Self-Trained Supervised Segmentation of Subcortical Brain Structures Using Multispectral Magnetic Resonance Images.

The aim of this paper is investigate the feasibility of automatically training supervised methods, such as k-nearest neighbor (kNN) and principal component discriminant analysis (PCDA), and to segment the four subcortical brain structures: caudate, thalamus, pallidum, and putamen. The adoption of su...

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Publicado en:BioMed Research International Vol. 2015; pp. 1 - 10
Autores principales: Larobina, Michele, Murino, Loredana, Cervo, Amedeo, Alfano, Bruno
Formato: algorithm diagnostic images research tables/charts Journal Article
Publicado: Wiley-Blackwell 10/25/2015
Acceso en línea:Ver este registro en EBSCOhost