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Parameter Inversion of Slip Zone Soil Based on Adaptive Sampling and Surrogate Models[J]. Chinese Journal of Geotechnical Engineering. DOI: 10.11779/CJGE20241295
Citation: Parameter Inversion of Slip Zone Soil Based on Adaptive Sampling and Surrogate Models[J]. Chinese Journal of Geotechnical Engineering. DOI: 10.11779/CJGE20241295

Parameter Inversion of Slip Zone Soil Based on Adaptive Sampling and Surrogate Models

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  • Received Date: December 29, 2024
  • Available Online: July 10, 2025
  • To solve the shortcomings of sampling methods for constructing training dataset of surrogate models in current inverse analysis, this study introduces the CV-Voronoi adaptive sequential sampling method for generating training samples. Moreover, the sparrow search algorithm (SSA) is employed to optimize the twin support vector regression (TSVR) model, and the SSA-TSVR surrogate model is then generated. Based on the adaptive sequential sampling method and SSA-TSVR model, using SSA as the optimization algorithm, a new inversion technique is proposed. Using the shear strength parameter inversion of the Baishui River landslide slip zone soil as an example, the new inversion method was validated through engineering application. The effects of different sample generation methods (adaptive sequential sampling, orthogonal design, and uniform design) and surrogate models (SVR, TSVR, SSA-SVR, and SSA-TSVR) on the inversion results were compared. The results showed that the adaptive sequential sampling method has a significant advantage, reducing the inversion error by more than half. This method not only significantly improves the inversion performance, but also achieves higher accuracy with fewer samples. The SSA-TSVR surrogate model offers higher inversion accuracy and computational speed, providing a new approach for inversion analysis of geotechnical engineering mechanical parameters.

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