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Deep 3D Modeling of Human Bodies from Freehand Sketching

  • 2021
  • OriginalPaper
  • Chapter
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Abstract

The chapter delves into the advanced techniques of deep 3D modeling of human bodies from freehand sketches, addressing the challenges posed by the non-rigid nature and articulation of human bodies. By employing deep neural networks, the authors propose a skeleton-aware interpretation neural network that effectively maps coarse and sparse sketches to high-quality body meshes. The method combines non-parametric joint regression with parametric body representation, utilizing the SMPL model to produce naturally-looking 3D models. The chapter also highlights the creation of a large-scale dataset for training and evaluating the model, demonstrating the system's effectiveness through quantitative and qualitative tests. The innovative approach enables common users to create and edit high-quality 3D body models interactively, showcasing the potential for practical applications in various fields.

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Title
Deep 3D Modeling of Human Bodies from Freehand Sketching
Authors
Kaizhi Yang
Jintao Lu
Siyu Hu
Xuejin Chen
Copyright Year
2021
DOI
https://doi.org/10.1007/978-3-030-67835-7_4
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