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Every Smile is Unique: Landmark-Guided Diverse Smile Generation
2018
2018 IEEE/CVF Conference on Computer Vision and Pattern Recognition
Each smile is unique: one person surely smiles in different ways (e.g. closing/opening the eyes or mouth). Given one input image of a neutral face, can we generate multiple smile videos with distinctive characteristics? To tackle this one-to-many video generation problem, we propose a novel deep learning architecture named Conditional Multi-Mode Network (CMM-Net). To better encode the dynamics of facial expressions, CMM-Net explicitly exploits facial landmarks for generating smile sequences.
doi:10.1109/cvpr.2018.00740
dblp:conf/cvpr/0108A0F0S18
fatcat:l5hfqduhvnbnri5csy7wdh4ltq