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Polynomial and RBF kernels as marker selection tools-a breast cancer case study

Zervakis Michalis, M.E. Blazadonakis

Πλήρης Εγγραφή


URI: http://purl.tuc.gr/dl/dias/02F9A884-340C-403D-82CD-69BBA151D2EF
Έτος 2007
Τύπος Αφίσα σε Συνέδριο
Άδεια Χρήσης
Λεπτομέρειες
Βιβλιογραφική Αναφορά M.E. Blazadonakis, M. Zervakis ,"Polynomial and RBF kernels as marker selection tools-a breast cancer case study ,"in 2007 Sixth Intern. Conf. on Machine Learn. and Applications, ICMLA.pp. 488-493.doi:10.1109/ICMLA.2007.67 https://doi.org/10.1109/ICMLA.2007.67
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Περίληψη

The problem of marker selection in DNA microarray experiment, due to the "curse of dimensionality", has been mostly addressed so far by linear approaches. Taking into account the fact that the domain of interest is a complex one, where non-linear interconnections and dependencies may also exist among the extremely large number of examined genes, we address the use of nonlinear tools to assess the problem. In this study, we propose to apply the kernel ability of Support Vector Machines in combination with Fisher's ratio as an alternative approach to assess the problem.

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