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도로 및 기상조건을 고려한 노면온도변화 패턴 추정 모형 개발Developing Models for Patterns of Road Surface Temperature Change using Road and Weather Conditions

Other Titles
Developing Models for Patterns of Road Surface Temperature Change using Road and Weather Conditions
Authors
김진국양충헌김승범윤덕근박재홍
Issue Date
2018
Publisher
한국도로학회
Keywords
machine learning; vehicular ambient temperature; road surface temperature; average absolute error; road type
Citation
한국도로학회논문집, v.20, no.2, pp 127 - 135
Pages
9
Indexed
KCI
Journal Title
한국도로학회논문집
Volume
20
Number
2
Start Page
127
End Page
135
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/12959
ISSN
1738-7159
2287-3678
Abstract
PURPOSES: This study develops various models that can estimate the pattern of road surface temperature changes using machine learning methods. METHODS : Both a thermal mapping system and weather forecast information were employed in order to collect data for developing the models. In previous studies, the authors defined road surface temperature data as a response, while vehicular ambient temperature, air temperature, and humidity were considered as predictors. In this research, two additional factors-road type and weather forecasts-were considered for the estimation of the road surface temperature change pattern. Finally, a total of six models for estimating the pattern of road surface temperature changes were developed using the MATLAB program, which provides the classification learner as a machine learning tool. RESULTS: Model 5 was considered the most superior owing to its high accuracy. It was seen that the accuracy of the model could increase when weather forecasts (e.g., Sky Status) were applied. A comparison between Models 4 and 5 showed that the influence of humidity on road surface temperature changes is negligible. CONCLUSIONS: Even though Models 4, 5, and 6 demonstrated the same performance in terms of average absolute error (AAE), Model 5 can be considered the optimal one from the point of view of accuracy.
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