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Decision Tree Based Salp Swarm Optimization for Multi Medical Data Classification with Feature Reduction Technique
Sarala, Sakunthala Prabha Kadaksham; Chitraivel, Mahesh; Raj, Raja Soosaimarian Peter.
  • Sarala, Sakunthala Prabha Kadaksham; VelTech RangarajanDr.Sagunthala R & D Institute of Science and Technology. Department of Information Technology. Chennai. IN
  • Chitraivel, Mahesh; VelTech RangarajanDr.Sagunthala R & D Institute of Science and Technology. Department of Information Technology. Chennai. IN
  • Raj, Raja Soosaimarian Peter; Vellore Institute of Technology. School of Computer Science and Engineering. Vellore. IN
Braz. arch. biol. technol ; 64: e21210240, 2021. tab, graf
Artículo en Inglés | LILACS-Express | LILACS | ID: biblio-1355817
ABSTRACT
Abstract The ambitious task in the domain of medical informatics is medical data classification. From medical datasets, intention to ameliorate human burden with the medical data classification entails to taking in classification designs. The medical data classification is the major focus of this paper, where a Decision Tree based Salp Swarm Optimization (DT-SWO) algorithm is proposed. After pre-processingthe hybrid feature selection method selects the medical data features. The high dimensional features are reduced by Discriminant Independent Component Analysis (DICA) and DT-SWO is to classify the most relevant class of medical data. The details of four datasets namely Leukemia, Diffuse Larger B-cell Lymphomas (DLBCL), Lung cancer and Colon relating to four diseases for heart, liver, cancer and lungs are collected from the UCI machine learning repository. Ultimately, the experimental outcomes demonstrated that the proposed DT-SWO algorithm is suitable for medical data classification than other algorithms.


Texto completo: Disponible Índice: LILACS (Américas) Tipo de estudio: Evaluación Económica en Salud Idioma: Inglés Revista: Braz. arch. biol. technol Asunto de la revista: Biologia Año: 2021 Tipo del documento: Artículo País de afiliación: India Institución/País de afiliación: VelTech RangarajanDr.Sagunthala R & D Institute of Science and Technology/IN / Vellore Institute of Technology/IN

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Texto completo: Disponible Índice: LILACS (Américas) Tipo de estudio: Evaluación Económica en Salud Idioma: Inglés Revista: Braz. arch. biol. technol Asunto de la revista: Biologia Año: 2021 Tipo del documento: Artículo País de afiliación: India Institución/País de afiliación: VelTech RangarajanDr.Sagunthala R & D Institute of Science and Technology/IN / Vellore Institute of Technology/IN