Self-Competition Particle Swarm Optimization Algorithm for the Vehicle Routing Problem With Time Window

The vehicle routing problem with time windows (VRPTW) is a well-known NP-Hard combinatorial optimization problem, which is frequently encountered in transportation and logistics scenarios. When traditional algorithms solve this problem, there are some problems, such as slow convergence speed. In thi...

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Published inIEEE access Vol. 12; pp. 127470 - 127488
Main Authors Wang, Yufeng, Chen, Xin, Shuang, Zhuo, Zhan, Ying, Chen, Ke, Xu, Chunyu
Format Journal Article
LanguageEnglish
Published Piscataway IEEE 2024
The Institute of Electrical and Electronics Engineers, Inc. (IEEE)
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ISSN2169-3536
2169-3536
DOI10.1109/ACCESS.2024.3401487

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Abstract The vehicle routing problem with time windows (VRPTW) is a well-known NP-Hard combinatorial optimization problem, which is frequently encountered in transportation and logistics scenarios. When traditional algorithms solve this problem, there are some problems, such as slow convergence speed. In this paper, a Self-competitive Particle Swarm Optimization (ScPSO) algorithm is proposed, which regulates the learning direction of the next generation of particles based on their degree of self-competition. When the particle's self-competition degree is low, it is compelled to learn from the individual optimal solution using the self-competition selection probability, thereby achieving rapid convergence. ScPSO uses the nonlinear inertia weight adaptive strategy to adjust the search preference in the search process, and it can balance the relationship between exploration and exploitation. Meanwhile, Random greedy heuristic selection and variable neighborhood search strategies are used in initial solution construction and constraint restriction. Finally, ScPSO is tested on 56 Solomon 100-customers benchmark problems and compared with four state-of-the-art VRPTW algorithms and best-known solutions reported on Solomon's webpage.The running results of the ScPSO algorithm are better than four state-of-the-art VRPTW algorithms and best-known solutions reported on Solomon's webpage. The experimental results show that ScPSO can solve VRPTW problems efficiently.
AbstractList The vehicle routing problem with time windows (VRPTW) is a well-known NP-Hard combinatorial optimization problem, which is frequently encountered in transportation and logistics scenarios. When traditional algorithms solve this problem, there are some problems, such as slow convergence speed. In this paper, a Self-competitive Particle Swarm Optimization (ScPSO) algorithm is proposed, which regulates the learning direction of the next generation of particles based on their degree of self-competition. When the particle's self-competition degree is low, it is compelled to learn from the individual optimal solution using the self-competition selection probability, thereby achieving rapid convergence. ScPSO uses the nonlinear inertia weight adaptive strategy to adjust the search preference in the search process, and it can balance the relationship between exploration and exploitation. Meanwhile, Random greedy heuristic selection and variable neighborhood search strategies are used in initial solution construction and constraint restriction. Finally, ScPSO is tested on 56 Solomon 100-customers benchmark problems and compared with four state-of-the-art VRPTW algorithms and best-known solutions reported on Solomon's webpage.The running results of the ScPSO algorithm are better than four state-of-the-art VRPTW algorithms and best-known solutions reported on Solomon's webpage. The experimental results show that ScPSO can solve VRPTW problems efficiently.
Author Zhan, Ying
Wang, Yufeng
Chen, Xin
Shuang, Zhuo
Chen, Ke
Xu, Chunyu
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Snippet The vehicle routing problem with time windows (VRPTW) is a well-known NP-Hard combinatorial optimization problem, which is frequently encountered in...
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SubjectTerms Algorithms
Combinatorial analysis
Competition
Convergence
Costs
Greedy algorithms
Heuristic algorithms
Machine learning
Optimization
Particle swarm optimization
random greedy heuristic selection strategy
Search methods
Search problems
Search process
self-competitive learning strategy
Space exploration
variable neighborhood search strategy
Vehicle routing
Windows (intervals)
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Title Self-Competition Particle Swarm Optimization Algorithm for the Vehicle Routing Problem With Time Window
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