Land subsidence analysis along high-speed railway based on EEMD-Prophet method
Qiu Dongwei,
Tong Yuci,
Wang Yuzheng
et al.
Abstract:Environmental changes and ground subsidence along railway lines are serious concerns during high-speed railway operations. It is worth noting that AutoRegressive Integrated Moving Average (ARMA), Long Short-Term Memory (LSTM), and other prediction methods may present limitations when applied to predict InSAR time series results. To address this issue, this study proposes a prediction method that decomposes the nonlinear settlement time series of feature points obtained through InSAR technology using Ensemble E… Show more
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