A NON-CONVEX PROXIMAL APPROACH FOR CENTROID-BASED CLASSIFICATION

被引:0
|
作者
Kahanam, Mewe-Hezoudah [1 ]
Le-Brusquet, Laurent [2 ]
Martin, Segolene [1 ]
Pesquet, Jean-Christophe [1 ]
机构
[1] Univ Paris Saclay, CentraleSupelec, Inria, Ctr Vis Numer, Gif Sur Yvette, France
[2] Univ Paris Saclay, CentraleSupelec, CNRS, Lab Signaux & Syst, Gif Sur Yvette, France
关键词
Supervised classification; centroid-based classification; non-convex optimization; transform learning;
D O I
10.1109/ICASSP43922.2022.9747071
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
In this paper, we propose a novel variational approach for supervised classification based on transform learning. Our approach consists of formulating an optimization problem on both the transform matrix and the centroids of the classes in a low-dimensional transformed space. The loss function is based on the distance to the centroids, which can be chosen in a flexible manner. To avoid trivial solutions or highly correlated clusters, our model incorporates a penalty term on the centroids, which encourages them to be separated. The resulting non-convex and non-smooth minimization problem is then solved by a primal-dual alternating minimization strategy. We assess the performance of our method on a bunch of supervised classification problems and compare it to state-of-the-art methods.
引用
收藏
页码:5702 / 5706
页数:5
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