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We propose two pre-processing steps to classification that apply convex hull- based algorithms to the training set to help improve the performance and speed of classification. The Class Reconstruction algorithm uses a clustering algorithm combined with a convex hull-based approach that re-labels the dataset with a new and expanded class structure. We demonstrate how this performance- improvement algorithm helps boost the accuracy results of Naive Bayes in some, but not all, cases that use real-world datasets.

Produktbeschreibung
We propose two pre-processing steps to classification that apply convex hull- based algorithms to the training set to help improve the performance and speed of classification. The Class Reconstruction algorithm uses a clustering algorithm combined with a convex hull-based approach that re-labels the dataset with a new and expanded class structure. We demonstrate how this performance- improvement algorithm helps boost the accuracy results of Naive Bayes in some, but not all, cases that use real-world datasets.
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Autorenporträt
El Dr. Sathish Kumar Penchala tiene muchos artículos sobre AIML y es un distinguido profesor y jefe de AIML en IIST, Indore El Sr. Prateek Dutta es un estudiante aspirante en la rama de AIML, líder de proyecto de prácticas con la colaboración extranjera, Ghrce, Nagpur Dr. Dheeraj Rane tiene muchos artículos sobre AIML y distinguida facultad y cabeza para CSE en IIST, Indore