Facial Landmark Localization in Depth Images Using Supervised Descent Method
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Date
2015
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Abstract
This paper proposes using the state of the art 2D facial landmark localization method, Supervised Descent Method (SDM), for facial landmark localization in 3D depth images. The proposed method was evaluated on frontal faces with no occlusion from the Bosphorus 3D Face Database. In the experiments, in which 2D features were used to train SDM, the proposed approach achieved state-of-the-art performance for several landmarks over the currently available 3D facial landmark localization methods.
Description
Berk Gökberk (MEF Author)
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Keywords
Face depth images, Supervised descent method, 3d facial landmark localization
Turkish CoHE Thesis Center URL
Citation
Camgoz, N. C., Gokberk, B., Akarun, L., (2015). Facial landmark localization in depth images using Supervised Descent Method. Conference: 23nd Signal Processing and Communications Applications Conference (SIU) Location: Inonu Univ, Malatya, TURKEY. p. 1997-2000.
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Conference: 23nd Signal Processing and Communications Applications Conference (SIU) Location: Inonu Univ, Malatya, TURKEY Date: MAY 16-19, 2015
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1997
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2000