Predictive analytics for Human Resources through the application of Markov Chains: a case study of Cevital Food Processing Industry
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Management Intercultural
Abstract
The study focuses on the application of Markov chains to forecast the
human resources of Cevital Food Processing Industry. Markov chains are
probabilistic models used to anticipate future trends based on the current state
and probable transitions. By utilizing historical data on workforce and personnel
movements, a robust predictive model was developed. The results reveal a
distribution of human resources for the upcoming years, obtained by multiplying
the probabilistic transition matrix with the 2019 workforce matrix. The study
highlights the significance of efficient human resource planning for business
success and underscores the promising use of Markov chains in this field.
