mesh editing
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2020 ◽  
Vol 34 (04) ◽  
pp. 5586-5594
Author(s):  
Yassir Saquil ◽  
Qun-Ce Xu ◽  
Yong-Liang Yang ◽  
Peter Hall

In this paper, we investigate a novel problem of using generative adversarial networks in the task of 3D shape generation according to semantic attributes. Recent works map 3D shapes into 2D parameter domain, which enables training Generative Adversarial Networks (GANs) for 3D shape generation task. We extend these architectures to the conditional setting, where we generate 3D shapes with respect to subjective attributes defined by the user. Given pairwise comparisons of 3D shapes, our model performs two tasks: it learns a generative model with a controlled latent space, and a ranking function for the 3D shapes based on their multi-chart representation in 2D. The capability of the model is demonstrated with experiments on HumanShape, Basel Face Model and reconstructed 3D CUB datasets. We also present various applications that benefit from our model, such as multi-attribute exploration, mesh editing, and mesh attribute transfer.


2019 ◽  
Vol 128 (2) ◽  
pp. 547-571 ◽  
Author(s):  
Hang Dai ◽  
Nick Pears ◽  
William Smith ◽  
Christian Duncan

Abstract We present a fully-automatic statistical 3D shape modeling approach and apply it to a large dataset of 3D images, the Headspace dataset, thus generating the first public shape-and-texture 3D morphable model (3DMM) of the full human head. Our approach is the first to employ a template that adapts to the dataset subject before dense morphing. This is fully automatic and achieved using 2D facial landmarking, projection to 3D shape, and mesh editing. In dense template morphing, we improve on the well-known Coherent Point Drift algorithm, by incorporating iterative data-sampling and alignment. Our evaluations demonstrate that our method has better performance in correspondence accuracy and modeling ability when compared with other competing algorithms. We propose a texture map refinement scheme to build high quality texture maps and texture model. We present several applications that include the first clinical use of craniofacial 3DMMs in the assessment of different types of surgical intervention applied to a craniosynostosis patient group.


2018 ◽  
Vol 63 ◽  
pp. 17-30
Author(s):  
Weiwei Xu ◽  
Haifeng Yang ◽  
Yin Yang ◽  
Yiduo Wang ◽  
Kun Zhou

2016 ◽  
Vol 19 (8) ◽  
pp. 1619-1625
Author(s):  
Chang Woo Chu ◽  
Kap Kee Kim ◽  
Chang Joon Park ◽  
Jin Sung Choi

2015 ◽  
Vol 35-36 ◽  
pp. 56-68 ◽  
Author(s):  
Yirui Wu ◽  
Oscar Kin-Chung Au ◽  
Chiew-Lan Tai ◽  
Tong Lu
Keyword(s):  

2013 ◽  
Vol 8 (11) ◽  
Author(s):  
Jianwei Hu ◽  
Gu Song ◽  
Juan Cao
Keyword(s):  

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