Author
Listed:
- Le’an Qu
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Weimeng Zhang
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Wangbing Liu
(Key Laboratory of Jianghuai Arable Land Resources Protection and Eco-Restoration, Anhui Province Institute of Land Surveying and Planning, Hefei 230088, China)
- Junjun Zhi
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Yufan Zhou
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Zijie Zhao
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Yufei Wei
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Wei Jiang
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Jiuxing Wu
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Chen Li
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
- Zuyuan Wang
(School of Geography and Tourism, Anhui Normal University, Wuhu 241002, China)
Abstract
Cultivated land fragmentation (CLF) has evolved from a physical landscape phenomenon into a systemic constraint on agricultural sustainability, especially in rapidly urbanizing regions such as the Yangtze River Delta (YRD). Existing studies are limited by static “snapshot” comparisons that obscure continuous trajectories and by linear models that fail to capture nonlinear interactions and threshold effects. This study integrates the Space–Time Cube (STC) model with an interpretable machine learning framework (Extreme Gradient Boosting–Shapley Additive Explanations, XGBoost–SHAP) to explore the spatiotemporal dynamics and driving mechanisms of CLF in the YRD (1990–2020) at a 1 km 2 resolution. The STC identifies a distinct north–south gradient, with persistent hotspots in low-lying plains and intensifying fragmentation at peri-urban interfaces. SHAP interpretation suggests a “Base–Stabilizer–Amplifier” structure in the modeled relationships: hydrological accessibility and soil fertility form the dominant background linked to higher CLF, whereas topography correlates with lower CLF, and socioeconomic variables exhibit nonlinear, threshold-like increases in fragmentation beyond higher development levels. Overall, CLF reflects coupled natural–anthropogenic interactions with pronounced nonlinear responses. This mechanism-oriented framework provides actionable guidance for adaptive farmland governance. It also offers a transferable methodology for analyzing land system changes in other deltaic agricultural regions worldwide.
Suggested Citation
Le’an Qu & Weimeng Zhang & Wangbing Liu & Junjun Zhi & Yufan Zhou & Zijie Zhao & Yufei Wei & Wei Jiang & Jiuxing Wu & Chen Li & Zuyuan Wang, 2026.
"Unraveling the Spatiotemporal Dynamics and Nonlinear Driving Mechanisms of Cultivated Land Fragmentation: An Interpretable Machine Learning Approach,"
Land, MDPI, vol. 15(2), pages 1-18, February.
Handle:
RePEc:gam:jlands:v:15:y:2026:i:2:p:353-:d:1869289
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