Cross-database non-frontal facial expression recognition based on transductive deep transfer learning
Keyu Yan (1, 2) Wenming Zheng (1, 2), Tong Zhang (1, 2), Yuan, Zong (1), Zhen Cui (3) ((1) the Key Laboratory of Child Development and, Learning Science of Ministry of Education, and the Department of Information, Science, Engineering, Southeast University

TL;DR
This paper introduces a transductive deep transfer learning approach based on VGGface16-Net for cross-database non-frontal facial expression recognition, demonstrating superior performance over existing methods.
Contribution
The paper proposes a novel transductive deep transfer learning architecture that effectively learns discriminative features for cross-database non-frontal facial expression recognition.
Findings
Outperforms state-of-the-art methods on BU-3DEF and Multi-PIE databases.
Effectively handles cross-database non-frontal facial expression recognition.
Validates the approach with extensive experiments.
Abstract
Cross-database non-frontal expression recognition is a very meaningful but rather difficult subject in the fields of computer vision and affect computing. In this paper, we proposed a novel transductive deep transfer learning architecture based on widely used VGGface16-Net for this problem. In this framework, the VGGface16-Net is used to jointly learn an common optimal nonlinear discriminative features from the non-frontal facial expression samples between the source and target databases and then we design a novel transductive transfer layer to deal with the cross-database non-frontal facial expression classification task. In order to validate the performance of the proposed transductive deep transfer learning networks, we present extensive crossdatabase experiments on two famous available facial expression databases, namely the BU-3DEF and the Multi-PIE database. The final experimental…
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Taxonomy
TopicsFace and Expression Recognition · Emotion and Mood Recognition · Face recognition and analysis
