Please use this identifier to cite or link to this item:
https://hdl.handle.net/20.500.14279/30856
Title: | Interactive and non-interactive hybrid immigrants schemes for ant algorithms in dynamic environments | Authors: | Mavrovouniotis, Michalis Yang, Shengxiang |
Major Field of Science: | Natural Sciences | Field Category: | Computer and Information Sciences | Keywords: | Traveling salesman problem;ACO algorithms;Ant algorithms;Ant Colony Optimization algorithms;Changing environment;Dynamic environments;Dynamic optimization problem (DOP);Travelling salesman problem;Ant colony optimization | Issue Date: | 16-Sep-2014 | Source: | 2014 IEEE Congress on Evolutionary Computation, CEC 2014, Beijing, China, 6 - 11 July 2014 | Conference: | Proceedings of the 2014 IEEE Congress on Evolutionary Computation, CEC 2014 | Abstract: | Dynamic optimization problems (DOPs) have been a major challenge for ant colony optimization (ACO) algorithms. The integration of ACO algorithms with immigrants schemes showed promising results on different DOPs. Each type of immigrants scheme aims to address a DOP with specific characteristics. For example, random and elitism-based immigrants perform well on severely and slightly changing environments, respectively. In this paper, two hybrid immigrants, i.e., non-interactive and interactive, schemes are proposed to combine the merits of the aforementioned immigrants schemes. The experiments on a series of dynamic travelling salesman problems showed that the hybridization of immigrants further improves the performance of ACO algorithms. | URI: | https://hdl.handle.net/20.500.14279/30856 | ISBN: | 9781479914883 | DOI: | 10.1109/CEC.2014.6900481 | Rights: | © IEEE | Type: | Conference Papers | Affiliation : | De Montfort University |
Appears in Collections: | Άρθρα/Articles |
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