Sentiment analysis through twitter as a mechanism for assessing university satisfaction

Descripción del Articulo

Currently, the data generated in the university environment related to the perception of satisfaction is generated through surveys with categorical response questions defined on a Likert scale, with factors already defined to be evaluated, applied once per academic semester, which generates very bia...

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Detalles Bibliográficos
Autores: Chamorro-Atalaya, Omar, Arce-Santillan, Dora, Morales-Romero, Guillermo, Ramos-Salazar, Primitiva, León-Velarde, César, Auqui-Ramos, Elizabeth, Levano-Stella, Miguel
Formato: artículo
Fecha de Publicación:2022
Institución:Universidad Peruana de Ciencias Aplicadas
Repositorio:UPC-Institucional
Lenguaje:español
OAI Identifier:oai:repositorioacademico.upc.edu.pe:10757/663436
Enlace del recurso:http://hdl.handle.net/10757/663436
Nivel de acceso:acceso abierto
Materia:Sentiment analysis
Student satisfaction
Teacher performance
Text mining
Virtual learning
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dc.title.es_PE.fl_str_mv Sentiment analysis through twitter as a mechanism for assessing university satisfaction
title Sentiment analysis through twitter as a mechanism for assessing university satisfaction
spellingShingle Sentiment analysis through twitter as a mechanism for assessing university satisfaction
Chamorro-Atalaya, Omar
Sentiment analysis
Student satisfaction
Teacher performance
Text mining
Virtual learning
title_short Sentiment analysis through twitter as a mechanism for assessing university satisfaction
title_full Sentiment analysis through twitter as a mechanism for assessing university satisfaction
title_fullStr Sentiment analysis through twitter as a mechanism for assessing university satisfaction
title_full_unstemmed Sentiment analysis through twitter as a mechanism for assessing university satisfaction
title_sort Sentiment analysis through twitter as a mechanism for assessing university satisfaction
author Chamorro-Atalaya, Omar
author_facet Chamorro-Atalaya, Omar
Arce-Santillan, Dora
Morales-Romero, Guillermo
Ramos-Salazar, Primitiva
León-Velarde, César
Auqui-Ramos, Elizabeth
Levano-Stella, Miguel
author_role author
author2 Arce-Santillan, Dora
Morales-Romero, Guillermo
Ramos-Salazar, Primitiva
León-Velarde, César
Auqui-Ramos, Elizabeth
Levano-Stella, Miguel
author2_role author
author
author
author
author
author
dc.contributor.author.fl_str_mv Chamorro-Atalaya, Omar
Arce-Santillan, Dora
Morales-Romero, Guillermo
Ramos-Salazar, Primitiva
León-Velarde, César
Auqui-Ramos, Elizabeth
Levano-Stella, Miguel
dc.subject.es_PE.fl_str_mv Sentiment analysis
Student satisfaction
Teacher performance
Text mining
Virtual learning
topic Sentiment analysis
Student satisfaction
Teacher performance
Text mining
Virtual learning
description Currently, the data generated in the university environment related to the perception of satisfaction is generated through surveys with categorical response questions defined on a Likert scale, with factors already defined to be evaluated, applied once per academic semester, which generates very biased information. This leads us to wonder why this survey is applied only once and why it only asks about some factors. The objective of the article is to demonstrate the feasibility of a proposal to determine the degree of perception of student satisfaction through the use of data science and natural language processing (NLP), supported by the social network twitter, as an element of data collection. As a result of the application of this proposal based on data science, it was possible to determine the level of student satisfaction, being 57.27%, through sentiment analysis using the Python library "NLTK"; Thus, it was also possible to extract texts linked to the relevant factors of teaching performance to achieve student satisfaction, through the term frequency and inverse document frequency (TF-IDF) approach, these being those linked to the use of tools of simulation in the virtual learning process.
publishDate 2022
dc.date.accessioned.none.fl_str_mv 2022-11-10T09:38:43Z
dc.date.available.none.fl_str_mv 2022-11-10T09:38:43Z
dc.date.issued.fl_str_mv 2022-10-01
dc.type.es_PE.fl_str_mv info:eu-repo/semantics/article
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dc.identifier.issn.none.fl_str_mv 25024752
dc.identifier.doi.none.fl_str_mv 10.11591/ijeecs.v28.i1.pp430-440
dc.identifier.uri.none.fl_str_mv http://hdl.handle.net/10757/663436
dc.identifier.eissn.none.fl_str_mv 25024760
dc.identifier.journal.es_PE.fl_str_mv Indonesian Journal of Electrical Engineering and Computer Science
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dc.publisher.es_PE.fl_str_mv Institute of Advanced Engineering and Science
dc.source.es_PE.fl_str_mv Universidad Peruana de Ciencias Aplicadas (UPC)
Repositorio Académico - UPC
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This leads us to wonder why this survey is applied only once and why it only asks about some factors. The objective of the article is to demonstrate the feasibility of a proposal to determine the degree of perception of student satisfaction through the use of data science and natural language processing (NLP), supported by the social network twitter, as an element of data collection. As a result of the application of this proposal based on data science, it was possible to determine the level of student satisfaction, being 57.27%, through sentiment analysis using the Python library "NLTK"; Thus, it was also possible to extract texts linked to the relevant factors of teaching performance to achieve student satisfaction, through the term frequency and inverse document frequency (TF-IDF) approach, these being those linked to the use of tools of simulation in the virtual learning process.Revisón por paresapplication/pdfspaInstitute of Advanced Engineering and Sciencehttps://ijeecs.iaescore.com/index.php/IJEECS/article/view/28064info:eu-repo/semantics/openAccessAttribution-NonCommercial-ShareAlike 4.0 Internationalhttp://creativecommons.org/licenses/by-nc-sa/4.0/Universidad Peruana de Ciencias Aplicadas (UPC)Repositorio Académico - UPCIndonesian Journal of Electrical Engineering and Computer Science281430440reponame:UPC-Institucionalinstname:Universidad Peruana de Ciencias Aplicadasinstacron:UPCSentiment analysisStudent satisfactionTeacher performanceText miningVirtual learningSentiment analysis through twitter as a mechanism for assessing university satisfactioninfo:eu-repo/semantics/article2022-11-10T09:38:44ZTHUMBNAIL10.11591ijeecs.v28.i1.pp430-440.pdf.jpg10.11591ijeecs.v28.i1.pp430-440.pdf.jpgGenerated Thumbnailimage/jpeg80673https://repositorioacademico.upc.edu.pe/bitstream/10757/663436/5/10.11591ijeecs.v28.i1.pp430-440.pdf.jpg8f7c7b40d3ecb9044303bc81c2252fbfMD55falseTEXT10.11591ijeecs.v28.i1.pp430-440.pdf.txt10.11591ijeecs.v28.i1.pp430-440.pdf.txtExtracted texttext/plain43553https://repositorioacademico.upc.edu.pe/bitstream/10757/663436/4/10.11591ijeecs.v28.i1.pp430-440.pdf.txta6db7e7113fc196986dc5cf38c6c682dMD54falseLICENSElicense.txtlicense.txttext/plain; charset=utf-81748https://repositorioacademico.upc.edu.pe/bitstream/10757/663436/3/license.txt8a4605be74aa9ea9d79846c1fba20a33MD53falseCC-LICENSElicense_rdflicense_rdfapplication/rdf+xml; charset=utf-81031https://repositorioacademico.upc.edu.pe/bitstream/10757/663436/2/license_rdf934f4ca17e109e0a05eaeaba504d7ce4MD52falseORIGINAL10.11591ijeecs.v28.i1.pp430-440.pdf10.11591ijeecs.v28.i1.pp430-440.pdfapplication/pdf417890https://repositorioacademico.upc.edu.pe/bitstream/10757/663436/1/10.11591ijeecs.v28.i1.pp430-440.pdf2ce533a2ac59e9c2f21c13378d462dc1MD51true10757/663436oai:repositorioacademico.upc.edu.pe:10757/6634362022-11-11 03:20:18.613Repositorio académico upcupc@openrepository.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