评估利用锥入度测试数据识别土壤分层的贝叶斯变化点检测方法

S. Suryasentana, Brian B. Sheil, M. Lawler
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引用次数: 0

摘要

本文利用锥入度试验(CPT)数据,评估了不同的无监督贝叶斯变化点检测(BCPD)方法在识别土层方面的有效性。本文对四种 BCPD 方法进行了比较:一种以前使用过的离线单变量方法,用于通过不排水剪切强度数据检测粘土层;一种新开发的在线单变量方法;一种离线和一种在线多变量方法,旨在同时分析 CPT 的多个数据序列。这些 BCPD 方法的性能使用了一个研究区域的真实 CPT 数据进行了测试,该区域有砂土和粘性土层,测试结果与相邻钻孔勘测的地面实况数据进行了验证。研究结果表明,某些 BCPD 方法比其他方法更适合提供一种稳健、快速和自动化的方法,用于对岩土工程设计至关重要的土壤分层进行无监督检测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Assessment of Bayesian Changepoint Detection Methods for Soil Layering Identification Using Cone Penetration Test Data
This paper assesses the effectiveness of different unsupervised Bayesian changepoint detection (BCPD) methods for identifying soil layers, using data from cone penetration tests (CPT). It compares four types of BCPD methods: a previously utilised offline univariate method for detecting clay layers through undrained shear strength data, a newly developed online univariate method, and an offline and an online multivariate method designed to simultaneously analyse multiple data series from CPT. The performance of these BCPD methods was tested using real CPT data from a study area with layers of sandy and clayey soil, and the results were verified against ground-truth data from adjacent borehole investigations. The findings suggest that some BCPD methods are more suitable than others in providing a robust, quick, and automated approach for the unsupervised detection of soil layering, which is critical for geotechnical engineering design.
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