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The use of data mining classification technique to fill in structural positions in bogor local government

机译:使用数据挖掘分类技术填补茂物地方政府的结构职位

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The human resources of Bogor local government are managed by human resources and training division, which is called Badan Kepegawaian Pendidikan dan Pelatihan (BKPP). BKPP form a team called Badan Pertimbangan Jabatan dan Kepangkatan (Baperjakat), which are responsible for promoting, rotating and dismissing local government employees from structural positions below the Echelon IIA positions. Baperjakat have problems on constructing the draft of structural government positions. These processes were done manually, even though BKPP have a human resources information systems called SIMPEG. The main purpose of this research is to identify patterns to fill in structural positions in Bogor Local Government. 62 Classifications algortithms were tested using 3 data mining tools with 7 data sets and 7 human resources attributes to identify filling structural position patterns. The classification process yields Classification Rule with Unbiased Interaction Selection and Estimation (CRUISE) as the best algorithm in echelon class. Its average accuracy is 95.7% for each echelon level.
机译:茂物本地政府的人力资源由人力资源和培训部门管理,被称为巴丹克·凯瓜县Pendidikan Dan Pelatihan(BKPP)。 BKPP形成一个名为Badan Pertimbangan Jabatan Dan Kepangkatan(Baperjakat)的团队,负责促进,旋转和驳回地方政府员工,从梯度IIA次数低于梯度下方的结构位置。 Baperjakat在构建结构政府职位草案方面存在问题。即使BKPP具有名为SIMPEG的人力资源信息系统,也可以手动完成这些过程。本研究的主要目的是识别填补茂物地方政府结构职位的模式。使用具有7个数据集的3个数据挖掘工具和7个人力资源属性来测试62分类,以识别填充结构位置模式。分类过程产生具有无偏执的交互选择和估计(Cruise)作为梯级类中最佳算法的分类规则。每个梯度水平的平均精度为95.7%。

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