ICCV2013-Hybrid Deep Learning for Face Verification
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ICCV2013-Hybrid Deep Learning for Face Verification
用深度学习做面部特征点检测最早的论文
This paper proposes a hybrid convolutional network (ConvNet)-Restricted Boltzmann Machine (RBM) model for
face verification in wild conditions. A key contribution of this work is to directly learn relational visual features, which indicate identity similarities, from raw pixels of face pairs with a hybrid deep network. The deep ConvNets in our model mimic the primary visual cortex to jointly extract local relational visual features from two face images compared with the learned filter pairs. These relational features are further processed through multiple layers to extract high-level and global features. Multiple groups of ConvNets are constructed in order to achieve robustness and characterize face similarities from different aspects. The top-layer RBM performs inference from complementary high-level features extracted from different ConvNet groups with a two-level average pooling hierarchy. The entire hybrid deep network is jointly fine-tuned to optimize for the task of face verification. Our model achieves competitive face verification performance on the LFW dataset.
- ICCV2013-Hybrid Deep Learning for Face Verification
- Discriminative Deep Metric Learning for Face Verification in the Wild(文献泛读)
- 泛读:CVPR2014:Discriminative Deep Metric Learning for Face Verification in theWild
- Learning hierarchical representations for face verification with convolutional deep belief networks
- deep learning for face detection
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- Deep Learning Face Representation by Joint Identification-Verification
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