Student performance predictive models using LMS data in Primary Schools

Alvarez-Castro, Ignacio

Resumen:

Plan Ceibal is a public policy implemented in Uruguay, it is part of the global initiative One Lap- top per Child (OLPC, 2005). The basic feature is providing every student and teacher in primary school with a laptop or tablet and internet access. Different data sets were combined, students and teachers activities registered in the Learning Management System (LMS) and student’s performance in national standardized tests. Data were used to compute student’s engagement indexes, combining motivation, creativity, velocity and performance. Statistical models were used to determine key drivers of LMS use, this is relevant to define educational policies based on evidence. Models for LMS use are fitted for several regional levels. Additionally, statistical learning methods were fitted to predict student’s performance in national standardized test us- ing as predictor variables different constructed usage indexes from the LMS platform. A major challenge was how to deal with sub-grouping data structure into machine learning algorithms, usually developed for independent observations. Initial results suggest school district is the main driver of the technology usage in the classroom.


Detalles Bibliográficos
2023
ANII
Educational data science
Learming managment system
Statistical learning methods
Ciencias Sociales
Ciencias de la Educación
Inglés
Fundación Ceibal
Ceibal en REDI
https://hdl.handle.net/20.500.12381/3492
Acceso abierto
Reconocimiento-NoComercial 4.0 Internacional. (CC BY-NC)
_version_ 1808165428461043712
author Alvarez-Castro, Ignacio
author_facet Alvarez-Castro, Ignacio
author_role author
bitstream.checksum.fl_str_mv 74c80cb3911e028fefed9f697e97ff7e
61918e60955c729cff76530f63c18fe6
bitstream.checksumAlgorithm.fl_str_mv MD5
MD5
bitstream.url.fl_str_mv https://redi.anii.org.uy/jspui/bitstream/20.500.12381/3492/2/license.txt
https://redi.anii.org.uy/jspui/bitstream/20.500.12381/3492/1/CEI_IDSC_23.pdf
collection Ceibal en REDI
dc.creator.none.fl_str_mv Alvarez-Castro, Ignacio
dc.date.accessioned.none.fl_str_mv 2024-04-10T14:37:41Z
dc.date.available.none.fl_str_mv 2024-04-10T14:37:41Z
dc.date.issued.none.fl_str_mv 2023-11-09
dc.description.abstract.none.fl_txt_mv Plan Ceibal is a public policy implemented in Uruguay, it is part of the global initiative One Lap- top per Child (OLPC, 2005). The basic feature is providing every student and teacher in primary school with a laptop or tablet and internet access. Different data sets were combined, students and teachers activities registered in the Learning Management System (LMS) and student’s performance in national standardized tests. Data were used to compute student’s engagement indexes, combining motivation, creativity, velocity and performance. Statistical models were used to determine key drivers of LMS use, this is relevant to define educational policies based on evidence. Models for LMS use are fitted for several regional levels. Additionally, statistical learning methods were fitted to predict student’s performance in national standardized test us- ing as predictor variables different constructed usage indexes from the LMS platform. A major challenge was how to deal with sub-grouping data structure into machine learning algorithms, usually developed for independent observations. Initial results suggest school district is the main driver of the technology usage in the classroom.
dc.description.sponsorship.none.fl_txt_mv ANII
dc.identifier.anii.es.fl_str_mv FSDE_2_2020_1_163528
dc.identifier.uri.none.fl_str_mv https://hdl.handle.net/20.500.12381/3492
dc.language.iso.none.fl_str_mv eng
dc.publisher.es.fl_str_mv International Conference on Data Science 2023
dc.rights.*.fl_str_mv Acceso abierto
dc.rights.license.none.fl_str_mv Reconocimiento-NoComercial 4.0 Internacional. (CC BY-NC)
dc.rights.none.fl_str_mv info:eu-repo/semantics/openAccess
dc.source.es.fl_str_mv https://icds2023.cl/wp-content/uploads/2023/11/BoA_ICDS2023.pdf
dc.source.none.fl_str_mv reponame:Ceibal en REDI
instname:Fundación Ceibal
instacron:Fundación Ceibal
dc.subject.anii.none.fl_str_mv Ciencias Sociales
Ciencias de la Educación
dc.subject.es.fl_str_mv Educational data science
Learming managment system
Statistical learning methods
dc.title.none.fl_str_mv Student performance predictive models using LMS data in Primary Schools
dc.type.es.fl_str_mv Documento de conferencia
dc.type.none.fl_str_mv info:eu-repo/semantics/conferenceObject
dc.type.version.es.fl_str_mv Publicado
dc.type.version.none.fl_str_mv info:eu-repo/semantics/publishedVersion
description Plan Ceibal is a public policy implemented in Uruguay, it is part of the global initiative One Lap- top per Child (OLPC, 2005). The basic feature is providing every student and teacher in primary school with a laptop or tablet and internet access. Different data sets were combined, students and teachers activities registered in the Learning Management System (LMS) and student’s performance in national standardized tests. Data were used to compute student’s engagement indexes, combining motivation, creativity, velocity and performance. Statistical models were used to determine key drivers of LMS use, this is relevant to define educational policies based on evidence. Models for LMS use are fitted for several regional levels. Additionally, statistical learning methods were fitted to predict student’s performance in national standardized test us- ing as predictor variables different constructed usage indexes from the LMS platform. A major challenge was how to deal with sub-grouping data structure into machine learning algorithms, usually developed for independent observations. Initial results suggest school district is the main driver of the technology usage in the classroom.
eu_rights_str_mv openAccess
format conferenceObject
id CEIBAL_1e2939fe2ee8e213bee0957f599785a0
identifier_str_mv FSDE_2_2020_1_163528
instacron_str Fundación Ceibal
institution Fundación Ceibal
instname_str Fundación Ceibal
language eng
network_acronym_str CEIBAL
network_name_str Ceibal en REDI
oai_identifier_str oai:redi.anii.org.uy:20.500.12381/3492
publishDate 2023
reponame_str Ceibal en REDI
repository.mail.fl_str_mv mamunoz@fundacionceibal.edu.uy
repository.name.fl_str_mv Ceibal en REDI - Fundación Ceibal
repository_id_str 9421_1
rights_invalid_str_mv Reconocimiento-NoComercial 4.0 Internacional. (CC BY-NC)
Acceso abierto
spelling Reconocimiento-NoComercial 4.0 Internacional. (CC BY-NC)Acceso abiertoinfo:eu-repo/semantics/openAccess2024-04-10T14:37:41Z2024-04-10T14:37:41Z2023-11-09https://hdl.handle.net/20.500.12381/3492FSDE_2_2020_1_163528Plan Ceibal is a public policy implemented in Uruguay, it is part of the global initiative One Lap- top per Child (OLPC, 2005). The basic feature is providing every student and teacher in primary school with a laptop or tablet and internet access. Different data sets were combined, students and teachers activities registered in the Learning Management System (LMS) and student’s performance in national standardized tests. Data were used to compute student’s engagement indexes, combining motivation, creativity, velocity and performance. Statistical models were used to determine key drivers of LMS use, this is relevant to define educational policies based on evidence. Models for LMS use are fitted for several regional levels. Additionally, statistical learning methods were fitted to predict student’s performance in national standardized test us- ing as predictor variables different constructed usage indexes from the LMS platform. A major challenge was how to deal with sub-grouping data structure into machine learning algorithms, usually developed for independent observations. Initial results suggest school district is the main driver of the technology usage in the classroom.ANIIengInternational Conference on Data Science 2023https://icds2023.cl/wp-content/uploads/2023/11/BoA_ICDS2023.pdfreponame:Ceibal en REDIinstname:Fundación Ceibalinstacron:Fundación CeibalEducational data scienceLearming managment systemStatistical learning methodsCiencias SocialesCiencias de la EducaciónStudent performance predictive models using LMS data in Primary SchoolsDocumento de conferenciaPublicadoinfo:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/conferenceObjectFacultad de Ciencias Económicas y de AdministraciónInstituto de EstadisticaUniversidad de la RepúblicaAgencia Nacional de Investigación e InnovaciónFundación Ceibal//Ciencias Sociales/Ciencias de la EducaciónMonitoreo y evaluaciónEvaluación del aprendizaje y la enseñanza en contextos mediados por tecnologíasAlvarez-Castro, IgnacioLICENSElicense.txtlicense.txttext/plain; charset=utf-85168https://redi.anii.org.uy/jspui/bitstream/20.500.12381/3492/2/license.txt74c80cb3911e028fefed9f697e97ff7eMD52ORIGINALCEI_IDSC_23.pdfCEI_IDSC_23.pdfPresentación realizada en la International Conference on Data Science 2023, Santiago de Chileapplication/pdf473962https://redi.anii.org.uy/jspui/bitstream/20.500.12381/3492/1/CEI_IDSC_23.pdf61918e60955c729cff76530f63c18fe6MD5120.500.12381/34922024-04-15 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Gobiernohttps://fundacionceibal.edu.uy/https://redi.anii.org.uy/oai/requestmamunoz@fundacionceibal.edu.uyUruguayopendoar:9421_12024-04-15T15:50:04Ceibal en REDI - Fundación Ceibalfalse
spellingShingle Student performance predictive models using LMS data in Primary Schools
Alvarez-Castro, Ignacio
Educational data science
Learming managment system
Statistical learning methods
Ciencias Sociales
Ciencias de la Educación
status_str publishedVersion
title Student performance predictive models using LMS data in Primary Schools
title_full Student performance predictive models using LMS data in Primary Schools
title_fullStr Student performance predictive models using LMS data in Primary Schools
title_full_unstemmed Student performance predictive models using LMS data in Primary Schools
title_short Student performance predictive models using LMS data in Primary Schools
title_sort Student performance predictive models using LMS data in Primary Schools
topic Educational data science
Learming managment system
Statistical learning methods
Ciencias Sociales
Ciencias de la Educación
url https://hdl.handle.net/20.500.12381/3492