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Short-term load forecasting data with hierarchical advanced metering infrastructure and weather features
- Citation Author(s):
- Submitted by:
- Jie Zhang
- Last updated:
- Tue, 05/17/2022 - 22:17
- DOI:
- 10.21227/jdw5-z996
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- Research Article Link:
- License:
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Abstract
Accurate short-term load forecasting (STLF) plays an increasingly important role in reliable and economical power system operations. This dataset contains The University of Texas at Dallas (UTD) campus load data with 13 buildings, together with 20 weather and calendar features. The dataset spans from 01/01/2014 to 12/31/2015 with an hourly resolution. The dataset is beneficial to various research such as STLF.
Instructions:
The dataset contains two .CSV files.
(1) The file “UTD_weather.csv” contains two-year hourly UTD weather data with 20 weather and calendar features.
(2) The weather data is obtained from the National Solar Radiation Database (NSRDB).
Comments
For college project work
$2000 paywall?? Great for research, keep it up
For academic research project work. Thank you!
For academic research
Need for academic research