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dc.contributor.authorMilkhatun, Milkhatun
dc.contributor.authorAri Fakhrur Rizal, Alfi
dc.contributor.authorWiwin Asthiningsih, Ni Wayan
dc.contributor.authorJohar Latipah, Asslia
dc.date.accessioned2023-03-31T02:37:54Z
dc.date.available2023-03-31T02:37:54Z
dc.date.issued2020-10-30
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dc.identifier.issn2477-698x
dc.identifier.urihttps://dspace.umkt.ac.id//handle/463.2017/3087
dc.description.abstractAbstract- A lecturer with a good performance has a positive impact on the quality of teaching and learning. The said quality includes the delivery of teaching materials, learning methods, and ultimately the academic results of students. Performance of lecturers contributes significantly to the quality of research and community service which in turn improves the quality of teaching materials. It is desirable, therefore, to have a method to measure the performance of lecturers in carrying out the Tri Dharma (or the three responsibility) activities, which consist of teaching and learning process, research, and community service activities, including publications at both national and international level. This study seeks to measure the performance of lecturers and cluster them into three categories, namely "satisfactory", "good", and "poor". Data were taken from academic works of nursing study program lecturers in conducting academic activities. Clustering process is carried out using two machine learning approaches, which is K-Means and K-Medoids algorithms. Evaluation of the clustering results suggests that K-Medoids algorithm performs better compared to using K Means. DBI score for clustering techniques using K-Means is -0.417 while the score for K-Medoids is -0.652. The significant difference in the score shows that K-Medoids algorithm works better in determining the performance of lecturers in carrying out Tri Dharma activities.id_ID
dc.language.isoen_USid_ID
dc.publisherKhanzana Informatikaid_ID
dc.subjectMachine Learningid_ID
dc.subjectData Miningid_ID
dc.subjectK-Medoidsid_ID
dc.subjectLecturer Performanceid_ID
dc.subjectK-Meansid_ID
dc.titlePerformance Assessment of University Lecturers: A Data Mining Approachid_ID
dc.typeArticleid_ID


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