ERIC Number: EJ1381891
Record Type: Journal
Publication Date: 2023-Jul
Pages: 24
Abstractor: As Provided
ISBN: N/A
ISSN: ISSN-0013-1245
EISSN: EISSN-1552-3535
Predicting the Culturally Responsive Teacher Roles with Cultural Intelligence and Self-Efficacy Using Machine Learning Classification Algorithms
Karatas, Kasim; Arpaci, Ibrahim; Yildirim, Yusuf
Education and Urban Society, v55 n6 p674-697 Jul 2023
This study aimed to predict the culturally responsive teacher roles based on cultural intelligence and self-efficacy using machine learning classification algorithms. The research group consists of 415 teachers from different branches. The Bayes classifier (NaiveBayes), logistic-regression (SMO), lazy-classifier (KStar), meta-classifier (LogitBoost), rule-learner (JRip), and decision-tree (J48) were employed in the assessment of the predictive model. The results indicated that JRip rule-learner had a better performance than other classifiers in predicting the culturally responsive teachers based on six attributes used in the study. The JRip rule-learner classified the culturally responsive teachers as low, medium, or high with an accuracy of 99.76% (CCI: 414/415) [Kappa statistic: 0.996, Mean Absolute Error (MAE): 0.003, Root Mean Square Error (RMSE): 0.043, Relative Absolute Error (RAE): 0.663, Relative Squared Error (RRSE): 9.244]. The results indicated that all classifiers had an acceptable performance but JRip rule-learner had a better performance than the other classifiers in predicting the culturally responsive teachers.
Descriptors: Prediction, Culturally Relevant Education, Teacher Role, Cultural Awareness, Self Efficacy, Artificial Intelligence, Classification, Algorithms
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Publication Type: Journal Articles; Reports - Research
Education Level: N/A
Audience: N/A
Language: English
Sponsor: N/A
Authoring Institution: N/A
Grant or Contract Numbers: N/A