performing energy cost forecasting in home-based small businesses. Unfortunately, much research has not been conducted to address this issue directly despite its recurrence in real-world applications. The CRMDV approach proposed in this study is designed to provide a framework for creating a ready-to-use time series dataset that can be leveraged via machine learning techniques to forecast the energy cost in home-based small businesses accurately.
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关键词
time series datasets,resampling,merging datasets,data-driven decision making,data transformation,machine learning
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