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Deeply learned face representations are sparse, selective, and robust

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This paper designs a high-performance deep convolutional network (DeepID2+) for face recognition. It is learned with the identification-verification supervisory signal. By increasing the dimension of hidden representations and adding supervision to early convolutional layers, DeepID2+ achieves new state-of-the-art on LFW and YouTube Faces benchmarks. Through empirical studies, we have discovered three properties of its deep neural activations critical for the high performance: sparsity, selectiveness and robustness. (1) It is observed that neural activations are moderately sparse. Moderate sparsity maximizes the discriminative power of the deep net as well as the distance between images. It is surprising that DeepID2+ still can achieve high recognition accuracy even after the neural responses are binarized. (2) Its neurons in higher layers are highly selective to identities and identity-related attributes. We can identify different subsets of neurons which are either constantly excited or inhibited when different identities or attributes are present. Although DeepID2+ is not taught to distinguish attributes during training, it has implicitly learned such high-level concepts. (3) It is much more robust to occlusions, although occlusion patterns are not included in the training set.

Yi Sun, Xiaogang Wang, Xiaoou Tang• 2014

Related benchmarks

TaskDatasetResultRank
Face VerificationLFW
Mean Accuracy99.47
339
Face VerificationLFW (test)
Verification Accuracy99.47
160
Face VerificationYTF
Accuracy93.2
76
Face VerificationLFW (Labeled Faces in the Wild) unrestricted-labeled-outside-data protocol 14
Accuracy99.47
47
Face RecognitionLFW
Accuracy99.47
47
Face VerificationYTF (test)
Verification Accuracy93.2
24
Face VerificationYouTube Face (YTF) 40 (10-fold cross-validation)
Accuracy93.2
23
Face VerificationLFW unrestricted with labeled outside data 9
Accuracy99.47
16
Face VerificationYTF unrestricted with labeled outside data 35
Accuracy93.2
12
Face VerificationOulu-CASIA
Accuracy96.5
10
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