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Pregled bibliografske jedinice broj: 1051202

Student model initialization using domain knowledge ontology representative subset


Grubišić, Ani; Žitko, Branko; Stankov, Slavomir
Student model initialization using domain knowledge ontology representative subset // Journal of technology and science education, 10 (2020), 1; 60-71 doi:10.3926/jotse.755 (međunarodna recenzija, članak, znanstveni)


CROSBI ID: 1051202 Za ispravke kontaktirajte CROSBI podršku putem web obrasca

Naslov
Student model initialization using domain knowledge ontology representative subset

Autori
Grubišić, Ani ; Žitko, Branko ; Stankov, Slavomir

Izvornik
Journal of technology and science education (2014-5349) 10 (2020), 1; 60-71

Vrsta, podvrsta i kategorija rada
Radovi u časopisima, članak, znanstveni

Ključne riječi
Intelligent tutoring systems ; adaptive e-learning systems ; adaptive courseware ; domain knowledge ; ontology ; initialization of the student model

Sažetak
In intelligent e-learning systems that adapt a learning and teaching process to student knowledge, it is important to adapt the system as quickly as possible. However, adaptation is not possible until the student model is initialized. In this paper, a new approach to student model initialization using domain knowledge representative subset is described. The approach defines which concepts from domain knowledge should be included in the initial test so the system can make conclusions about what students truly know about domain knowledge. This representative subset of domain knowledge is defined using non-semantic mathematical approach based on graph theory. The initial test, created over a domain knowledge representative subset, guarantees encompassing all concepts that are relevant to domain knowledge. A two-level case study is conducted on what would be the representative subset of one selected domain knowledge. It compares semantically selected domain knowledge representative subsets (semantical analysis was done by domain area experts) to a non- semantical, mathematically selected domain knowledge representative subset. The results of the case study show that problems of inequality of semantically selected domain knowledge representative subsets are easily overcome using the presented approach.

Izvorni jezik
Engleski

Znanstvena područja
Računarstvo



POVEZANOST RADA


Projekti:
MZOS-177-0361994-1996 - Oblikovanje i vrednovanje inteligentnih sustava e-učenja. (Žitko, Branko, MZOS ) ( CroRIS)
036-1994

Ustanove:
Prirodoslovno-matematički fakultet, Split

Profili:

Avatar Url Branko Žitko (autor)

Avatar Url Slavomir Stankov (autor)

Avatar Url Ani Grubišić (autor)

Poveznice na cjeloviti tekst rada:

doi www.jotse.org www.jotse.org

Citiraj ovu publikaciju:

Grubišić, Ani; Žitko, Branko; Stankov, Slavomir
Student model initialization using domain knowledge ontology representative subset // Journal of technology and science education, 10 (2020), 1; 60-71 doi:10.3926/jotse.755 (međunarodna recenzija, članak, znanstveni)
Grubišić, A., Žitko, B. & Stankov, S. (2020) Student model initialization using domain knowledge ontology representative subset. Journal of technology and science education, 10 (1), 60-71 doi:10.3926/jotse.755.
@article{article, author = {Grubi\v{s}i\'{c}, Ani and \v{Z}itko, Branko and Stankov, Slavomir}, year = {2020}, pages = {60-71}, DOI = {10.3926/jotse.755}, keywords = {Intelligent tutoring systems, adaptive e-learning systems, adaptive courseware, domain knowledge, ontology, initialization of the student model}, journal = {Journal of technology and science education}, doi = {10.3926/jotse.755}, volume = {10}, number = {1}, issn = {2014-5349}, title = {Student model initialization using domain knowledge ontology representative subset}, keyword = {Intelligent tutoring systems, adaptive e-learning systems, adaptive courseware, domain knowledge, ontology, initialization of the student model} }
@article{article, author = {Grubi\v{s}i\'{c}, Ani and \v{Z}itko, Branko and Stankov, Slavomir}, year = {2020}, pages = {60-71}, DOI = {10.3926/jotse.755}, keywords = {Intelligent tutoring systems, adaptive e-learning systems, adaptive courseware, domain knowledge, ontology, initialization of the student model}, journal = {Journal of technology and science education}, doi = {10.3926/jotse.755}, volume = {10}, number = {1}, issn = {2014-5349}, title = {Student model initialization using domain knowledge ontology representative subset}, keyword = {Intelligent tutoring systems, adaptive e-learning systems, adaptive courseware, domain knowledge, ontology, initialization of the student model} }

Časopis indeksira:


  • Scopus


Citati:





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