Penerapan Algoritma K-Means Clustering Untuk Mengetahui Kemampuan Karyawan IT

Assessment of the ability of IT employees is very necessary to determine the ability of employees to work so that it can be a reference and evaluation for the future. Therefore, we need a technique that can group the employee's ability to determine the employee's ability using the K-Means...

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Main Authors: Dina Zakiyah, Nita Merlina, Nissa Almira Mayangky
Format: Article
Language:Indonesian
Published: LPPM Universitas Bina Sarana Informatika 2022-01-01
Series:Computer Science
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Online Access:https://jurnal.bsi.ac.id/index.php/co-science/article/view/623
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author Dina Zakiyah
Nita Merlina
Nissa Almira Mayangky
author_facet Dina Zakiyah
Nita Merlina
Nissa Almira Mayangky
author_sort Dina Zakiyah
collection DOAJ
description Assessment of the ability of IT employees is very necessary to determine the ability of employees to work so that it can be a reference and evaluation for the future. Therefore, we need a technique that can group the employee's ability to determine the employee's ability using the K-Means Clustering Algorithm method. The data grouping is done in several stages, namely, inputting data into Ms. Excel based on the results of data collection through Google Forms, processing and testing with the K-Means Clustering Algorithm, analysis of results, and grouping employee data with excellent, good, adequate, poor, and very poor skills. From the results of the tests that have been carried out, it is obtained 5 clusters with 2 iterations, namely employees with excellent abilities consisting of 2 members, employees with good abilities consisting of 2 members, employees with sufficient abilities consisting of 1 member, employees with less ability consisting of 2 members. , and employees with less ability consist of 3 members. Based on the results of research conducted at PT. Loka Citra Media, the application of the K-Means Clustering Algorithm can be used to identify and classify IT employees' abilities for the purpose of evaluating employees and forming project teams. The grouping of data obtained from research results and can be considered for evaluating the performance of IT employees with an accuracy value of 40%. The more criteria, the better the results will be obtained.
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spelling doaj-art-f6fee1f3052d422e8a3e42c4f9ecf4ef2025-08-20T03:55:49ZindLPPM Universitas Bina Sarana InformatikaComputer Science2808-90652774-97112022-01-0121596710.31294/coscience.v2i1.623632Penerapan Algoritma K-Means Clustering Untuk Mengetahui Kemampuan Karyawan ITDina Zakiyah0Nita Merlina1Nissa Almira Mayangky2Program Studi Sistem Informasi, Fakultas Teknologi Informasi, Universitas Nusa MandiriProgram Studi Sistem Informasi, Fakultas Teknologi Informasi, Universitas Nusa MandiriProgram Studi Teknologi informasi, Fakultas Teknik dan Informatika, Universitas Bina Sarana InformatikaAssessment of the ability of IT employees is very necessary to determine the ability of employees to work so that it can be a reference and evaluation for the future. Therefore, we need a technique that can group the employee's ability to determine the employee's ability using the K-Means Clustering Algorithm method. The data grouping is done in several stages, namely, inputting data into Ms. Excel based on the results of data collection through Google Forms, processing and testing with the K-Means Clustering Algorithm, analysis of results, and grouping employee data with excellent, good, adequate, poor, and very poor skills. From the results of the tests that have been carried out, it is obtained 5 clusters with 2 iterations, namely employees with excellent abilities consisting of 2 members, employees with good abilities consisting of 2 members, employees with sufficient abilities consisting of 1 member, employees with less ability consisting of 2 members. , and employees with less ability consist of 3 members. Based on the results of research conducted at PT. Loka Citra Media, the application of the K-Means Clustering Algorithm can be used to identify and classify IT employees' abilities for the purpose of evaluating employees and forming project teams. The grouping of data obtained from research results and can be considered for evaluating the performance of IT employees with an accuracy value of 40%. The more criteria, the better the results will be obtained.https://jurnal.bsi.ac.id/index.php/co-science/article/view/623k-means clusteringabilityemployees
spellingShingle Dina Zakiyah
Nita Merlina
Nissa Almira Mayangky
Penerapan Algoritma K-Means Clustering Untuk Mengetahui Kemampuan Karyawan IT
Computer Science
k-means clustering
ability
employees
title Penerapan Algoritma K-Means Clustering Untuk Mengetahui Kemampuan Karyawan IT
title_full Penerapan Algoritma K-Means Clustering Untuk Mengetahui Kemampuan Karyawan IT
title_fullStr Penerapan Algoritma K-Means Clustering Untuk Mengetahui Kemampuan Karyawan IT
title_full_unstemmed Penerapan Algoritma K-Means Clustering Untuk Mengetahui Kemampuan Karyawan IT
title_short Penerapan Algoritma K-Means Clustering Untuk Mengetahui Kemampuan Karyawan IT
title_sort penerapan algoritma k means clustering untuk mengetahui kemampuan karyawan it
topic k-means clustering
ability
employees
url https://jurnal.bsi.ac.id/index.php/co-science/article/view/623
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