Papers
Topics
Authors
Recent
Gemini 2.5 Flash
Gemini 2.5 Flash
126 tokens/sec
GPT-4o
47 tokens/sec
Gemini 2.5 Pro Pro
43 tokens/sec
o3 Pro
4 tokens/sec
GPT-4.1 Pro
47 tokens/sec
DeepSeek R1 via Azure Pro
28 tokens/sec
2000 character limit reached

Estimating Cloth Elasticity Parameters From Homogenized Yarn-Level Models (2401.15169v1)

Published 26 Jan 2024 in cs.GR

Abstract: Virtual garment simulation has become increasingly important with applications in garment design and virtual try-on. However, reproducing garments faithfully remains a cumbersome process. We propose an end-to-end method for estimating parameters of shell material models corresponding to real fabrics with minimal priors. Our method determines yarn model properties from information directly obtained from real fabrics, unlike methods that require expensive specialized capture systems. We use an extended homogenization method to match yarn-level and shell-level hyperelastic energies with respect to a range of surface deformations represented by the first and second fundamental forms, including bending along the diagonal to warp and weft directions. We optimize the parameters of a shell deformation model involving uncoupled bending and membrane energies. This allows the simulated model to exhibit nonlinearity and anisotropy seen in real cloth. Finally, we validate our results with quantitative and visual comparisons against real world fabrics through stretch tests and drape experiments. Our homogenized shell models not only capture the characteristics of underlying yarn patterns, but also exhibit distinct behaviors for different yarn materials.

Definition Search Book Streamline Icon: https://streamlinehq.com
References (48)
  1. Alsaid Ahmed Almetwally and MM Mourad. 2014. Effects of spandex drawing ratio and weave structure on the physical properties of cotton/spandex woven fabrics. The Journal of the Textile Institute 105, 3 (2014), 235–245.
  2. David Baraff and Andrew Witkin. 1998. Large Steps in Cloth Simulation. In Proceedings of the 25th Annual Conference on Computer Graphics and Interactive Techniques (SIGGRAPH ’98). Association for Computing Machinery, New York, NY, USA, 43–54. https://doi.org/10.1145/280814.280821
  3. Position-Based Simulation Methods in Computer Graphics.. In Eurographics (tutorials). 8.
  4. Discrete elastic rods. In ACM SIGGRAPH 2008 papers. 1–12.
  5. Super-helices for predicting the dynamics of natural hair. ACM Transactions on Graphics (TOG) 25, 3 (2006), 1180–1187.
  6. Estimating Cloth Simulation Parameters from Video. In Proceedings of the 2003 ACM SIGGRAPH/Eurographics Symposium on Computer Animation (San Diego, California) (SCA ’03). Eurographics Association, Goslar, DEU, 37–51.
  7. Projective Dynamics: Fusing Constraint Projections for Fast Simulation. 33, 4, Article 154 (jul 2014), 11 pages. https://doi.org/10.1145/2601097.2601116
  8. G. Bradski. 2000. The OpenCV Library. Dr. Dobb’s Journal of Software Tools (2000).
  9. Browzwear. 2024. Fabric Analyzer (FAB) For Accurate Visualization | Browzwear. https://browzwear.com/products/fabric-analyzer
  10. Browzwear. 2024. v-stitcher. https://browzwear.com/products/v-stitcher. Accessed on January 2024.
  11. Mixing yarns and triangles in cloth simulation. In Computer Graphics Forum, Vol. 39. Wiley Online Library, 101–110.
  12. Physical simulation of environmentally induced thin shell deformation. ACM Trans. Graph. 37, 4 (2018). https://doi.org/10.1145/3197517.3201395
  13. Yarn-level simulation of woven cloth. ACM Transactions on Graphics (TOG) 33, 6 (2014), 1–11.
  14. Efficient simulation of knitted cloth using persistent contacts. In Proceedings of the 14th ACM SIGGRAPH/Eurographics Symposium on Computer Animation. 55–61.
  15. Yarn-level cloth simulation with sliding persistent contacts. IEEE transactions on visualization and computer graphics 23, 2 (2016), 1152–1162.
  16. CLO3D. 2024. Marvelous Designer. https://www.marvelousdesigner.com/. Accessed on January 2024.
  17. Modeling and data-driven parameter estimation for woven fabrics. In Proceedings of the ACM SIGGRAPH/Eurographics Symposium on Computer Animation. 1–11.
  18. A multi-scale model for simulating liquid-fabric interactions. ACM Transactions on Graphics (TOG) 37, 4 (2018), 1–16.
  19. Learning-based bending stiffness parameter estimation by a drape tester. ACM Transactions on Graphics (TOG) 41, 6 (2022), 1–16.
  20. The consequences of temperature on the shrinkage properties of cotton spandex woven fabric. Journal of Textiles and Polymers 7, 1 (2019), 25–29.
  21. Y Jiang and Xiaogang Chen. 2005. Geometric and algebraic algorithms for modelling yarn in woven fabrics. Journal of the Textile Institute 96, 4 (2005), 237–245.
  22. Simulating knitted cloth at the yarn level. In ACM SIGGRAPH 2008 papers. 1–9.
  23. Tassilo Kugelstadt and Elmar Schömer. 2016. Position and orientation based Cosserat rods.. In Symposium on Computer Animation. 169–178.
  24. Estimating Cloth Elasticity Parameters Using Position-Based Simulation of Compliant Constrained Dynamics. arXiv preprint arXiv:2212.08790 (2022).
  25. Interactive design of periodic yarn-level cloth patterns. ACM Transactions on Graphics (TOG) 37, 6 (2018), 1–15.
  26. DiffAvatar: Simulation-Ready Garment Optimization with Differentiable Simulation. arXiv:2311.12194 [cs.CV]
  27. XPBD: Position-Based Simulation of Compliant Constrained Dynamics. In Proceedings of the 9th International Conference on Motion in Games (Burlingame, California) (MIG ’16). Association for Computing Machinery, New York, NY, USA, 49–54. https://doi.org/10.1145/2994258.2994272
  28. Unified Particle Physics for Real-Time Applications. ACM Trans. Graph. 33, 4, Article 153 (jul 2014), 12 pages. https://doi.org/10.1145/2601097.2601152
  29. Unified simulation of elastic rods, shells, and solids. ACM Transactions on Graphics (TOG) 29, 4 (2010), 1–10.
  30. Data-driven estimation of cloth simulation models. In Computer Graphics Forum, Vol. 31. Wiley Online Library, 519–528.
  31. Position based dynamics. Journal of Visual Communication and Image Representation 18, 2 (2007), 109–118.
  32. Simulating Parametric Thin Shells by Bicubic Hermite Elements. arXiv preprint arXiv:2312.14839 (2023).
  33. Dynamic animation of spline like objects. WSCG.
  34. Mechanical characterization of structured sheet materials. ACM Transactions on Graphics (TOG) 37, 4 (2018), 1–15.
  35. Modeling the stiffness of coupled and uncoupled recycled cotton fibers reinforced polypropylene composites. Polymers 11, 10 (2019), 1725.
  36. Homogenized Yarn-Level Cloth. ACM Trans. Graph. 39, 4, Article 48 (aug 2020), 16 pages. https://doi.org/10.1145/3386569.3392412
  37. Mechanics-Aware Deformation of Yarn Pattern Geometry. ACM Trans. Graph. 40, 4, Article 168 (jul 2021), 11 pages. https://doi.org/10.1145/3450626.3459816
  38. Estimation of Yarn-Level Simulation Models for Production Fabrics. 41, 4, Article 65 (jul 2022), 15 pages. https://doi.org/10.1145/3528223.3530167
  39. Jonas Spillmann and Matthias Teschner. 2007. CoRdE: Cosserat rod elements for the dynamic simulation of one-dimensional elastic objects. In Proceedings of the 2007 ACM SIGGRAPH/Eurographics symposium on Computer animation. 63–72.
  40. Tuur Stuyck. 2022. Cloth simulation for computer graphics. Springer Nature.
  41. Style3D. 2024. Style3D. https://www.linctex.com/. Accessed on January 2024.
  42. Learning elastic constitutive material and damping models. In Computer Graphics Forum, Vol. 39. Wiley Online Library, 81–91.
  43. Data-driven elastic models for cloth: modeling and measurement. ACM transactions on graphics (TOG) 30, 4 (2011), 1–12.
  44. Construction of discrete shell models by geometric finite differences. Technical Report 220. Fraunhofer (ITWM). [23] pages. https://nbn-resolving.de/urn:nbn:de:hbz:386-kluedo-33227
  45. Jiahao Wen and Jernej Barbič. 2023. Kirchhoff-Love Shells with Arbitrary Hyperelastic Materials. ACM Trans. Graph. 42, 6 (2023). https://doi.org/10.1145/3618405
  46. Weavecraft: an interactive design and simulation tool for 3D weaving. ACM Trans. Graph. 39, 6 (2020), 210–1.
  47. Stitch meshes for modeling knitted clothing with yarn-level detail. ACM Transactions on Graphics (TOG) 31, 4 (2012), 1–12.
  48. A Realistic Surface-based Cloth Rendering Model. In ACM SIGGRAPH 2023 Conference Proceedings. 1–9.
Citations (1)

Summary

We haven't generated a summary for this paper yet.

X Twitter Logo Streamline Icon: https://streamlinehq.com