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- W2588916478 abstract "Over the years, ant colony optimisation (ACO) algorithms have been proposed particularly for solving the hard combinatorial optimisation problems, such as the travelling salesman problem (TSP) and the job-shop scheduling problem (JSSP). Also, most real-world applications are concerned with the multi-objective optimisation problems. In this paper a new ant colony optimisation (ACO) algorithm is proposed for solving two or more objective functions, simultaneously. It is based on the ant colony system (ACS) algorithm and uses the random weight-based method. It is applied on several benchmark instances of the TSP and the JSSP from the literature and compared with more recent multi-objective ant colony optimisation algorithms (MOACO). The experimental results have shown that the proposed algorithm achieves better performance for solving the travelling salesman problem and the job-shop scheduling problem with multiple objectives. It also obtained well distribution all over the Pareto-optimal front." @default.
- W2588916478 created "2017-02-24" @default.
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- W2588916478 date "2017-01-01" @default.
- W2588916478 modified "2023-10-16" @default.
- W2588916478 title "Random weight-based ant colony optimisation algorithm for the multi-objective optimisation problems" @default.
- W2588916478 doi "https://doi.org/10.1504/ijsi.2017.10003270" @default.
- W2588916478 hasPublicationYear "2017" @default.
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