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Papers/C3AE: Exploring the Limits of Compact Model for Age Estima...

C3AE: Exploring the Limits of Compact Model for Age Estimation

Chao Zhang, Shuaicheng Liu, Xun Xu, Ce Zhu

2019-04-10CVPR 2019 6Age Estimation
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Abstract

Age estimation is a classic learning problem in computer vision. Many larger and deeper CNNs have been proposed with promising performance, such as AlexNet, VggNet, GoogLeNet and ResNet. However, these models are not practical for the embedded/mobile devices. Recently, MobileNets and ShuffleNets have been proposed to reduce the number of parameters, yielding lightweight models. However, their representation has been weakened because of the adoption of depth-wise separable convolution. In this work, we investigate the limits of compact model for small-scale image and propose an extremely Compact yet efficient Cascade Context-based Age Estimation model(C3AE). This model possesses only 1/9 and 1/2000 parameters compared with MobileNets/ShuffleNets and VggNet, while achieves competitive performance. In particular, we re-define age estimation problem by two-points representation, which is implemented by a cascade model. Moreover, to fully utilize the facial context information, multi-branch CNN network is proposed to aggregate multi-scale context. Experiments are carried out on three age estimation datasets. The state-of-the-art performance on compact model has been achieved with a relatively large margin.

Results

TaskDatasetMetricValueModel
Facial Recognition and ModellingFGNETMAE2.95C3AE (WIKI-IMDB)
Facial Recognition and ModellingFGNETMAE52AEBFI
Face ReconstructionFGNETMAE2.95C3AE (WIKI-IMDB)
Face ReconstructionFGNETMAE52AEBFI
3DFGNETMAE2.95C3AE (WIKI-IMDB)
3DFGNETMAE52AEBFI
3D Face ModellingFGNETMAE2.95C3AE (WIKI-IMDB)
3D Face ModellingFGNETMAE52AEBFI
3D Face ReconstructionFGNETMAE2.95C3AE (WIKI-IMDB)
3D Face ReconstructionFGNETMAE52AEBFI
Age EstimationFGNETMAE2.95C3AE (WIKI-IMDB)
Age EstimationFGNETMAE52AEBFI

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