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Participatory modelling for poverty alleviation using fuzzy cognitive maps and OWA learning aggregation

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Auteur
Papageorgiou K., Singh P.K., Papageorgiou E.I., Chudasama H., Bochtis D., Stamoulis G.
Date
2020
Language
en
DOI
10.1371/journal.pone.0233984
Sujet
article
averaging
cognitive map
human
India
learning
outcome assessment
poverty
decision making
fuzzy logic
management
poverty
prevention and control
Decision Making
Fuzzy Logic
Humans
India
Policy Making
Poverty
Public Library of Science
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Résumé
Participatory modelling is an emerging approach in the decision-making process through which stakeholders contribute to the representation of the perceived causal linkages of a complex system. The use of fuzzy cognitive maps (FCMs) for participatory modelling helps policy-makers develop dynamic quantitative models for strategising development interventions. The aggregation of knowledge from multiple stakeholders provides consolidated and more reliable results. Average aggregation is the most common aggregation method used in FCMs-based modelling for weighted interconnections between concepts. This paper proposes a new aggregation method using learning OWA (ordered weighted averaging) operators for aggregating FCM weights assigned by various stakeholders. Besides, we report a comparative analysis of ‘OWA learning aggregation’ with the conventional average aggregation method, while evaluating the theory of change for the world’s most extensive poverty alleviation programme in India. The results of the FCMWizard web-based tool show that the proposed method provides an opportunity to policy-makers for evaluating outcomes of proposed policies while addressing social resilience and economic mobility. © 2020 Papageorgiou et al. This is an open access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
URI
http://hdl.handle.net/11615/77679
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