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A semisupervised approach in spherical separation

Abstract
Publication Date:
2015
abstract:
We embed the concept of spherical separation of two nite disjoint set of points into the semisupervised framework. This approach appears appealing since in the realworld classication problems the number of unlabelled points is very large and labelling data is in general expensive. We come out with a model characterized by an error function which is nonconvex and nondierentiable, that we minimize by means of a bundle method. Numerical results on some small/large datasets drawn from literature are reported.
Iris type:
04.02 Abstract in Atti di convegno
Keywords:
Classification; Separability; Optimization
List of contributors:
Astorino, Annabella
Authors of the University:
ASTORINO ANNABELLA
Handle:
https://iris.cnr.it/handle/20.500.14243/336129
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