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Metode podatkovne analitike za nadzor kakovosti študijev : delo diplomskega seminarja
ID Gaberšček, Maj (Author), ID Orbanić, Alen (Mentor) More about this mentor... This link opens in a new window

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Abstract
Metode podatkovne analitike pri nadzoru kakovosti študija si lahko pogledamo skozi analize ocen (po predmetih, po času), analize pretočnosti (skozi predmete ter skozi letnike) in analize prepisov študentov med programi. Skupaj te analize tvorijo celosten in kompleksen pregled skoraj vseh aspektov študija. S pomočjo grafov in vizualizacij, diagramov in tabel pri vsaki analizi na hiter in preprost način lahko ugotavljamo dobre in slabe lastnosti poteka študija, prednosti in slabosti. V oko takoj padejo posebnosti, ki morda samo iz golih tabel podatkov ne izstopajo. Celotna metodologija podatkovne analize, opisana v tej diplomski nalogi, lahko olajša delo in prihrani precej časa tistim, ki se s takimi pregledi študijev tudi profesionalno ukvarjajo. Vse analize in metode, ki nastopajo v tej diplomski nalogi, sem tudi sprogramiral v programskem jeziku R in program hranil na privatnem repozitoriju. Če v program vstavimo dejanske podatke o nekem študiju, vrne grafe, diagrame ter tabele, opisane v tej nalogi.

Language:Slovenian
Keywords:evalvacija študijev, analiza študijev, podatkovna analitika
Work type:Final seminar paper
Typology:2.11 - Undergraduate Thesis
Organization:FMF - Faculty of Mathematics and Physics
Year:2021
PID:20.500.12556/RUL-131036 This link opens in a new window
UDC:519.2
COBISS.SI-ID:77677315 This link opens in a new window
Publication date in RUL:22.09.2021
Views:797
Downloads:106
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Secondary language

Language:English
Title:Data analysis methods for study program quality control
Abstract:
Data analysis in quality control of university level studies could be viewed through the analysis of grades (by course, by time), flow analysis (through subjects and through years) and analysis of student transfers between programs. Together, these analyses form a comprehensive and complex overview of almost all aspects of the studies. Graphs, visualizations, diagrams and tables help us to identify the advantages and disadvantages of each program or course. Features that may not be identified from the raw data tables immediately stand out. The entire methodology of data analysis described in this thesis can facilitate the work of and save a lot of time for those who are professionally engaged in such study program reviews. All the analyses and methods that appear in this diploma thesis were also implemented in the R programming language and the whole code is stored in a private repository. If we insert actual data about a study program into implemented procedures, they return graphs, diagrams, and tables described in this thesis.

Keywords:evaluation of studies, analysis of studies, data analysis

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