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Towards Garment Sewing Pattern Reconstruction from a Single Image

  • Lijuan Liu
  • , Xiangyu Xu
  • , Zhijie Lin
  • , Jiabin Liang
  • , Shuicheng Yan
  • Sea AI Lab

科研成果: 期刊稿件文章同行评审

54 引用 (Scopus)

摘要

Garment sewing pattern represents the intrinsic rest shape of a garment, and is the core for many applications like fashion design, virtual try-on, and digital avatars. In this work, we explore the challenging problem of recovering garment sewing patterns from daily photos for augmenting these applications. To solve the problem, we first synthesize a versatile dataset, named SewFactory, which consists of around 1M images and ground-truth sewing patterns for model training and quantitative evaluation. SewFactory covers a wide range of human poses, body shapes, and sewing patterns, and possesses realistic appearances thanks to the proposed human texture synthesis network. Then, we propose a two-level Transformer network called Sewformer, which significantly improves the sewing pattern prediction performance. Extensive experiments demonstrate that the proposed framework is effective in recovering sewing patterns and well generalizes to casually-taken human photos. Code, dataset, and pre-trained models will be released.

源语言英语
期刊论文编号200
期刊ACM Transactions on Graphics
42
6
DOI
出版状态已出版 - 4 12月 2023

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