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
- 김진국; 양충헌; 김승범; 윤덕근; 박재홍
- 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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