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Open access Jul 2026

Quantitative prediction of differential settlement based on machine learning techniques.

A data-driven machine learning framework to accurately predict differential settlement at the junction of existing and new embankments is developed, offering a tool for rapid performance prediction and damage assessment that significantly outperforms conventional simulation-based methods in speed and efficiency.

Shaista Jabeen Abbasi, Hu Minqjie, Xiaolin Weng et al. · 0 citations