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Optimization Method of Customized Shuttle Bus Lines under Random Condition

Authors :
Kang Zhou
Zhichao Sun
Rui Song
Xiao Peng
Xinzheng Yang
Source :
Algorithms, Vol 14, Iss 52, p 52 (2021), Algorithms, Volume 14, Issue 2
Publication Year :
2021
Publisher :
MDPI AG, 2021.

Abstract

Transit network optimization can effectively improve transit efficiency, improve traffic conditions, and reduce the pollution of the environment. In order to better meet the travel demands of passengers, the factors influencing passengers’ satisfaction with a customized bus are fully analyzed. Taking the minimum operating cost of the enterprise as the objective and considering the random travel time constraints of passengers, the customized bus routes are optimized. The K-means clustering analysis is used to classify the passengers’ needs based on the analysis of the passenger travel demand of the customized shuttle bus, and the time stochastic uncertainty under the operating environment of the customized shuttle bus line is fully considered. On the basis of meeting the passenger travel time requirements and minimizing the cost of service operation, an optimization model that maximizes the overall satisfaction of passengers and public transit enterprises is structured. The smaller the value of the objective function is, the lower the operating cost. When the value is negative, it means there is profit. The model is processed by the deterministic processing method of random constraints, and then the hybrid intelligent algorithm is used to solve the model. A stochastic simulation technique is used to train stochastic constraints to approximate uncertain functions. Then, the improved immune clonal algorithm is used to solve the vehicle routing problem. Finally, it is proved by a case that the method can reasonably and efficiently realize the optimization of the customized shuttle bus lines in the region.

Details

ISSN :
19994893
Volume :
14
Database :
OpenAIRE
Journal :
Algorithms
Accession number :
edsair.doi.dedup.....ce991cdb92d0fc94c13abe47d96dfcfe
Full Text :
https://doi.org/10.3390/a14020052