Evaluation of rock slope stability conditions through discriminant analysis.
Autor(a) principal: | |
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Data de Publicação: | 2018 |
Outros Autores: | , , , , , |
Tipo de documento: | Artigo |
Idioma: | eng |
Título da fonte: | Repositório Institucional da UFOP |
Texto Completo: | http://www.repositorio.ufop.br/handle/123456789/11109 |
Resumo: | A methodology to predict the stability status of mine rock slopes is proposed. Two techniques of multivariate statistics are used: principal component analysis and discriminant analysis. Firstly, principal component analysis was applied in order to change the original qualitative variables into quantitative ones, as well as to reduce data dimensionality. Then, a boosting procedure was used to optimize the resulting function by the application of discriminant analysis in the principal components. In this research two analyses were performed. In the first analysis two conditions of slope stability were considered: stable and unstable. In the second analysis three conditions of slope stability were considered: stable, overall failure and failure in set of benches. A comprehensive geotechnical database consisting of 18 variables measured in 84 pit-walls all over the world was used to validate the methodology. The discriminant function was validated by two different procedures, internal and external validations. Internal validation presented an overall probability of success of 94.73% in the first analysis and 68.42% in the second analysis. In the second analysis the main source of errors was due to failure in set of benches. In external validation, the discriminant function was able to classify all slopes correctly, in analysis with two conditions of slope stability. In the external validation in the analysis with three conditions of slope stability, the discriminant function was able to classify six slopes correctly of a total of nine slopes. The proposed methodology provides a powerful tool for rock slope hazard assessment in open-pit mines. |
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Evaluation of rock slope stability conditions through discriminant analysis.Multivariate statisticsPrincipal component analysisBoosting techniqueA methodology to predict the stability status of mine rock slopes is proposed. Two techniques of multivariate statistics are used: principal component analysis and discriminant analysis. Firstly, principal component analysis was applied in order to change the original qualitative variables into quantitative ones, as well as to reduce data dimensionality. Then, a boosting procedure was used to optimize the resulting function by the application of discriminant analysis in the principal components. In this research two analyses were performed. In the first analysis two conditions of slope stability were considered: stable and unstable. In the second analysis three conditions of slope stability were considered: stable, overall failure and failure in set of benches. A comprehensive geotechnical database consisting of 18 variables measured in 84 pit-walls all over the world was used to validate the methodology. The discriminant function was validated by two different procedures, internal and external validations. Internal validation presented an overall probability of success of 94.73% in the first analysis and 68.42% in the second analysis. In the second analysis the main source of errors was due to failure in set of benches. In external validation, the discriminant function was able to classify all slopes correctly, in analysis with two conditions of slope stability. In the external validation in the analysis with three conditions of slope stability, the discriminant function was able to classify six slopes correctly of a total of nine slopes. The proposed methodology provides a powerful tool for rock slope hazard assessment in open-pit mines.2019-04-24T10:52:32Z2019-04-24T10:52:32Z2018info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/articleapplication/pdfSANTOS, A. E. M. et al. Evaluation of rock slope stability conditions through discriminant analysis. REM - International Engineering Journal, v. 72, p. 161-166, 2019. Disponível em: <http://www.scielo.br/scielo.php?script=sci_arttext&pid=S2448-167X2019000100161>. Acesso em: 12 fev. 2019.1807-0353http://www.repositorio.ufop.br/handle/123456789/11109A REM - International Engineering Journal - autoriza o depósito de cópia de artigos dos professores e alunos da UFOP no Repositório Institucional da UFOP. Licença concedida mediante preenchimento de formulário online em: 12 set. 2013.info:eu-repo/semantics/openAccessSantos, Allan Erlikhman MedeirosLana, Milene SabinoCabral, Ivo EyerPereira, Tiago MartinsNaghadehi, Masoud ZareSilva, Denise de Fátima Santos daSantos, Tatiana Barreto dosengreponame:Repositório Institucional da UFOPinstname:Universidade Federal de Ouro Preto (UFOP)instacron:UFOP2019-04-24T10:52:32Zoai:repositorio.ufop.br:123456789/11109Repositório InstitucionalPUBhttp://www.repositorio.ufop.br/oai/requestrepositorio@ufop.edu.bropendoar:32332019-04-24T10:52:32Repositório Institucional da UFOP - Universidade Federal de Ouro Preto (UFOP)false |
dc.title.none.fl_str_mv |
Evaluation of rock slope stability conditions through discriminant analysis. |
title |
Evaluation of rock slope stability conditions through discriminant analysis. |
spellingShingle |
Evaluation of rock slope stability conditions through discriminant analysis. Santos, Allan Erlikhman Medeiros Multivariate statistics Principal component analysis Boosting technique |
title_short |
Evaluation of rock slope stability conditions through discriminant analysis. |
title_full |
Evaluation of rock slope stability conditions through discriminant analysis. |
title_fullStr |
Evaluation of rock slope stability conditions through discriminant analysis. |
title_full_unstemmed |
Evaluation of rock slope stability conditions through discriminant analysis. |
title_sort |
Evaluation of rock slope stability conditions through discriminant analysis. |
author |
Santos, Allan Erlikhman Medeiros |
author_facet |
Santos, Allan Erlikhman Medeiros Lana, Milene Sabino Cabral, Ivo Eyer Pereira, Tiago Martins Naghadehi, Masoud Zare Silva, Denise de Fátima Santos da Santos, Tatiana Barreto dos |
author_role |
author |
author2 |
Lana, Milene Sabino Cabral, Ivo Eyer Pereira, Tiago Martins Naghadehi, Masoud Zare Silva, Denise de Fátima Santos da Santos, Tatiana Barreto dos |
author2_role |
author author author author author author |
dc.contributor.author.fl_str_mv |
Santos, Allan Erlikhman Medeiros Lana, Milene Sabino Cabral, Ivo Eyer Pereira, Tiago Martins Naghadehi, Masoud Zare Silva, Denise de Fátima Santos da Santos, Tatiana Barreto dos |
dc.subject.por.fl_str_mv |
Multivariate statistics Principal component analysis Boosting technique |
topic |
Multivariate statistics Principal component analysis Boosting technique |
description |
A methodology to predict the stability status of mine rock slopes is proposed. Two techniques of multivariate statistics are used: principal component analysis and discriminant analysis. Firstly, principal component analysis was applied in order to change the original qualitative variables into quantitative ones, as well as to reduce data dimensionality. Then, a boosting procedure was used to optimize the resulting function by the application of discriminant analysis in the principal components. In this research two analyses were performed. In the first analysis two conditions of slope stability were considered: stable and unstable. In the second analysis three conditions of slope stability were considered: stable, overall failure and failure in set of benches. A comprehensive geotechnical database consisting of 18 variables measured in 84 pit-walls all over the world was used to validate the methodology. The discriminant function was validated by two different procedures, internal and external validations. Internal validation presented an overall probability of success of 94.73% in the first analysis and 68.42% in the second analysis. In the second analysis the main source of errors was due to failure in set of benches. In external validation, the discriminant function was able to classify all slopes correctly, in analysis with two conditions of slope stability. In the external validation in the analysis with three conditions of slope stability, the discriminant function was able to classify six slopes correctly of a total of nine slopes. The proposed methodology provides a powerful tool for rock slope hazard assessment in open-pit mines. |
publishDate |
2018 |
dc.date.none.fl_str_mv |
2018 2019-04-24T10:52:32Z 2019-04-24T10:52:32Z |
dc.type.status.fl_str_mv |
info:eu-repo/semantics/publishedVersion |
dc.type.driver.fl_str_mv |
info:eu-repo/semantics/article |
format |
article |
status_str |
publishedVersion |
dc.identifier.uri.fl_str_mv |
SANTOS, A. E. M. et al. Evaluation of rock slope stability conditions through discriminant analysis. REM - International Engineering Journal, v. 72, p. 161-166, 2019. Disponível em: <http://www.scielo.br/scielo.php?script=sci_arttext&pid=S2448-167X2019000100161>. Acesso em: 12 fev. 2019. 1807-0353 http://www.repositorio.ufop.br/handle/123456789/11109 |
identifier_str_mv |
SANTOS, A. E. M. et al. Evaluation of rock slope stability conditions through discriminant analysis. REM - International Engineering Journal, v. 72, p. 161-166, 2019. Disponível em: <http://www.scielo.br/scielo.php?script=sci_arttext&pid=S2448-167X2019000100161>. Acesso em: 12 fev. 2019. 1807-0353 |
url |
http://www.repositorio.ufop.br/handle/123456789/11109 |
dc.language.iso.fl_str_mv |
eng |
language |
eng |
dc.rights.driver.fl_str_mv |
info:eu-repo/semantics/openAccess |
eu_rights_str_mv |
openAccess |
dc.format.none.fl_str_mv |
application/pdf |
dc.source.none.fl_str_mv |
reponame:Repositório Institucional da UFOP instname:Universidade Federal de Ouro Preto (UFOP) instacron:UFOP |
instname_str |
Universidade Federal de Ouro Preto (UFOP) |
instacron_str |
UFOP |
institution |
UFOP |
reponame_str |
Repositório Institucional da UFOP |
collection |
Repositório Institucional da UFOP |
repository.name.fl_str_mv |
Repositório Institucional da UFOP - Universidade Federal de Ouro Preto (UFOP) |
repository.mail.fl_str_mv |
repositorio@ufop.edu.br |
_version_ |
1813002801010180096 |