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Title: | A Noble Genetic Algorithm to Solve a Solid Green Traveling Purchaser Problem with Uncertain Cost Parameters |
Authors: | Roy, Arindam Gao, Rong Jia, Lifen Maity, Samir Kar, Samarjit |
Keywords: | In vitro fertilization crossover Noble genetic algorithm Solid traveling purchaser problem Uncertainty theory |
Issue Date: | 2020 |
Publisher: | SCOPUS American Journal of Mathematical and Management Sciences Taylor and Francis Ltd. |
Series/Report no.: | 40(1) |
Abstract: | The traveling purchaser problem (TPP) is a notable generalization of the traveling salesman problem (TSP) which involves selecting a subset of markets at a minimum traveling cost such that the demand for each product is satisfied. A solid green traveling purchaser problem (SGTPP) is a TPP in which, at each market, some conveyances are available to travel to another market with minimum cost considering the environmental impact caused by carbon emission. In this paper, we formulate an SGTPP with travel cost between each pair of markets and purchase price of the products as uncertain variables. Using uncertainty theory, an expected value model is formulated and then transformed into the corresponding deterministic form. Finally, a noble genetic algorithm (nGA) is designed to solve the proposed model. The algorithm is called noble because it adopts a crossover of the combination of a probabilistic selection of three parents, according to real-life In Vitro Fertilization (IVF) techniques. Computational results reveal that our proposal is favorably compared to previous algorithms in the existing literature. |
Description: | Roy, Arindam, Department of Computer Science and Application, Prabhat Kumar College, West Bengal, India; Gao, Rong, School of Economics and Management, Hebei University of Technology, Tianjin, China; Jia, Lifen, School of Management and Engineering, Capital University of Economics and Business, Beijing, China; Maity, Samir, OM Group, Indian Institute of Management Calcutta, Joka, India; Kar, Samarjit, Department of Mathematics, NIT Durgapur, Durgapur, India ISSN/ISBN - 01966324 pp.17-31 DOI - 10.1080/01966324.2020.1805060 |
URI: | https://www.scopus.com/inward/record.uri?eid=2-s2.0-85089860275&doi=10.1080%2f01966324.2020.1805060&partnerID=40&md5=1de67b743e60783fc23c1c35efff5446 https://ir.iimcal.ac.in:8443/jspui/handle/123456789/1273 |
Appears in Collections: | Operations Management |
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