Two-stage stochastic programming approach for the medical drug inventory routing problem under uncertainty
•Proposing a two-stage stochastic programming model and two models with continuous and discrete probabilistic constraints.•Considering of violations as second stage decision variables in proposed two-stage stochastic programming models.•Using of Latin hypercube sampling method for scenario generatio...
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Published in | Computers & industrial engineering Vol. 128; pp. 358 - 370 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Elsevier Ltd
01.02.2019
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Subjects | |
Online Access | Get full text |
ISSN | 0360-8352 1879-0550 1879-0550 |
DOI | 10.1016/j.cie.2018.12.055 |
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Abstract | •Proposing a two-stage stochastic programming model and two models with continuous and discrete probabilistic constraints.•Considering of violations as second stage decision variables in proposed two-stage stochastic programming models.•Using of Latin hypercube sampling method for scenario generation.•Considering of different sensitivity analysis to check validity and efficiency of proposed methods.•Proposing a mathematical based solution method to solve large size problems.
Medical drug shortages are an important issue in health care, since they can significantly affect patients’ health. Thus, selecting the appropriate distribution and inventory policies plays an important role in decreasing drug shortages. In this context, inventory routing models can be used to determine optimal policies in the context of medical drug distribution. However, in real-world conditions, some parameters in these models are subject to uncertainty. This paper examines the effects of uncertainty in the demand by relying on a two-stage stochastic programming approach to incorporate it into the optimization model. A two-stage model is then proposed and two different approaches based on chance constraints are used to assess the validity of the proposed model. In the first model, a scenario-based two-stage stochastic programming model without probabilistic constraint is proposed, while in the other two models, proposed for validation of the first model, probabilistic constraints are considered. A mathematical-programming based algorithm (a matheuristic) is proposed for solving the models. Moreover, the Latin hypercube sampling method is employed to generate scenarios for the scenario-based models. Numerical examples show the necessity of considering the stochastic nature of the problem and the accuracy of the proposed models and solution method. |
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AbstractList | •Proposing a two-stage stochastic programming model and two models with continuous and discrete probabilistic constraints.•Considering of violations as second stage decision variables in proposed two-stage stochastic programming models.•Using of Latin hypercube sampling method for scenario generation.•Considering of different sensitivity analysis to check validity and efficiency of proposed methods.•Proposing a mathematical based solution method to solve large size problems.
Medical drug shortages are an important issue in health care, since they can significantly affect patients’ health. Thus, selecting the appropriate distribution and inventory policies plays an important role in decreasing drug shortages. In this context, inventory routing models can be used to determine optimal policies in the context of medical drug distribution. However, in real-world conditions, some parameters in these models are subject to uncertainty. This paper examines the effects of uncertainty in the demand by relying on a two-stage stochastic programming approach to incorporate it into the optimization model. A two-stage model is then proposed and two different approaches based on chance constraints are used to assess the validity of the proposed model. In the first model, a scenario-based two-stage stochastic programming model without probabilistic constraint is proposed, while in the other two models, proposed for validation of the first model, probabilistic constraints are considered. A mathematical-programming based algorithm (a matheuristic) is proposed for solving the models. Moreover, the Latin hypercube sampling method is employed to generate scenarios for the scenario-based models. Numerical examples show the necessity of considering the stochastic nature of the problem and the accuracy of the proposed models and solution method. |
Author | Nikzad, Erfaneh Bashiri, Mahdi Oliveira, Fabricio |
Author_xml | – sequence: 1 givenname: Erfaneh surname: Nikzad fullname: Nikzad, Erfaneh email: E.nikzad@shahed.ac.ir organization: Department of Industrial Engineering, Shahed University, Tehran, Iran – sequence: 2 givenname: Mahdi orcidid: 0000-0002-5448-1773 surname: Bashiri fullname: Bashiri, Mahdi email: Bashiri@shahed.ac.ir organization: Department of Industrial Engineering, Shahed University, Tehran, Iran – sequence: 3 givenname: Fabricio orcidid: 0000-0003-0300-9337 surname: Oliveira fullname: Oliveira, Fabricio email: Fabricio.oliveira@aalto.fi organization: Systems Analysis Laboratory, Department of Mathematics and Systems Analysis, School of Science, Aalto University, FI-00076 AALTO, Finland |
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Keywords | Chance constraints Stochastic inventory routing problem Medical drug distribution Matheuristic algorithm Two-stage stochastic programming Latin hypercube sampling method |
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SubjectTerms | Chance constraints Latin hypercube sampling method Matheuristic algorithm Medical drug distribution Stochastic inventory routing problem Two-stage stochastic programming |
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Title | Two-stage stochastic programming approach for the medical drug inventory routing problem under uncertainty |
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