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Papers/Deep Multi-Center Learning for Face Alignment

Deep Multi-Center Learning for Face Alignment

Zhiwen Shao, Hengliang Zhu, Xin Tan, Yangyang Hao, Lizhuang Ma

2018-08-05Face AlignmentPredictionDeep Learning
PaperPDFCode(official)

Abstract

Facial landmarks are highly correlated with each other since a certain landmark can be estimated by its neighboring landmarks. Most of the existing deep learning methods only use one fully-connected layer called shape prediction layer to estimate the locations of facial landmarks. In this paper, we propose a novel deep learning framework named Multi-Center Learning with multiple shape prediction layers for face alignment. In particular, each shape prediction layer emphasizes on the detection of a certain cluster of semantically relevant landmarks respectively. Challenging landmarks are focused firstly, and each cluster of landmarks is further optimized respectively. Moreover, to reduce the model complexity, we propose a model assembling method to integrate multiple shape prediction layers into one shape prediction layer. Extensive experiments demonstrate that our method is effective for handling complex occlusions and appearance variations with real-time performance. The code for our method is available at https://github.com/ZhiwenShao/MCNet-Extension.

Results

TaskDatasetMetricValueModel
Facial Recognition and ModellingAFLW2000Error rate5.38MCL
Face ReconstructionAFLW2000Error rate5.38MCL
3DAFLW2000Error rate5.38MCL
3D Face ModellingAFLW2000Error rate5.38MCL
3D Face ReconstructionAFLW2000Error rate5.38MCL

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