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A New Crossover Technique to Improve Genetic Algorithm and Its Application to TSP

Authors :
Akter, Shamima
Nahar, Nazmun
Hossain, Mohammad Shahadat
Andersson, Karl
Akter, Shamima
Nahar, Nazmun
Hossain, Mohammad Shahadat
Andersson, Karl
Publication Year :
2019

Abstract

Optimization problem like Travelling Salesman Problem (TSP) can be solved by applying Genetic Algorithm (GA) to obtain perfect approximation in time. In addition, TSP is considered as a NP-hard problem as well as an optimal minimization problem. Selection, crossover and mutation are the three main operators of GA. The algorithm is usually employed to find the optimal minimum total distance to visit all the nodes in a TSP. Therefore, the research presents a new crossover operator for TSP, allowing the further minimization of the total distance. The proposed crossover operator consists of two crossover point selection and new offspring creation by performing cost comparison. The computational results as well as the comparison with available well-developed crossover operators are also presented. It has been found that the new crossover operator produces better results than that of other cross-over operators.<br />A belief-rule-based DSS to assess flood risks by using wireless sensor networks

Details

Database :
OAIster
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1234388447
Document Type :
Electronic Resource
Full Text :
https://doi.org/10.1109.ECACE.2019.8679367