3D Face modeling using the multi-deformable method.
TL;DR: 3D face rendering results intuitively show that the statistical model-based 3D face modeling approach adopted in a mirror system consisting of two mirrors and a camera is more robust to feature extraction errors than other 3DFace modeling methods.
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Abstract: In this paper, we focus on the problem of the accuracy performance of 3D face modeling techniques using corresponding features in multiple views, which is quite sensitive to feature extraction errors. To solve the problem, we adopt a statistical model-based 3D face modeling approach in a mirror system consisting of two mirrors and a camera. The overall procedure of our 3D facial modeling method has two primary steps: 3D facial shape estimation using a multiple 3D face deformable model and texture mapping using seamless cloning that is a type of gradient-domain blending. To evaluate our method's performance, we generate 3D faces of 30 individuals and then carry out two tests: accuracy test and robustness test. Our method shows not only highly accurate 3D face shape results when compared with the ground truth, but also robustness to feature extraction errors. Moreover, 3D face rendering results intuitively show that our method is more robust to feature extraction errors than other 3D face modeling methods. An additional contribution of our method is that a wide range of face textures can be acquired by the mirror system. By using this texture map, we generate realistic 3D face for individuals at the end of the paper.
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Citations
•Proceedings Article
A morphable model for the synthesis of 3D faces
Matthew Turk
- 01 Jan 1999
TL;DR: A new technique for modeling textured 3D faces by transforming the shape and texture of the examples into a vector space representation, which regulates the naturalness of modeled faces avoiding faces with an ''unlikely'' appearance.
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Comprehensive analysis of soft tissue changes in response to orthognathic surgery: mandibular versus bimaxillary advancement.
TL;DR: Dense anatomical correspondence is a clinically meaningful method of producing a visual comprehensive analysis of the changes in response to orthognathic surgery.
12
Dense 3D facial reconstruction from a single depth image in unconstrained environment
TL;DR: This paper presents a novel method that simplifies the process of dense 3D facial reconstruction by employing only one frame of depth data obtained with an off-the-shelf RGB-D sensor.
A Measurement Solution of Face Gears with 3D Optical Scanning
TL;DR: In this paper , an accurate measurement solution with 3D optical scanning is proposed for the tooth surface deviations of orthogonal face gears, and the measurement solution is implemented with a three-stage algorithm by aligning point clouds with the design model.
Age-invariant face recognition using gender specific 3D aging modeling
TL;DR: A 3D gender-specific aging model that is robust to aging and pose variations and provides a better recognition performance than the conventional state-of-the-art AIFR systems is presented.
8
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Constrained active appearance models
Timothy F. Cootes,Christopher J. Taylor +1 more
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TL;DR: This work places the AAM matching algorithm in a statistical framework, allowing extra constraints to be applied, and enables the models to be combined with other methods of object location.
3D face modeling using two views and a generic face model with application to 3D face recognition
A.-N. Ansari,Mohamed Abdel-Mottaleb +1 more
- 21 Jul 2003
TL;DR: An algorithm for 3D face modeling from a frontal image and a profile image of a person's face is presented, using the 3D coordinates of automatically extracted facial feature points to deform a 3D generic face model to obtain a more realistic 3D model for that person.
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Covariant Derivatives and Vision
TL;DR: In this article, the authors describe a new theoretical approach to image processing and vision, in which image space is a fibre bundle, and the image itself is the graph of a section on it.
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3-D facial model estimation from single front-view facial image
TL;DR: This work modifications several existing techniques to automatically locate the feature point position from the front-view facial image according to the anthropometric and a priori information to estimate the 3-D facial model parameters from single front- view facial image.
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