Implementation of Machine Learning Algorithms in Spectral Analysis of Surface Waves (SASW) Inversion

被引:7
|
作者
Mitu, Sadia Mannan [1 ]
Rahman, Norinah Abd. [1 ]
Nayan, Khairul Anuar Mohd [2 ]
Zulkifley, Mohd Asyraf [1 ]
Rosyidi, Sri Atmaja P. [3 ]
机构
[1] Univ Kebangsaan Malaysia, Fac Engn & Built Environm, Bangi Ukm 43600, Malaysia
[2] Virtual Instrument & Syst Innovat Sdn Bhd, Petaling Jaya 47301, Malaysia
[3] Univ Muhammadiyah Yogyakarta, Dept Civil Engn, Jalan Brawijaya Lingkar Selatan, Bantul 55183, Yogyakarta, Indonesia
来源
APPLIED SCIENCES-BASEL | 2021年 / 11卷 / 06期
关键词
spectral analysis of surface wave; inversion; automation; machine learning; SUPPORT VECTOR MACHINE; VELOCITY-MEASUREMENT; CLASSIFICATION; PREDICTION; MODELS; NUMBER; TREE;
D O I
10.3390/app11062557
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
One of the complex processes in spectral analysis of surface waves (SASW) data analysis is the inversion procedure. An initial soil profile needs to be assumed at the beginning of the inversion analysis, which involves calculating the theoretical dispersion curve. If the assumption of the starting soil profile model is not reasonably close, the iteration process might lead to nonconvergence or take too long to be converged. Automating the inversion procedure will allow us to evaluate the soil stiffness properties conveniently and rapidly by means of the SASW method. Multilayer perceptron (MLP), random forest (RF), support vector regression (SVR), and linear regression (LR) algorithms were implemented in order to automate the inversion. For this purpose, the dispersion curves obtained from 50 field tests were used as input data for all of the algorithms. The results illustrated that SVR algorithms could potentially be used to estimate the shear wave velocity of soil.
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页码:1 / 26
页数:24
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