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Papers/Learning Deep Representation for Face Alignment with Auxil...

Learning Deep Representation for Face Alignment with Auxiliary Attributes

Zhanpeng Zhang, Ping Luo, Chen Change Loy, Xiaoou Tang

2014-08-18Face AlignmentAttribute
PaperPDF

Abstract

In this study, we show that landmark detection or face alignment task is not a single and independent problem. Instead, its robustness can be greatly improved with auxiliary information. Specifically, we jointly optimize landmark detection together with the recognition of heterogeneous but subtly correlated facial attributes, such as gender, expression, and appearance attributes. This is non-trivial since different attribute inference tasks have different learning difficulties and convergence rates. To address this problem, we formulate a novel tasks-constrained deep model, which not only learns the inter-task correlation but also employs dynamic task coefficients to facilitate the optimization convergence when learning multiple complex tasks. Extensive evaluations show that the proposed task-constrained learning (i) outperforms existing face alignment methods, especially in dealing with faces with severe occlusion and pose variation, and (ii) reduces model complexity drastically compared to the state-of-the-art methods based on cascaded deep model.

Results

TaskDatasetMetricValueModel
Facial Recognition and ModellingMAFLNME7.95TCDCN
Facial Landmark DetectionMAFLNME7.95TCDCN
Face ReconstructionMAFLNME7.95TCDCN
3DMAFLNME7.95TCDCN
3D Face ModellingMAFLNME7.95TCDCN
3D Face ReconstructionMAFLNME7.95TCDCN

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