Crack Prediction Based on Wavelet Correlation Analysis Least Squares Support Vector Machine for Stone Cultural Relics

Preventive protection of cultural relics is to make use of all the science and technology beneficial to the research and protection of archaeological heritage to predict the disease of cultural relics. The existing preventive cultural relics protection system has made some achievements in environmen...

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Main Authors: Bao Liu, Fei Ye, Kun Mu, Jingting Wang, Jinyu Zhang
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2021/6638521
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spelling doaj-0c48c22218c6484bab16c43c681c5cd32021-02-15T12:53:08ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472021-01-01202110.1155/2021/66385216638521Crack Prediction Based on Wavelet Correlation Analysis Least Squares Support Vector Machine for Stone Cultural RelicsBao Liu0Fei Ye1Kun Mu2Jingting Wang3Jinyu Zhang4College of Electrical & Control Engineering, Xi’an University of Science and Technology, Xi’an 710054, ChinaCollege of Electrical & Control Engineering, Xi’an University of Science and Technology, Xi’an 710054, ChinaCollege of Electrical & Control Engineering, Xi’an University of Science and Technology, Xi’an 710054, ChinaDepartment of Engineering and Technology, Xi’an Fanyi University, Xi’an 710105, ChinaTengxin Information Technology Service Co., Ltd., High-tech Zone, Yulin 719000, ChinaPreventive protection of cultural relics is to make use of all the science and technology beneficial to the research and protection of archaeological heritage to predict the disease of cultural relics. The existing preventive cultural relics protection system has made some achievements in environmental monitoring, but the analysis and utilization of large data of cultural relics are still insufficient. In this paper, under the idea of multisource information fusion, a least squares support vector machine regression method based on multivariate time series wavelet correlation analysis is proposed to achieve accurate crack prediction of stone cultural relics. Firstly, the correlation of multivariate time series of stone cultural relics are quantitatively analyzed and the validity of characteristic variables of the crack is discriminated by wavelet correlation analysis; then, a least squares support vector machine prediction model is constructed based on the correlation obtained from the analysis; finally, the good performance of the method is verified by using the environmental monitoring data of the rock mass fracture in the North Qianfo Cliff of Dafo Temple in Binzhou City of Shaanxi Province. The experimental results show that the proposed method is more effective than the traditional backpropagation neural network, support vector machine, and relevance vector machine regression methods. This method is universal and easy to implement for multisource data prediction of nonmovable cultural relics diseases. It provides a scientific theoretical reference for the preventive protection of cultural relics.http://dx.doi.org/10.1155/2021/6638521
collection DOAJ
language English
format Article
sources DOAJ
author Bao Liu
Fei Ye
Kun Mu
Jingting Wang
Jinyu Zhang
spellingShingle Bao Liu
Fei Ye
Kun Mu
Jingting Wang
Jinyu Zhang
Crack Prediction Based on Wavelet Correlation Analysis Least Squares Support Vector Machine for Stone Cultural Relics
Mathematical Problems in Engineering
author_facet Bao Liu
Fei Ye
Kun Mu
Jingting Wang
Jinyu Zhang
author_sort Bao Liu
title Crack Prediction Based on Wavelet Correlation Analysis Least Squares Support Vector Machine for Stone Cultural Relics
title_short Crack Prediction Based on Wavelet Correlation Analysis Least Squares Support Vector Machine for Stone Cultural Relics
title_full Crack Prediction Based on Wavelet Correlation Analysis Least Squares Support Vector Machine for Stone Cultural Relics
title_fullStr Crack Prediction Based on Wavelet Correlation Analysis Least Squares Support Vector Machine for Stone Cultural Relics
title_full_unstemmed Crack Prediction Based on Wavelet Correlation Analysis Least Squares Support Vector Machine for Stone Cultural Relics
title_sort crack prediction based on wavelet correlation analysis least squares support vector machine for stone cultural relics
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2021-01-01
description Preventive protection of cultural relics is to make use of all the science and technology beneficial to the research and protection of archaeological heritage to predict the disease of cultural relics. The existing preventive cultural relics protection system has made some achievements in environmental monitoring, but the analysis and utilization of large data of cultural relics are still insufficient. In this paper, under the idea of multisource information fusion, a least squares support vector machine regression method based on multivariate time series wavelet correlation analysis is proposed to achieve accurate crack prediction of stone cultural relics. Firstly, the correlation of multivariate time series of stone cultural relics are quantitatively analyzed and the validity of characteristic variables of the crack is discriminated by wavelet correlation analysis; then, a least squares support vector machine prediction model is constructed based on the correlation obtained from the analysis; finally, the good performance of the method is verified by using the environmental monitoring data of the rock mass fracture in the North Qianfo Cliff of Dafo Temple in Binzhou City of Shaanxi Province. The experimental results show that the proposed method is more effective than the traditional backpropagation neural network, support vector machine, and relevance vector machine regression methods. This method is universal and easy to implement for multisource data prediction of nonmovable cultural relics diseases. It provides a scientific theoretical reference for the preventive protection of cultural relics.
url http://dx.doi.org/10.1155/2021/6638521
work_keys_str_mv AT baoliu crackpredictionbasedonwaveletcorrelationanalysisleastsquaressupportvectormachineforstoneculturalrelics
AT feiye crackpredictionbasedonwaveletcorrelationanalysisleastsquaressupportvectormachineforstoneculturalrelics
AT kunmu crackpredictionbasedonwaveletcorrelationanalysisleastsquaressupportvectormachineforstoneculturalrelics
AT jingtingwang crackpredictionbasedonwaveletcorrelationanalysisleastsquaressupportvectormachineforstoneculturalrelics
AT jinyuzhang crackpredictionbasedonwaveletcorrelationanalysisleastsquaressupportvectormachineforstoneculturalrelics
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