Classification via Incoherent Subspaces

نویسندگان

  • Karin Schnass
  • Pierre Vandergheynst
چکیده

This article presents a new classification framework that can extract individual features per class. The scheme is based on a model of incoherent subspaces, each one associated to one class, and a model on how the elements in a class are represented in this subspace. After the theoretical analysis an alternate projection algorithm to find such a collection is developed. The classification performance and speed of the proposed method is tested on the AR and YaleB databases and compared to that of Fisher’s LDA and a recent approach based on on `1 minimisation. Finally connections of the presented scheme to already existing work are discussed and possible ways of extensions are pointed out.

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عنوان ژورنال:
  • CoRR

دوره abs/1005.1471  شماره 

صفحات  -

تاریخ انتشار 2010