Bayesian analysis of Markov modulated queues with abandonment

Author:

Ay Atilla1,Landon Joshua2,Özekici Süleyman3ORCID,Soyer Refik4ORCID

Affiliation:

1. Department of Computer Information Systems and Business Analytics James Madison University Harrisonburg Virginia USA

2. Department of Statistics The George Washington University Washington DC USA

3. Department of Industrial Engineering Koç University İstanbul Turkey

4. Department of Decision Sciences The George Washington University Washington DC USA

Abstract

AbstractWe consider a Markovian queueing model with abandonment where customer arrival, service and abandonment processes are all modulated by an external environmental process. The environmental process depicts all factors that affect the exponential arrival, service, and abandonment rates. Moreover, the environmental process is a hidden Markov process whose true state is not observable. Instead, our observations consist only of customer arrival, service, and departure times during some period of time. The main objective is to conduct Bayesian analysis in order to infer the parameters of the stochastic system, as well as some important queueing performance measures. This also includes the unknown dimension of the environmental process. We illustrate the implementation of our model and the Bayesian approach by using simulated and actual data on call centers.

Publisher

Wiley

Subject

Management Science and Operations Research,General Business, Management and Accounting,Modeling and Simulation

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