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      Flower Pollination Algorithm: A Novel Approach for Multiobjective Optimization

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          Abstract

          Multiobjective design optimization problems require multiobjective optimization techniques to solve, and it is often very challenging to obtain high-quality Pareto fronts accurately. In this paper, the recently developed flower pollination algorithm (FPA) is extended to solve multiobjective optimization problems. The proposed method is used to solve a set of multobjective test functions and two bi-objective design benchmarks, and a comparison of the proposed algorithm with other algorithms has been made, which shows that FPA is efficient with a good convergence rate. Finally, the importance for further parametric studies and theoretical analysis are highlighted and discussed.

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          Author and article information

          Journal
          22 August 2014
          Article
          10.1080/0305215X.2013.832237
          1408.5332
          19b37e6f-cfb6-48e6-adca-02d5d7db68ac

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          90C26
          X. S. Yang, M. Karamanoglu, X. S. He, Flower Pollination Algorithm: A Novel Approach for Multiobjective Optimization, Engineering Optimization, 46 (9), pp. 1222 - 1237 (2014)
          17 pages 8 figures. arXiv admin note: substantial text overlap with arXiv:1404.0695
          math.OC cs.NE nlin.AO

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