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4 months ago

Joint 3D Face Reconstruction and Dense Alignment with Position Map Regression Network

Yao Feng; Fan Wu; Xiaohu Shao; Yanfeng Wang; Xi Zhou

Joint 3D Face Reconstruction and Dense Alignment with Position Map Regression Network

Abstract

We propose a straightforward method that simultaneously reconstructs the 3D facial structure and provides dense alignment. To achieve this, we design a 2D representation called UV position map which records the 3D shape of a complete face in UV space, then train a simple Convolutional Neural Network to regress it from a single 2D image. We also integrate a weight mask into the loss function during training to improve the performance of the network. Our method does not rely on any prior face model, and can reconstruct full facial geometry along with semantic meaning. Meanwhile, our network is very light-weighted and spends only 9.8ms to process an image, which is extremely faster than previous works. Experiments on multiple challenging datasets show that our method surpasses other state-of-the-art methods on both reconstruction and alignment tasks by a large margin.

Code Repositories

jimmy0087/faceai-master
tf
Mentioned in GitHub
heathentw/prnet-tf2
tf
Mentioned in GitHub
YadiraF/PRNet
Official
tf
minoring/PRNet
tf
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
3d-face-reconstruction-on-aflw2000-3dPRN
Mean NME : 3.9625%
3d-face-reconstruction-on-florencePRN
Mean NME : 3.7551%
3d-face-reconstruction-on-now-benchmark-1PRNet
Mean Reconstruction Error (mm): 1.98
Median Reconstruction Error: 1.50
Stdev Reconstruction Error (mm): 1.88
3d-face-reconstruction-on-realyPRNet
@cheek: 1.863 (±0.698)
@forehead: 2.429 (±0.588)
@mouth: 1.838 (±0.637)
@nose: 1.923 (±0.518)
all: 2.013
3d-face-reconstruction-on-realy-side-viewPRNet
@cheek: 1.960 (±0.731)
@forehead: 2.445 (±0.570)
@mouth: 1.856 (±0.607)
@nose: 1.868 (±0.510)
all: 2.032
3d-face-reconstruction-on-stirling-hq-fg2018PRNet
Mean Reconstruction Error (mm): 2.06
3d-face-reconstruction-on-stirling-lq-fg2018PRNet
Mean Reconstruction Error (mm): 2.38
face-alignment-on-aflw-lfpaFPN
Mean NME : 2.93%
face-alignment-on-aflw2000-3dPRN
Balanced NME (2D Sparse Alignment): 3.62%
Mean NME(3D Dense Alignment): 4.40%

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