An Improved Genetic Algorithm with Initial Population Strategy for Symmetric TSP

Author:

Deng Yong1ORCID,Liu Yang2,Zhou Deyun1

Affiliation:

1. School of Electronics and Information, Northwestern Polytechnical University, Xian, Shaanxi 710072, China

2. School of Computer and Information Science, Southwest University, Chongqing 400715, China

Abstract

A new initial population strategy has been developed to improve the genetic algorithm for solving the well-known combinatorial optimization problem, traveling salesman problem. Based on thek-means algorithm, we propose a strategy to restructure the traveling route by reconnecting each cluster. The clusters, which randomly disconnect a link to connect its neighbors, have been ranked in advance according to the distance among cluster centers, so that the initial population can be composed of the random traveling routes. This process isk-means initial population strategy. To test the performance of our strategy, a series of experiments on 14 different TSP examples selected from TSPLIB have been carried out. The results show that KIP can decrease best error value of random initial population strategy and greedy initial population strategy with the ratio of approximately between 29.15% and 37.87%, average error value between 25.16% and 34.39% in the same running time.

Funder

National High Technology Research and Development Program of China

Publisher

Hindawi Limited

Subject

General Engineering,General Mathematics

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