Neural Class-Specific Regression for face verification

نویسندگان

  • Guanqun Cao
  • Alexandros Iosifidis
  • Moncef Gabbouj
چکیده

Face verification is a problem approached in the literature mainly using nonlinear class-specific subspace learning techniques. While it has been shown that kernel-based ClassSpecific Discriminant Analysis is able to provide excellent performance in smalland medium-scale face verification problems, its application in today’s large-scale problems is difficult due to its training space and computational requirements. In this paper, generalizing our previous work on kernel-based classspecific discriminant analysis, we show that class-specific subspace learning can be cast as a regression problem. This allows us to derive linear, (reduced) kernel and neural network-based class-specific discriminant analysis methods using efficient batch and/or iterative training schemes, suited for large-scale learning problems. We test the performance of these methods in two datasets describing mediumand large-scale face verification problems.

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عنوان ژورنال:
  • IET Biometrics

دوره 7  شماره 

صفحات  -

تاریخ انتشار 2018