2003
DOI: 10.1016/s0165-0114(02)00383-4
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Deriving priorities from fuzzy pairwise comparison judgements

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Cited by 525 publications
(300 citation statements)
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“…It takes the constraints of priority weights as fuzzy constraints and constructs the membership functions of fuzzy constraints to express DM's satisfaction. By maximizing DM's satisfaction degree, the fuzzy program is established to determine the priority weights from IVMPR (Mikhailov 2002(Mikhailov , 2003(Mikhailov , 2004Chen and Xu 2015).…”
Section: Shortcomings Of the Fpm For Deriving The Priority Weights Frmentioning
confidence: 99%
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“…It takes the constraints of priority weights as fuzzy constraints and constructs the membership functions of fuzzy constraints to express DM's satisfaction. By maximizing DM's satisfaction degree, the fuzzy program is established to determine the priority weights from IVMPR (Mikhailov 2002(Mikhailov , 2003(Mikhailov , 2004Chen and Xu 2015).…”
Section: Shortcomings Of the Fpm For Deriving The Priority Weights Frmentioning
confidence: 99%
“…The above membership function is often employed in the FPM to derive the priority weights from an IVMPR (Mikhailov 2002(Mikhailov , 2003(Mikhailov , 2004Chen and Xu 2015). However, there exist some shortcomings when using Eq.…”
Section: Letmentioning
confidence: 99%
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