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Deep Learning Architectures For Heterogeneous Face Recognition, Seyed Mehdi Iranmanesh
Deep Learning Architectures For Heterogeneous Face Recognition, Seyed Mehdi Iranmanesh
Graduate Theses, Dissertations, and Problem Reports
Face recognition has been one of the most challenging areas of research in biometrics and computer vision. Many face recognition algorithms are designed to address illumination and pose problems for visible face images. In recent years, there has been significant amount of research in Heterogeneous Face Recognition (HFR). The large modality gap between faces captured in different spectrum as well as lack of training data makes heterogeneous face recognition (HFR) quite a challenging problem. In this work, we present different deep learning frameworks to address the problem of matching non-visible face photos against a gallery of visible faces.
Algorithms for …