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dc.creator Martínez-Legaz, Juan Enrique
dc.creator Soubeyran, Antoine
dc.date 2007-11-05T12:09:19Z
dc.date 2007-11-05T12:09:19Z
dc.date 2003-01-21
dc.date.accessioned 2017-01-31T00:57:57Z
dc.date.available 2017-01-31T00:57:57Z
dc.identifier http://hdl.handle.net/10261/1810
dc.identifier.uri http://dspace.mediu.edu.my:8181/xmlui/handle/10261/1810
dc.description We present a model of learning in which agents learn from errors. If an action turns out to be an error, the agent rejects not only that action but also neighboring actions. We find that, keeping memory of his errors, under mild assumptions an acceptable solution is asymptotically reached. Moreover, one can take advantage of big errors for a faster learning.
dc.description Partial support by the Ministerio de Ciencia y Tecnología, project BEC 2002-00642, and by the Comissionat per Universitats i Recerca de la Generalitat de Catalunya, Grant SGR2001-00162, is gratefully acknowledged.
dc.language eng
dc.relation UFAE and IAE Working Papers
dc.relation 557.03
dc.rights openAccess
dc.subject Learning
dc.subject Errors
dc.subject Fixed points
dc.subject Normal form games
dc.subject Best reply functions
dc.title Learning from Errors
dc.type Documento de trabajo


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