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Predictive model of water potability through a decision tree in Artificial Intelligence

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The objective of this work was to use the decision tree technique to define a model capable of predicting water potability. To evaluate the performance of the decision tree classification, a dataset extracted from Kaggle was used, which has 3276 water samples divided by the potability variable. Appl...

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Detalles Bibliográficos
Autores: Zevallos Apaza, Angel Alexis, Onque Gárate, Sofía Sair, Canaza Cuadros, Arian Eduardo Javier, Choqueneira Ccasa, Paulina Miriam
Formato: artículo
Fecha de Publicación:2022
Institución:Universidad La Salle
Repositorio:Revistas - Universidad La Salle
Lenguaje:español
OAI Identifier:oai:ojs.revistas.ulasalle.edu.pe:article/72
Enlace del recurso:https://revistas.ulasalle.edu.pe/innosoft/article/view/72
https://doi.org/10.48168/innosoft.s9.a72
https://purl.org/42411/s9/a72
https://n2t.net/ark:/42411/s9/a72
Nivel de acceso:acceso abierto
Materia:Drinking water
artificial intelligence
decision tree
Agua potable
inteligencia artificial
árbol de decisión
Descripción
Sumario:The objective of this work was to use the decision tree technique to define a model capable of predicting water potability. To evaluate the performance of the decision tree classification, a dataset extracted from Kaggle was used, which has 3276 water samples divided by the potability variable. Applying the Pandas and Scikit Learn libraries, a model based on a decision tree evaluated with the metrics of precision, accuracy, completeness, and F1 score was defined, achieving 0.77, 0.80, 0.85, and 0.81, respectively.
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