Building Data Mining Decision Tree Model for Predicting Employee Performance

Ira Mellisa
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引用次数: 2

Abstract

Human resource is one of the functions of a company that is considered as an asset. Therefo re, the theory of performance qualificat ion was adopted by the company in order to get an overview of employee performance. Furthermore, the company needs an effective method to predict the performance not only for the employees but also for the new applic ants. The goals of this research are to get a decision tree model of the employee performance. By learning employee data, the performance of the new applicants could be predicted. The study would provide the characteristic of new applicants who will give better performance than other applicants . The data from a company in Indonesia will have been used for this research. The data mining technique will be applied to the data of operators (such as admins, clerks, cashiers, machine operators, and security offi cers). The data mining technique was use d is decision tree. The decision tree technique was commonly used for a supervised learning data. The decision tree technique also has advantages compared others, because of its ability to produce information that is easy to understand. The result of this research shown the high dependency of employee performance with employment type (work contract). It also means that employees are encouraged to provide good performance to the company if those employees have become p ermanent employees. This research also showed that there is no relationship between employee performances with gender or position grade.
建立预测员工绩效的数据挖掘决策树模型
人力资源是公司的职能之一,被认为是一种资产。因此,该公司采用绩效资格理论,对员工绩效进行概述。此外,公司不仅需要一种有效的方法来预测员工的绩效,也需要一种有效的方法来预测新应聘者的绩效。本研究的目的是建立员工绩效的决策树模型。通过学习员工数据,可以预测新申请人的表现。这项研究将提供新申请人的特征,他们将比其他申请人表现更好。来自印度尼西亚一家公司的数据将被用于这项研究。数据挖掘技术将应用于操作员(如管理员、职员、收银员、机器操作员和安全人员)的数据。采用决策树数据挖掘技术。决策树技术通常用于监督学习数据。决策树技术与其他技术相比也有优势,因为它能够产生易于理解的信息。本研究结果显示,员工绩效与雇佣类型(劳动合同)有高度的依赖关系。这也意味着鼓励员工为公司提供良好的表现,如果这些员工已经成为正式员工。本研究还发现,员工绩效与性别、职位等级没有关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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