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  • Kupriyanov, Roman B.  (2)
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  • 1
    Online Resource
    Online Resource
    Peoples' Friendship University of Russia ; 2021
    In:  RUDN Journal of Informatization in Education Vol. 18, No. 1 ( 2021-12-15), p. 27-35
    In: RUDN Journal of Informatization in Education, Peoples' Friendship University of Russia, Vol. 18, No. 1 ( 2021-12-15), p. 27-35
    Abstract: Problem and goal. Developed and tested solutions for building individual educational trajectories of students, focused on improving the educational process by forming a personalized set of recommendations from the optional disciplines. Methodology. Data mining and machine learning methods were used to process both numeric and textual data. The approaches based on collaborative and content filtering to generate recommendations for students were also used. Results. Testing of the developed system was carried out in the context of several periods of elective courses selection, in which 4,769 first- and second-year students took part. A set of recommendations was automatically generated for each student, and then the quality of the recommendations was evaluated based on the percentage of students who used these recommendations. According to the results of testing, the recommendations were used by 1,976 students, which was 41.43% of the total number of participants. Conclusion. In the study, a recommendation system was developed that performs automatic ranking of subjects of choice and forms a personalized set of recommendations for each student based on their interests for building individual educational trajectories.
    Type of Medium: Online Resource
    ISSN: 2312-864X , 2312-8631
    URL: Issue
    Language: Unknown
    Publisher: Peoples' Friendship University of Russia
    Publication Date: 2021
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  • 2
    Online Resource
    Online Resource
    MDPI AG ; 2021
    In:  Information Vol. 12, No. 1 ( 2021-01-15), p. 33-
    In: Information, MDPI AG, Vol. 12, No. 1 ( 2021-01-15), p. 33-
    Abstract: The transition to digital society is characterised by the development of new methods and tools for big data processing. New technologies have a substantial impact on the education sector. The article represents the results of applying big data to analyse and transform the learning content of Moscow’s schools. The analysis of the school curriculum comprised the following: (a) identifying one-topic lesson scripts, (b) analysing cross-disciplinary connections between subjects, (c) verifying the compliance of the lesson script digital content to the Federal Educational Standards. The analysed material included 36,644 lesson scripts. The analysis has been conducted using specifically designed digital tools featuring data mining algorithms. The article considers the issue of applying data mining algorithms to analyse school curriculum for the improvement of its quality.
    Type of Medium: Online Resource
    ISSN: 2078-2489
    Language: English
    Publisher: MDPI AG
    Publication Date: 2021
    detail.hit.zdb_id: 2599790-7
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