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2021 | OriginalPaper | Chapter

I-80 Closures: An Autonomous Machine Learning Approach

Authors : Clay Carper, Aaron McClellan, Craig C. Douglas

Published in: Computational Science – ICCS 2021

Publisher: Springer International Publishing

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Abstract

Road closures due to adverse and severe weather continue to affect Wyoming due to hazardous driving conditions and temporarily suspending interstate commerce. The mountain ranges and elevation in Wyoming makes generating accurate predictions challenging, both from a meteorological and machine learning stand point. In a continuation of prior research, we investigate the 80 km stretch of Interstate-80 between Laramie and Cheyenne using autonomous machine learning to create an improved model that yields a 10% increase in closure prediction accuracy. We explore both serial and parallel implementations run on a supercomputer. We apply auto-sklearn, a popular and well documented autonomous machine learning toolkit, to generate a model utilizing ensemble learning. In the previous study, we applied a linear support vector machine with ensemble learning. We will compare our new found results to previous results.

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Metadata
Title
I-80 Closures: An Autonomous Machine Learning Approach
Authors
Clay Carper
Aaron McClellan
Craig C. Douglas
Copyright Year
2021
DOI
https://doi.org/10.1007/978-3-030-77977-1_22

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