Hybrid revised weighted fuzzy c-means clustering with Nelder-Mead simplex algorithm for generalized multisource Weber problem

Purpose The purpose of this paper is to propose hybrid revised weighted fuzzy c-means (RWFCM) clustering and Nelder–Mead (NM) simplex algorithm, called as RWFCM-NM, for generalized multisource Weber problem (MWP). Design/methodology/approach Although the RWFCM claims that there is no obligation to s...

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Veröffentlicht in:Journal of enterprise information management 2018-10, Vol.31 (6), p.908-924
Hauptverfasser: Kucukdeniz, Tarik, Esnaf, Sakir
Format: Artikel
Sprache:eng
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Zusammenfassung:Purpose The purpose of this paper is to propose hybrid revised weighted fuzzy c-means (RWFCM) clustering and Nelder–Mead (NM) simplex algorithm, called as RWFCM-NM, for generalized multisource Weber problem (MWP). Design/methodology/approach Although the RWFCM claims that there is no obligation to sequentially use different methods together, NM’s local search advantage is investigated and performance of the proposed hybrid algorithm for generalized MWP is tested on well-known research data sets. Findings Test results state the outstanding performance of new hybrid RWFCM and NM simplex algorithm in terms of cost minimization and CPU times. Originality/value Proposed approach achieves better results in continuous facility location problems.
ISSN:1741-0398
1758-7409
DOI:10.1108/JEIM-01-2018-0002