An Approach of Clothes Appearance Comparison between True and Virtual Sewing

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The technology of 3D garment virtual sewing has been developed for several decades, we proposed an approach to verify the virtual garments sewing effect. Here we took a sleeveless dress for our example, and the patterns of the dresses are made by expertise garment CAD software. The dresses patterns are used for two options. The first is for actual cutting and sewing. The second is for virtual sewing. The actual sleeveless dress is made by woolen fabric for our experiment. The parameters of the fabric mechanical properties in virtual sewing should be selected the same with the actual fabric. The fabric properties in this paper are mainly referred to shear property, tensile property and bearing property. We observe the surface shape of the finished dresses, compare the differences between the true and virtual sewing, and find the modified approach. Gray scale transformation and binary image processing are exploited for appearance comparison between real and simulated clothes sewn by the same 2D patterns. Folds and silhouettes comparison are main two features in our proposed approach. The sum of the squared differences is calculated for folds comparison, and the mismatches pixels are computed for silhouettes comparison. The aim of our research is proposed for forecasting the ready-made clothes which are made by given patterns, and check whether it is meet the requirement of the clients or not.

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460-465

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November 2015

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© 2016 Trans Tech Publications Ltd. All Rights Reserved

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[1] D. Baraff, A. Witkin, Large steps in cloth simulation, ACM Trans. Graphics (Proc SIGGRAPH), (1998)43–54.

Google Scholar

[2] R. Bridson, R. Fedkiw, J. Anderson, Robust treatment of collisions, contact and friction for cloth animation. ACM Trans. Graphics (Proc. SIGGRAPH), (2002)594–603.

DOI: 10.1145/566654.566623

Google Scholar

[3] K.J. Choi, H.S. Ko, Stable but responsive cloth. ACM Trans. Graphics (Proc. SIGGRAPH), 21(2002) 604–611.

DOI: 10.1145/566654.566624

Google Scholar

[4] R. Bridson, S. Marino, R. Fedkiw, Simulation of Clothing with Folds and Wrinkles. Eurographics/SIGGRAPH Symposium on Computer Animation (2003).

DOI: 10.1145/1198555.1198573

Google Scholar

[5] E. English, R. Bridson, Animating developable surfaces using nonconforming elements. In Proc. ACM SIGGRAPH 27(2008)1–5.

DOI: 10.1145/1399504.1360665

Google Scholar

[6] R. Goldenthal, D. Harmon, R. Fattal, M. Bercovier, E. Grinspun, Efficient Simulation of Inextensible Cloth. In Proc. ACM SIGGRAPH, 26(2007) 49.

DOI: 10.1145/1275808.1276438

Google Scholar

[7] P. Volino, N. Magnenat-Thalmann, F. Faure, A simple approach to nonlinear tensile stiffness for accurate cloth simulation. ACM Trans. Graph. 28, 4(2009) 1–16.

DOI: 10.1145/1559755.1559762

Google Scholar

[8] Y. Zhong, B. Xu, Three-dimensional Garment Dressing Simulation. Text Res J, 79 (2009)792-803.

DOI: 10.1177/0040517508090779

Google Scholar

[9] K.S. Bhat, C.D. Twigg, J.K. Hodgins, P.K. Khosla, Z. Popovi´c, S.M. Seitz, Estimating cloth simulation parameters from videos. Eurographics/SIGGRAPH Symposium on Computer Animation (2003).

Google Scholar

[10] S. Avidan, A. Shamir, Seam carving for content aware image resizing. In Proc. ACM SIGGRAPH(2007).

DOI: 10.1145/1275808.1276390

Google Scholar

[11] C. Barnes, E. Shechtman, A. Finkelstein, D. B. Goldman, Patchmatch: a randomized correspondence algorithm for structural image editing. In Proc. ACM SIGGRAPH, 24(2009)1-11.

DOI: 10.1145/1576246.1531330

Google Scholar

[12] Information on http: /www. marvelousdesigner. com.

Google Scholar