2022
DOI: 10.48550/arxiv.2202.03577
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Integration of a machine learning model into a decision support tool to predict absenteeism at work of prospective employees

Abstract: Purpose -Inefficient hiring may result in lower productivity and higher training costs. Productivity losses caused by absenteeism at work cost U.S. employers billions of dollars each year. Also, employers typically spend a considerable amount of time managing employees who perform poorly. The purpose of this study is to develop a decision support tool to predict absenteeism among potential employees. Design/methodology/approach -We utilized a popular open-access dataset. In order to categorize absenteeism clas… Show more

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