Artículo
Visual analytics in cheminformatics: user-supervised descriptor selection for QSAR methods
Martínez, María Jimena
; Ponzoni, Ignacio
; Diaz, Monica Fatima
; Vazquez, Gustavo Esteban
; Soto, Axel Juan





Fecha de publicación:
19/08/2015
Editorial:
Chemistry Central
Revista:
Journal of cheminformatics
ISSN:
1758-2946
Idioma:
Inglés
Tipo de recurso:
Artículo publicado
Clasificación temática:
Resumen
The design of QSAR/QSPR models is a challenging problem, where the selection of the most relevant descriptors constitutes a key step of the process. Several feature selection methods that address this step are concentrated on statistical associations among descriptors and target properties, whereas the chemical knowledge is left out of the analysis. For this reason, the interpretability and generality of the QSAR/QSPR models obtained by these feature selection methods are drastically affected. Therefore, an approach for integrating domain expert?s knowledge in the selection process is needed for increase the confidence in the final set of descriptors.
Palabras clave:
Feature Selection
,
Visual Analytics
,
Qsar
,
Cheminformatics
Archivos asociados
Licencia
Identificadores
Colecciones
Articulos(PLAPIQUI)
Articulos de PLANTA PILOTO DE INGENIERIA QUIMICA (I)
Articulos de PLANTA PILOTO DE INGENIERIA QUIMICA (I)
Citación
Martínez, María Jimena; Ponzoni, Ignacio; Diaz, Monica Fatima; Vazquez, Gustavo Esteban; Soto, Axel Juan; Visual analytics in cheminformatics: user-supervised descriptor selection for QSAR methods; Chemistry Central; Journal of cheminformatics; 7; 39; 19-8-2015; 1-17
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