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Papers/Self-supervised learning of a facial attribute embedding f...

Self-supervised learning of a facial attribute embedding from video

Olivia Wiles, A. Sophia Koepke, Andrew Zisserman

2018-08-21AttributeSelf-Supervised LearningUnsupervised Facial Landmark Detection
PaperPDFCodeCode

Abstract

We propose a self-supervised framework for learning facial attributes by simply watching videos of a human face speaking, laughing, and moving over time. To perform this task, we introduce a network, Facial Attributes-Net (FAb-Net), that is trained to embed multiple frames from the same video face-track into a common low-dimensional space. With this approach, we make three contributions: first, we show that the network can leverage information from multiple source frames by predicting confidence/attention masks for each frame; second, we demonstrate that using a curriculum learning regime improves the learned embedding; finally, we demonstrate that the network learns a meaningful face embedding that encodes information about head pose, facial landmarks and facial expression, i.e. facial attributes, without having been supervised with any labelled data. We are comparable or superior to state-of-the-art self-supervised methods on these tasks and approach the performance of supervised methods.

Results

TaskDatasetMetricValueModel
Facial Recognition and Modelling300WNME5.71FAb-Net
Facial Recognition and ModellingMAFLNME3.44FAB-Net
Facial Landmark Detection300WNME5.71FAb-Net
Facial Landmark DetectionMAFLNME3.44FAB-Net
Face Reconstruction300WNME5.71FAb-Net
Face ReconstructionMAFLNME3.44FAB-Net
3D300WNME5.71FAb-Net
3DMAFLNME3.44FAB-Net
3D Face Modelling300WNME5.71FAb-Net
3D Face ModellingMAFLNME3.44FAB-Net
3D Face Reconstruction300WNME5.71FAb-Net
3D Face ReconstructionMAFLNME3.44FAB-Net

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