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Papers/Dual Variational Generation for Low-Shot Heterogeneous Fac...

Dual Variational Generation for Low-Shot Heterogeneous Face Recognition

Chaoyou Fu, Xiang Wu, Yibo Hu, Huaibo Huang, Ran He

2019-03-25Face RecognitionHeterogeneous Face Recognition
PaperPDFCode(official)

Abstract

Heterogeneous Face Recognition (HFR) is a challenging issue because of the large domain discrepancy and a lack of heterogeneous data. This paper considers HFR as a dual generation problem, and proposes a novel Dual Variational Generation (DVG) framework. It generates large-scale new paired heterogeneous images with the same identity from noise, for the sake of reducing the domain gap of HFR. Specifically, we first introduce a dual variational autoencoder to represent a joint distribution of paired heterogeneous images. Then, in order to ensure the identity consistency of the generated paired heterogeneous images, we impose a distribution alignment in the latent space and a pairwise identity preserving in the image space. Moreover, the HFR network reduces the domain discrepancy by constraining the pairwise feature distances between the generated paired heterogeneous images. Extensive experiments on four HFR databases show that our method can significantly improve state-of-the-art results. The related code is available at https://github.com/BradyFU/DVG.

Results

TaskDatasetMetricValueModel
Facial Recognition and ModellingOulu-CASIA NIR-VISTAR @ FAR=0.00192.9LightCNN-29 + DVG
Facial Recognition and ModellingOulu-CASIA NIR-VISTAR @ FAR=0.0198.5LightCNN-29 + DVG
Facial Recognition and ModellingBUAA-VisNirTAR @ FAR=0.00197.3LightCNN-29 + DVG
Facial Recognition and ModellingBUAA-VisNirTAR @ FAR=0.0198.5LightCNN-29 + DVG
Facial Recognition and ModellingIIIT-D Viewed SketchTAR @ FAR=0.0197.86LightCNN-29 + DVG
Facial Recognition and ModellingCASIA NIR-VIS 2.0TAR @ FAR=0.00199.8LightCNN-29 + DVG
Face VerificationOulu-CASIA NIR-VISTAR @ FAR=0.00192.9LightCNN-29 + DVG
Face VerificationOulu-CASIA NIR-VISTAR @ FAR=0.0198.5LightCNN-29 + DVG
Face VerificationBUAA-VisNirTAR @ FAR=0.00197.3LightCNN-29 + DVG
Face VerificationBUAA-VisNirTAR @ FAR=0.0198.5LightCNN-29 + DVG
Face VerificationIIIT-D Viewed SketchTAR @ FAR=0.0197.86LightCNN-29 + DVG
Face VerificationCASIA NIR-VIS 2.0TAR @ FAR=0.00199.8LightCNN-29 + DVG
Face ReconstructionOulu-CASIA NIR-VISTAR @ FAR=0.00192.9LightCNN-29 + DVG
Face ReconstructionOulu-CASIA NIR-VISTAR @ FAR=0.0198.5LightCNN-29 + DVG
Face ReconstructionBUAA-VisNirTAR @ FAR=0.00197.3LightCNN-29 + DVG
Face ReconstructionBUAA-VisNirTAR @ FAR=0.0198.5LightCNN-29 + DVG
Face ReconstructionIIIT-D Viewed SketchTAR @ FAR=0.0197.86LightCNN-29 + DVG
Face ReconstructionCASIA NIR-VIS 2.0TAR @ FAR=0.00199.8LightCNN-29 + DVG
3DOulu-CASIA NIR-VISTAR @ FAR=0.00192.9LightCNN-29 + DVG
3DOulu-CASIA NIR-VISTAR @ FAR=0.0198.5LightCNN-29 + DVG
3DBUAA-VisNirTAR @ FAR=0.00197.3LightCNN-29 + DVG
3DBUAA-VisNirTAR @ FAR=0.0198.5LightCNN-29 + DVG
3DIIIT-D Viewed SketchTAR @ FAR=0.0197.86LightCNN-29 + DVG
3DCASIA NIR-VIS 2.0TAR @ FAR=0.00199.8LightCNN-29 + DVG
3D Face ModellingOulu-CASIA NIR-VISTAR @ FAR=0.00192.9LightCNN-29 + DVG
3D Face ModellingOulu-CASIA NIR-VISTAR @ FAR=0.0198.5LightCNN-29 + DVG
3D Face ModellingBUAA-VisNirTAR @ FAR=0.00197.3LightCNN-29 + DVG
3D Face ModellingBUAA-VisNirTAR @ FAR=0.0198.5LightCNN-29 + DVG
3D Face ModellingIIIT-D Viewed SketchTAR @ FAR=0.0197.86LightCNN-29 + DVG
3D Face ModellingCASIA NIR-VIS 2.0TAR @ FAR=0.00199.8LightCNN-29 + DVG
3D Face ReconstructionOulu-CASIA NIR-VISTAR @ FAR=0.00192.9LightCNN-29 + DVG
3D Face ReconstructionOulu-CASIA NIR-VISTAR @ FAR=0.0198.5LightCNN-29 + DVG
3D Face ReconstructionBUAA-VisNirTAR @ FAR=0.00197.3LightCNN-29 + DVG
3D Face ReconstructionBUAA-VisNirTAR @ FAR=0.0198.5LightCNN-29 + DVG
3D Face ReconstructionIIIT-D Viewed SketchTAR @ FAR=0.0197.86LightCNN-29 + DVG
3D Face ReconstructionCASIA NIR-VIS 2.0TAR @ FAR=0.00199.8LightCNN-29 + DVG

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