An effective iterated greedy algorithm for solving a multi-compartment AGV scheduling problem in a matrix manufacturing workshop
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Date
2021
Authors
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Publisher
ELSEVIER
Open Access Color
Green Open Access
No
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Publicly Funded
No
Abstract
In this paper we address a multi-compartment automatic guided vehicle scheduling (MC-AGVS) problem from a matrix manufacturing workshop that has attracted more and more attention of manufacturing firms in recent years. The problem aims to determine a solution to minimize the total cost including the travel cost the service cost and the cost of vehicles involved. For this purpose a mixed-integer linear programming model is first constructed. Then a novel iterated greedy (IG) algorithm including accelerations for evaluating objective functions of neighboring solutions, an improved nearest-neighbor-based constructive heuristic, an improved sweep-based constructive heuristic, an improved destruction procedure, and a simulated annealing type of acceptance criterion is proposed. At last a series of comparative experiments are implemented based on some real-world instances from an electronic equipment manufacturing enterprise. The computational results demonstrate that the proposed IG algorithm has generated substantially better solutions than the existing algorithms in solving the problem under consideration. (C) 2020 Elsevier B.V. All rights reserved.
Description
Keywords
Automated guided vehicle, Multi-compartment, Scheduling, Iterated greedy algorithm, Heuristics, VEHICLE-ROUTING PROBLEM, ANT COLONY ALGORITHM, MEMETIC ALGORITHM, SEARCH ALGORITHM, TABU SEARCH, PATH, Scheduling, Iterated Greedy Algorithm, Heuristics, Automated Guided Vehicle, Multi-compartment
Fields of Science
0211 other engineering and technologies, 0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology
Citation
WoS Q
Scopus Q

OpenCitations Citation Count
54
Source
Applied Soft Computing
Volume
99
Issue
Start Page
106945
End Page
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Citations
CrossRef : 55
Scopus : 85
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Mendeley Readers : 28
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