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dc.date.accessioned 2012-10-10T11:49:05Z
dc.date.available 2012-10-10T11:49:05Z
dc.date.issued 2000
dc.identifier.uri http://sedici.unlp.edu.ar/handle/10915/22154
dc.description.abstract This study investigates an approach of knowledge discovery and data mining in insufficient databases. An application of Computational Taxonomy analysis demonstrates that the approach is effective in such a data mining process. The approach is characterized by the use ot both the second type of domain knowledge and visualization. This type of knowledge is newly defined in this study and deduced from supposition about background situations of the domain. The supposition is triggered by strong intuition about the extracted features in a recurrent process of data mining. This type of domain knowledge is useful not only for discovering interesting knowledge but al so tor guiding the subsequent search for more explicit and interesting knowledge. The visualization is very useful for triggering the supposition. en
dc.format.extent 107-110 es
dc.language en es
dc.subject Computational Taxonomy en
dc.subject Data mining es
dc.subject base de datos es
dc.subject Clustering es
dc.subject Taxonomy en
dc.subject Insufficient database en
dc.subject Knowledge discovery en
dc.title A data mining approach to computational taxonomy en
dc.type Objeto de conferencia es
sedici.creator.person Perichinsky, Gregorio es
sedici.creator.person García Martínez, Ramón es
sedici.description.note Eje: Ingeniería de software y base de datos es
sedici.subject.materias Ciencias Informáticas es
sedici.description.fulltext true es
mods.originInfo.place Red de Universidades con Carreras en Informática (RedUNCI) es
sedici.subtype Objeto de conferencia es
sedici.rights.license Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Argentina (CC BY-NC-SA 2.5)
sedici.rights.uri http://creativecommons.org/licenses/by-nc-sa/2.5/ar/
sedici.date.exposure 2000-05 es
sedici.relation.event II Workshop de Investigadores en Ciencias de la Computación es
sedici.description.peerReview peer-review es


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Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Argentina (CC BY-NC-SA 2.5) Excepto donde se diga explícitamente, este item se publica bajo la siguiente licencia Creative Commons Attribution-NonCommercial-ShareAlike 2.5 Argentina (CC BY-NC-SA 2.5)