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Job congruence classification model using decision tree induction algorithm

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Дата
2019-04
Автор
Nepomuceno, Norry Mae
Geographic name
Iloilo TGN
Thesis Adviser
Gerardo, Bobby D.
Committee Chair
De Castro, Joel T.
Committee Members
Concepcion, Ma. Beth S.
De Castro, Joel T.
Sansolis, Evans D.
Duran, Peter Rey
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Аннотации
Employability is defined in various ways, one of those is job congruence. The West Visayas State University Learning Assessment Center conducts Terminal Competencies Assessment to determine workplace readiness. With the use of the TCA data, this study aimed to develop a classification model that successfully classifies the level of job congruence of college graduates. Since TCA data is numerical, discretization was performed to yield proficiency levels. Missing data was addressed by using Multiple Linear Regression Analysis using the existing variables. Several Decision Tree algorithms were administered to develop the model. Performance analysis of these algorithms was evaluated. When General Competency and Specialized Knowledge scores are available, the proposed classification model has an accuracy rate of 89.158, which was generated thru SimpleCART algorithm. When the available score is only from the General Competency exam, the classification model with the highest accuracy rate was generated by the J48Graft algorithm at 89.13%. The statistical test shows that these two do not have significant difference thus, both can be utilized. There were two significant variables contributing to the level of job congruence; Technological Facility and Critical Thinking.
URI
http://repository.wvsu.edu.ph/handle/123456789/145
Recommended Citation
Nepomuceno, M. T. (2019). Job congruence classification model using decision tree induction algorithm [Master’s thesis, West Visayas State University]. WVSU Institutional Repository and Electronic Dissertations and Theses PLUS.
Type
Thesis
Keywords
Job congruence Job role congruence West Visayas State University Learning Assessment Center College graduate SimpleCART algorithm
Тематика
Classification OCLC - FAST (Faceted Application of Subject Terminology) Occupations OCLC - FAST (Faceted Application of Subject Terminology) Regression analysis--Mathematical models OCLC - FAST (Faceted Application of Subject Terminology) Competency-based educational tests OCLC - FAST (Faceted Application of Subject Terminology) Decision trees OCLC - FAST (Faceted Application of Subject Terminology)
Degree Discipline
College of Information and Communications Technology
Degree Name
Master in Information Technology
Degree Level
Masters
Physical Description
xv, 88 p. : ill. (col.).
Collections
  • 2. Master's Theses [129]

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