Development of discrete differential evolution algorithm for solving traffic light scheduling problem
This project focus on researching the performance of the discrete differential evolution algorithm applied in the pedestrian-vehicle mixed-flow network scheduling problem. Given the pedestrian and vehicle flow mixed traffic model that describes both pedestrian behavior and vehicle behavior on the ma...
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Nanyang Technological University
2022
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sg-ntu-dr.10356-1585362022-05-27T05:04:44Z Development of discrete differential evolution algorithm for solving traffic light scheduling problem Shu, Wei Hua Su Rong School of Electrical and Electronic Engineering Shubham Gupta RSu@ntu.edu.sg Engineering::Electrical and electronic engineering This project focus on researching the performance of the discrete differential evolution algorithm applied in the pedestrian-vehicle mixed-flow network scheduling problem. Given the pedestrian and vehicle flow mixed traffic model that describes both pedestrian behavior and vehicle behavior on the macroscale, the scheduling problem turns into a mathematic model which could be optimized by various algorithms. Based on the model structure, the discrete differential evolution algorithm is developed to find the optimal solution in discrete space. Inspired by the traditional continuous differential evolution algorithm, two discrete mutation operators is proposed to fit this model. To help improve the performance of the mutation operator, a greedy-local-search operator is proposed by summarizing the feature of several local operators. The combined discrete algorithm merged the advantages of various operators, thereby, it has a more ideal performance in the traffic light scheduling problem. Master of Science (Computer Control and Automation) 2022-05-27T05:04:43Z 2022-05-27T05:04:43Z 2022 Thesis-Master by Coursework Shu, W. H. (2022). Development of discrete differential evolution algorithm for solving traffic light scheduling problem. Master's thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/158536 https://hdl.handle.net/10356/158536 en application/pdf Nanyang Technological University |
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Engineering::Electrical and electronic engineering Shu, Wei Hua Development of discrete differential evolution algorithm for solving traffic light scheduling problem |
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This project focus on researching the performance of the discrete differential evolution algorithm applied in the pedestrian-vehicle mixed-flow network scheduling problem. Given the pedestrian and vehicle flow mixed traffic model that describes both pedestrian behavior and vehicle behavior on the macroscale, the scheduling problem turns into a mathematic model which could be optimized by various algorithms. Based on the model structure, the discrete differential evolution algorithm is developed to find the optimal solution in discrete space. Inspired by the traditional continuous differential evolution algorithm, two discrete mutation operators is proposed to fit this model. To help improve the performance of the mutation operator, a greedy-local-search operator is proposed by summarizing the feature of several local operators. The combined discrete algorithm merged the advantages of various operators, thereby, it has a more ideal performance in the traffic light scheduling problem. |
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Su Rong |
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Su Rong Shu, Wei Hua |
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Thesis-Master by Coursework |
author |
Shu, Wei Hua |
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Shu, Wei Hua |
title |
Development of discrete differential evolution algorithm for solving traffic light scheduling problem |
title_short |
Development of discrete differential evolution algorithm for solving traffic light scheduling problem |
title_full |
Development of discrete differential evolution algorithm for solving traffic light scheduling problem |
title_fullStr |
Development of discrete differential evolution algorithm for solving traffic light scheduling problem |
title_full_unstemmed |
Development of discrete differential evolution algorithm for solving traffic light scheduling problem |
title_sort |
development of discrete differential evolution algorithm for solving traffic light scheduling problem |
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Nanyang Technological University |
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2022 |
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https://hdl.handle.net/10356/158536 |
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1734310171112374272 |