travel route optimization
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2021 ◽  
Vol 13 (3) ◽  
pp. 1408
Author(s):  
Fuying Liu ◽  
Chen Liu ◽  
Qi Zhao ◽  
Chenhao He

Accurate travel route optimization is essential to promote and grow tourism in modern society. This paper investigates a travel route optimization problem alongside the urban railway line and proposes a hybrid teaching–learning-based optimization (HTLBO) algorithm. First, a mathematical programming model is established to minimize the total traveling time, in which the routes between and in different cities have to be appropriately determined. Then, a hybrid metaheuristic named HTLBO is proposed for solution generation. In HTLBO, depth first search (DFS) is utilized to obtain the optimal routes of any two stations in railway network, and a three-level coding method is designed to accommodate the problem characteristic. Besides, opposition-based learning (OBL) is embedded into teaching-learning-based optimization (TLBO) for enhancing HTLBO’s exploration ability, while variable neighborhood descent (VND) is used to enhance the algorithm’s exploitation ability. Finally, a case study is presented and simulation results verify HTLBO’s feasibility and effectiveness.


IEEE Access ◽  
2019 ◽  
Vol 7 ◽  
pp. 90760-90776 ◽  
Author(s):  
Shabir Ahmad ◽  
Israr Ullah ◽  
Faisal Mehmood ◽  
Muhammad Fayaz ◽  
DoHyeun Kim

Author(s):  
Yuan Bai ◽  
Liangshan Shao ◽  
Yunfei Qiu ◽  
Zhanwei Du ◽  
Linyu Hao

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