土工基础 ›› 2025, Vol. 39 ›› Issue (6): 908-912.

• 专题论述 • 上一篇    下一篇

深度学习桩基础极限承载力组合预测方法研究

朱乃江,梁仕超,樊世远,刘志强   

  1. (中冀建勘集团有限公司,石家庄 050227)
  • 收稿日期:2023-10-10 修回日期:2023-11-01 出版日期:2025-12-31 发布日期:2026-01-31
  • 作者简介:朱乃江(1991-),男,工程师,研究方向为岩土工程施工等。

Deep Learning of Combined Predictions of Pile Ultimate Axial Capacity

ZHU Naijiang, LIANG Shichao, FAN Shiyuan, LIU Zhiqiang   

  1. (China Hebei Construction & Geotechnical Investigation Group Co. Ltd., Shijiazhuang 050227)
  • Received:2023-10-10 Revised:2023-11-01 Online:2025-12-31 Published:2026-01-31

摘要: 为获得桩基础承载力预测的高精度模型,基于组合预测的思想,以长短期记忆神经网络模型(LSTM)和深度信念网络模型(DBN)为基础,构建组合预测模型,同时基于缎蓝园丁鸟优化算法(SBO)、北方鹰优化算法(DGO)、布谷鸟优化算法(CSA)对组合模型进行改进,以进一步提高模型精度,结果表明:不同模型模拟的桩基础Q~S曲线变化趋势基本一致,其中SBO-DBN-LSTM模拟值与实测值的拟合效果最优;当模型输入参数为5时,模型精度普遍较高,当模型输入参数为4时,虽然精度有所降低,但仍能满足估算要求,SBO-DBN-LSTM模型在不同参数输入下均可保证较高的精度,可推荐用于预测桩基础承载力。

关键词: 桩基础承载力, 组合预测, 长短期记忆神经网络, 深度信念网络, 缎蓝园丁鸟优化算法

Abstract: To obtain a high-precision model for the axial capacity prediction of piles, in this paper, a combined prediction model based on the idea of combining prediction with the long-term and short-term memory neural network model (LSTM) and deep belief network model (DBN) is established. The combined model was further improved based on the Satin blue bowerbird optimization algorithm (SBO), Northern Eagle optimization algorithm (DGO) and Cuckoo optimization algorithm (CSA) to further improve the accuracy of the model. The results showed that: The Q-S curve of piles simulated by different models showed the same trend, and the fitting effect of SBO-DBN-LSTM model between the simulated and the measured values was the best. When the input parameters of the model were 5, the accuracy of the model was generally high; when the input parameters of the model are 4, although the accuracy is reduced, it can still meet the estimation requirements. The SBO-DBN-LSTM models can guarantee high accuracy under different input parameters and can be recommended for predicting the axial capacity of piles.

Key words: Axial Capacity of Piles, Combined Prediction, Long-Term and Short-Term Memory Neural Network, Deep Belief network, Satin Blue Bowerbird Optimization Algorithm

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