Archive/Interpretable-Stacking-Based Prediction of Height of Water-Conducting Fractured Zone and Its Applicability Boundary in Weakly Cemented Mining Areas in Western China
Interpretable-Stacking-Based Prediction of Height of Water-Conducting Fractured Zone and Its Applicability Boundary in Weakly Cemented Mining Areas in Western China
Liuwei Sun, Songtao Li, Bo Hu et al.
27 juillet 2026
en

Abstract

The height of a water-conducting fractured zone (WCFZ) is directly related to the design of water-preserved coal mining and water-hazard risk assessment in ecologically fragile mining areas in western China. Existing empirical formulas have limited regional adaptability, and individual machine learning models may show insufficient stability under small-sample and nonlinear data conditions. To address this issue, a heterogeneous Stacking ensemble prediction framework was constructed based on measured data from the Yushen mining area. Mining thickness, working face length, mining method, burial depth, coal seam dip angle, and hard strata proportion coefficient were selected as input variables. The base layer consisted of support vector regression (SVR), classification and regression tree (CART), random forest (RF), extreme gradient boosting (XGBoost), and back-propagation neural network (BPNN), while Ridge regression was used as the meta-learner. Under the current data split, the test set R2, RMSE, MAE, and MAPE of the Stacking model were 0.953, 10.99 m, 8.79 m, and 9.847%, respectively, indicating overall superiority over individual models and other ensemble configurations. The field validation results showed that the relative errors of the model for boreholes LD-1 and LD-2 in the fully mined area were 1.99% and 1.28%, respectively; however, an overestimation of 52.70% occurred for LD-3 in the coal-pillar-adjacent area. This indicates that the model is more suitable for the regional-scale screening of the maximum fractured-zone height and should not be directly used for fine-scale prediction in local boundary-affected zones. SHAP analysis showed that mining thickness, working face length, and hard strata proportion coefficient were the main influencing variables, and their response trends were generally consistent with key-strata control and the transition toward full-mining conditions. This study provides a reference for the rapid prediction of WCFZ height and preliminary evaluation of water-preserved coal mining in weakly cemented mining areas in western China.

IPC Classification

G06H04

Keywords

interpretable-stacking-basedpredictionheightwater-conductingfracturedzoneapplicabilityboundaryweaklycementedminingareaswesternchinaprocesseswcfzdirectlyrelateddesignwater-preservedcoalwater-hazardriskassessment
Citer cette publication

€ 4.00