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Unsupervised Facial Landmark Detection

Facial landmark detection in the unsupervised setting popularized by [1]. The evaluation occurs in two stages: (1) Embeddings are first learned in an unsupervised manner (i.e. without labels); (2) A simple regressor is trained to regress landmarks from the unsupervised embedding.

[1] Thewlis, James, Hakan Bilen, and Andrea Vedaldi. "Unsupervised learning of object landmarks by factorized spatial embeddings." Proceedings of the IEEE International Conference on Computer Vision. 2017.

( Image credit: Unsupervised learning of object landmarks by factorized spatial embeddings )

Papers

Showing 1115 of 15 papers

TitleStatusHype
Deep Feature Factorization For Concept DiscoveryCode0
Unsupervised Learning of Object Landmarks through Conditional Image GenerationCode0
Unsupervised learning of object landmarks by factorized spatial embeddingsCode0
Deforming Autoencoders: Unsupervised Disentangling of Shape and AppearanceCode0
SCOPS: Self-Supervised Co-Part SegmentationCode0
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