A Data-Driven Framework for Characterizing Nonlinear Responses of River Ice Growth and Decay in the Shisifenzi Reach of the Upper Yellow River
The Shisifenzi Reach, with its sharp curvature, serves as a prime observational target for river ice research in the Upper Yellow River. Using six winter seasons (2020–2026) of monitoring data, this study developed a Random Forest with SHAP and Accumulated Local Effects (ALE) to characterize nonlinear responses river ice growth and decay to 26 hydro-thermal features. Distinctive contributions are: (1) The 30-day cumulative freezing degree-hours is the dominant driver, and a threshold near 4000 °C·h separates slow growth from rapid thickening. (2) Water level elevation, though indirect, shows an obvious nonlinear link: ice is thickest when it stays in the 988.5–989 m range; above this, the ALE effect drops—often because flow velocity disturbance is slight in the range of 988.5–989 m and high water level mainly coincides with warmer temperature. (3) Short-term thermal features show little effects. Other thermal variables and feature interactions also show saturation. (4) Combining the ALE marginal effect thresholds with observed freeze-up data clarifies the two-stage nonlinear mechanism. In the final decay stage, ice disappears faster than temperature variations alone explain. The data-driven framework provides interpretable, site-specific information useful for river ice management.
Authors
- Yusu Yue
- Ming Luo (ORCID: https://orcid.org/0000-0002-9220-7126)
- Shasha Han (ORCID: https://orcid.org/0000-0002-2036-7112)
- Heli Yu
- Jingwen Wang
- Ziyang Wei
- Lianjun Zhao
- Yu Deng
Institutions
- Sichuan University (CN)
- Zhengzhou University (CN)
- Ministry of Water Resources of the People's Republic of China (CN)
- Yellow River Institute of Hydraulic Research (CN)
- State Key Laboratory of Hydraulics and Mountain River Engineering
- University of Oulu (FI)
Publication Details
- Journal
- Water
- Published
- 2026-09-16
- DOI
- https://doi.org/10.3390/w18182315
- Primary Topic
- Arctic and Antarctic ice dynamics
- Type
- article
- Field-Weighted Citation Impact
- 0.00