Publication | Closed Access
Facelet-Bank for Fast Portrait Manipulation
43
Citations
26
References
2018
Year
Unknown Venue
EngineeringMachine LearningBiometricsFast Portrait ManipulationFacial EditingStyle TransferFace DetectionFacial Recognition SystemImage AnalysisPattern RecognitionAffective ComputingSynthetic Image GenerationMachine VisionHuman Image SynthesisDigital Face ManipulationDeep LearningComputer VisionFacial Expression RecognitionFacial AnimationUser Preferences
Digital face manipulation has become a popular and fascinating way to touch images with the prevalence of smart phones and social networks. With a wide variety of user preferences, facial expressions, and accessories, a general and flexible model is necessary to accommodate different types of facial editing. In this paper, we propose a model to achieve this goal based on an end-to-end convolutional neural network that supports fast inference, edit-effect control, and quick partial-model update. In addition, this model learns from unpaired image sets with different attributes. Experimental results show that our framework can handle a wide range of expressions, accessories, and makeup effects. It produces high-resolution and high-quality results in fast speed.
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