Indirect Determination Approach of Blast-Induced Ground Vibration Based on a Hybrid SSA-Optimized GP-Based Technique

The accurate determination of blast-induced ground vibration has an important significance in protecting human activities and the surrounding environment. For evaluating the peak particle velocity resulting from the quarry blast, a robust artificial intelligence system combined with the salp swarm a...

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Main Authors: Zhaoxin Jiang, Hongyan Xu, Hui Chen, Bei Gao, Shijie Jia, Zhi Yu, Jian Zhou
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Advances in Civil Engineering
Online Access:http://dx.doi.org/10.1155/2021/6694918
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spelling doaj-a94535f7a1ab4a1b80347c2c9f261a312021-03-29T00:08:53ZengHindawi LimitedAdvances in Civil Engineering1687-80942021-01-01202110.1155/2021/6694918Indirect Determination Approach of Blast-Induced Ground Vibration Based on a Hybrid SSA-Optimized GP-Based TechniqueZhaoxin Jiang0Hongyan Xu1Hui Chen2Bei Gao3Shijie Jia4Zhi Yu5Jian Zhou6Xinjiang Xuefeng Sci-Tech (Group) Co., Ltd.Xinjiang Xuefeng Blasting Engineering Co., Ltd.School of Geology and Mines EngineeringXinjiang Xuefeng Blasting Engineering Co., Ltd.Xinjiang Xuefeng Blasting Engineering Co., Ltd.School of Resources and Safety EngineeringSchool of Resources and Safety EngineeringThe accurate determination of blast-induced ground vibration has an important significance in protecting human activities and the surrounding environment. For evaluating the peak particle velocity resulting from the quarry blast, a robust artificial intelligence system combined with the salp swarm algorithm (SSA) and Gaussian process (GP) was proposed, and the SSA was used to find the optimal hyperparameters of the GP here. In this regard, 88 datasets with 9 variables including the ratio of bench height to burden (H/B) and the ratio of spacing to burden (S/B) were selected as the input variables, while peak particle velocity (PPV) was measured. Then, an ANN model, an SVR model, a GP model, an SSA-GP model, and three empirical models were established, and the predictive performance was evaluated by using the root-mean-square error (RMSE), determination coefficient (R2), value account for (VAF), Akaike Information Criterion (AIC), Schwarz Bayesian Criterion (SBC), and the run time. After comparing, it is found that the proposed SSA-GP yielded a superior performance and the ratio of bench height to burden (H/B) was the most sensitive variable.http://dx.doi.org/10.1155/2021/6694918
collection DOAJ
language English
format Article
sources DOAJ
author Zhaoxin Jiang
Hongyan Xu
Hui Chen
Bei Gao
Shijie Jia
Zhi Yu
Jian Zhou
spellingShingle Zhaoxin Jiang
Hongyan Xu
Hui Chen
Bei Gao
Shijie Jia
Zhi Yu
Jian Zhou
Indirect Determination Approach of Blast-Induced Ground Vibration Based on a Hybrid SSA-Optimized GP-Based Technique
Advances in Civil Engineering
author_facet Zhaoxin Jiang
Hongyan Xu
Hui Chen
Bei Gao
Shijie Jia
Zhi Yu
Jian Zhou
author_sort Zhaoxin Jiang
title Indirect Determination Approach of Blast-Induced Ground Vibration Based on a Hybrid SSA-Optimized GP-Based Technique
title_short Indirect Determination Approach of Blast-Induced Ground Vibration Based on a Hybrid SSA-Optimized GP-Based Technique
title_full Indirect Determination Approach of Blast-Induced Ground Vibration Based on a Hybrid SSA-Optimized GP-Based Technique
title_fullStr Indirect Determination Approach of Blast-Induced Ground Vibration Based on a Hybrid SSA-Optimized GP-Based Technique
title_full_unstemmed Indirect Determination Approach of Blast-Induced Ground Vibration Based on a Hybrid SSA-Optimized GP-Based Technique
title_sort indirect determination approach of blast-induced ground vibration based on a hybrid ssa-optimized gp-based technique
publisher Hindawi Limited
series Advances in Civil Engineering
issn 1687-8094
publishDate 2021-01-01
description The accurate determination of blast-induced ground vibration has an important significance in protecting human activities and the surrounding environment. For evaluating the peak particle velocity resulting from the quarry blast, a robust artificial intelligence system combined with the salp swarm algorithm (SSA) and Gaussian process (GP) was proposed, and the SSA was used to find the optimal hyperparameters of the GP here. In this regard, 88 datasets with 9 variables including the ratio of bench height to burden (H/B) and the ratio of spacing to burden (S/B) were selected as the input variables, while peak particle velocity (PPV) was measured. Then, an ANN model, an SVR model, a GP model, an SSA-GP model, and three empirical models were established, and the predictive performance was evaluated by using the root-mean-square error (RMSE), determination coefficient (R2), value account for (VAF), Akaike Information Criterion (AIC), Schwarz Bayesian Criterion (SBC), and the run time. After comparing, it is found that the proposed SSA-GP yielded a superior performance and the ratio of bench height to burden (H/B) was the most sensitive variable.
url http://dx.doi.org/10.1155/2021/6694918
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