Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market
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Publication Date: | 2023 |
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Format: | Article |
Language: | eng |
Source: | GeSec |
Download full: | https://ojs.revistagesec.org.br/secretariado/article/view/2958 |
Summary: | The aim of this article is to identify how multi-criteria decision support (MCDA) can help investment portfolios in transportation and logistics companies on the stock exchange. To develop this article, a stratification was carried out within BM&FBOVESPA with logistics and transportation companies presented on the Brazilian Stock Exchange. 16 transportation companies in the fundamentus data source. The data was collected from 5 financial indicators, selected according to the Principal Component Analysis (PCA) carried out by Basilio et al. (2018). The CRITIC method was used to generate the weights and normalize the decision matrix and the WASPAS method is used to classify assets. At the end of this stage, it was possible to classify the best alternatives for investing in transportation. After constructing portfolios, it was possible to see which company was most suitable for positive returns on investment. The result is a safe company to invest in logistics and transportation infrastructure in the Brazilian stock market through MCDA analysis and a sensitivity analysis. Research limitations/implications - Since the study is focused only on logistics and transportation companies, the study limited the alternatives with only 15 companies. An investor in transportation infrastructure economics can apply the conclusions of this article to other segments of the stock market. This study presents a methodology by merging the CRITIC method for generating weights and normalization and WASPAS with the normalization of the CRITIC method to build efficient investment portfolios. |
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Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian marketWASPASCRITICPortfolio SelectionMulticriteria Decision MakingThe aim of this article is to identify how multi-criteria decision support (MCDA) can help investment portfolios in transportation and logistics companies on the stock exchange. To develop this article, a stratification was carried out within BM&FBOVESPA with logistics and transportation companies presented on the Brazilian Stock Exchange. 16 transportation companies in the fundamentus data source. The data was collected from 5 financial indicators, selected according to the Principal Component Analysis (PCA) carried out by Basilio et al. (2018). The CRITIC method was used to generate the weights and normalize the decision matrix and the WASPAS method is used to classify assets. At the end of this stage, it was possible to classify the best alternatives for investing in transportation. After constructing portfolios, it was possible to see which company was most suitable for positive returns on investment. The result is a safe company to invest in logistics and transportation infrastructure in the Brazilian stock market through MCDA analysis and a sensitivity analysis. Research limitations/implications - Since the study is focused only on logistics and transportation companies, the study limited the alternatives with only 15 companies. An investor in transportation infrastructure economics can apply the conclusions of this article to other segments of the stock market. This study presents a methodology by merging the CRITIC method for generating weights and normalization and WASPAS with the normalization of the CRITIC method to build efficient investment portfolios.Revista de Gestão e Secretariado2023-10-11info:eu-repo/semantics/articleinfo:eu-repo/semantics/publishedVersionapplication/pdfhttps://ojs.revistagesec.org.br/secretariado/article/view/295810.7769/gesec.v14i10.2958Revista de Gestão e Secretariado (Management and Administrative Professional Review); Vol. 14 No. 10 (2023): Revista de Gestão e Secretariado v.14, n.10, 2023; 17560-17578Revista de Gestão e Secretariado; Vol. 14 Núm. 10 (2023): Revista de Gestão e Secretariado v.14, n.10, 2023; 17560-17578Revista de Gestão e Secretariado; v. 14 n. 10 (2023): Revista de Gestão e Secretariado v.14, n.10, 2023; 17560-175782178-9010reponame:GeSecinstname:Sindicato das Secretárias do Estado de São Paulo (SINSESP)instacron:SINSESPenghttps://ojs.revistagesec.org.br/secretariado/article/view/2958/1724dos Santos, Raphael Nascimentoda Silva, Paulo Afonso Lopesinfo:eu-repo/semantics/openAccess2023-10-12T11:51:35Zoai:ojs2.revistagesec.org.br:article/2958Revistahttps://www.revistagesec.org.br/ONGhttps://ojs.revistagesec.org.br/secretariado/oaieditor@revistagesec.org.br | gestoreditorial@revistagesec.org.br | rf.sabino@gmail.com2178-90102178-9010opendoar:2023-10-12T11:51:35GeSec - Sindicato das Secretárias do Estado de São Paulo (SINSESP)false |
dc.title.none.fl_str_mv |
Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market |
title |
Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market |
spellingShingle |
Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market dos Santos, Raphael Nascimento WASPAS CRITIC Portfolio Selection Multicriteria Decision Making |
title_short |
Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market |
title_full |
Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market |
title_fullStr |
Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market |
title_full_unstemmed |
Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market |
title_sort |
Multicriteria decision support method CRITIC-WASPAS-N in the analysis of transportation companies on the stock exchange in the brazilian market |
author |
dos Santos, Raphael Nascimento |
author_facet |
dos Santos, Raphael Nascimento da Silva, Paulo Afonso Lopes |
author_role |
author |
author2 |
da Silva, Paulo Afonso Lopes |
author2_role |
author |
dc.contributor.author.fl_str_mv |
dos Santos, Raphael Nascimento da Silva, Paulo Afonso Lopes |
dc.subject.por.fl_str_mv |
WASPAS CRITIC Portfolio Selection Multicriteria Decision Making |
topic |
WASPAS CRITIC Portfolio Selection Multicriteria Decision Making |
description |
The aim of this article is to identify how multi-criteria decision support (MCDA) can help investment portfolios in transportation and logistics companies on the stock exchange. To develop this article, a stratification was carried out within BM&FBOVESPA with logistics and transportation companies presented on the Brazilian Stock Exchange. 16 transportation companies in the fundamentus data source. The data was collected from 5 financial indicators, selected according to the Principal Component Analysis (PCA) carried out by Basilio et al. (2018). The CRITIC method was used to generate the weights and normalize the decision matrix and the WASPAS method is used to classify assets. At the end of this stage, it was possible to classify the best alternatives for investing in transportation. After constructing portfolios, it was possible to see which company was most suitable for positive returns on investment. The result is a safe company to invest in logistics and transportation infrastructure in the Brazilian stock market through MCDA analysis and a sensitivity analysis. Research limitations/implications - Since the study is focused only on logistics and transportation companies, the study limited the alternatives with only 15 companies. An investor in transportation infrastructure economics can apply the conclusions of this article to other segments of the stock market. This study presents a methodology by merging the CRITIC method for generating weights and normalization and WASPAS with the normalization of the CRITIC method to build efficient investment portfolios. |
publishDate |
2023 |
dc.date.none.fl_str_mv |
2023-10-11 |
dc.type.driver.fl_str_mv |
info:eu-repo/semantics/article info:eu-repo/semantics/publishedVersion |
format |
article |
status_str |
publishedVersion |
dc.identifier.uri.fl_str_mv |
https://ojs.revistagesec.org.br/secretariado/article/view/2958 10.7769/gesec.v14i10.2958 |
url |
https://ojs.revistagesec.org.br/secretariado/article/view/2958 |
identifier_str_mv |
10.7769/gesec.v14i10.2958 |
dc.language.iso.fl_str_mv |
eng |
language |
eng |
dc.relation.none.fl_str_mv |
https://ojs.revistagesec.org.br/secretariado/article/view/2958/1724 |
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.publisher.none.fl_str_mv |
Revista de Gestão e Secretariado |
publisher.none.fl_str_mv |
Revista de Gestão e Secretariado |
dc.source.none.fl_str_mv |
Revista de Gestão e Secretariado (Management and Administrative Professional Review); Vol. 14 No. 10 (2023): Revista de Gestão e Secretariado v.14, n.10, 2023; 17560-17578 Revista de Gestão e Secretariado; Vol. 14 Núm. 10 (2023): Revista de Gestão e Secretariado v.14, n.10, 2023; 17560-17578 Revista de Gestão e Secretariado; v. 14 n. 10 (2023): Revista de Gestão e Secretariado v.14, n.10, 2023; 17560-17578 2178-9010 reponame:GeSec instname:Sindicato das Secretárias do Estado de São Paulo (SINSESP) instacron:SINSESP |
instname_str |
Sindicato das Secretárias do Estado de São Paulo (SINSESP) |
instacron_str |
SINSESP |
institution |
SINSESP |
reponame_str |
GeSec |
collection |
GeSec |
repository.name.fl_str_mv |
GeSec - Sindicato das Secretárias do Estado de São Paulo (SINSESP) |
repository.mail.fl_str_mv |
editor@revistagesec.org.br | gestoreditorial@revistagesec.org.br | rf.sabino@gmail.com |
_version_ |
1838625562508132352 |