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Regressing Robust and Discriminative 3D Morphable Models with a very Deep Neural Network

About

The 3D shapes of faces are well known to be discriminative. Yet despite this, they are rarely used for face recognition and always under controlled viewing conditions. We claim that this is a symptom of a serious but often overlooked problem with existing methods for single view 3D face reconstruction: when applied "in the wild", their 3D estimates are either unstable and change for different photos of the same subject or they are over-regularized and generic. In response, we describe a robust method for regressing discriminative 3D morphable face models (3DMM). We use a convolutional neural network (CNN) to regress 3DMM shape and texture parameters directly from an input photo. We overcome the shortage of training data required for this purpose by offering a method for generating huge numbers of labeled examples. The 3D estimates produced by our CNN surpass state of the art accuracy on the MICC data set. Coupled with a 3D-3D face matching pipeline, we show the first competitive face recognition results on the LFW, YTF and IJB-A benchmarks using 3D face shapes as representations, rather than the opaque deep feature vectors used by other modern systems.

Anh Tuan Tran, Tal Hassner, Iacopo Masi, Gerard Medioni• 2016

Related benchmarks

TaskDatasetResultRank
Face VerificationYTF--
76
Face RecognitionLFW--
47
3D Face ReconstructionNoW face challenge (test)
Median Error (mm)1.83
38
Face VerificationIJB-A (test)
TAR @ FAR=0.010.6
37
Face IdentificationIJB-A (test)
Rank-176.2
30
3D Face ReconstructionNoW
Median Error (mm)1.84
17
3D Face ReconstructionMICC Florence 3D Faces (Indoor)
Mean Error (mm)2.02
13
Face shape estimationNoW Challenge original (test)
Non-Metrical Median Error1.84
13
Face VerificationLabeled Faces in the Wild (LFW)--
13
3D Face ReconstructionFeng LQ 1.0
Median Error (mm)1.88
7
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