GroomCap: High-Fidelity Prior-Free Hair Capture

被引:0
|
作者
Zhou, Yuxiao [1 ]
Chai, Menglei [2 ]
Wang, Daoye [3 ]
Winberg, Sebastian [3 ]
Wood, Erroll [4 ]
Sarkar, Kripasindhu [3 ]
Gross, Markus [1 ]
Beeler, Thabo [3 ]
机构
[1] Swiss Fed Inst Technol, Zurich, Switzerland
[2] Google Inc, Menlo Pk, CA USA
[3] Google Inc, Zurich, Switzerland
[4] Google Inc, London, England
来源
ACM TRANSACTIONS ON GRAPHICS | 2024年 / 43卷 / 06期
关键词
Strand-level hair modeling; multi-view reconstruction;
D O I
10.1145/3687768
中图分类号
TP31 [计算机软件];
学科分类号
081202 ; 0835 ;
摘要
Despite recent advances in multi-view hair reconstruction, achieving strand- level precision remains a significant challenge due to inherent limitations in existing capture pipelines. We introduce GroomCap, a novel multi-view hair capture method that reconstructs faithful and high-fidelity hair geometry without relying on external data priors. To address the limitations of conventional reconstruction algorithms, we propose a neural implicit representation for hair volume that encodes high-resolution 3D orientation and occupancy from input views. This implicit hair volume is trained with a new volumetric 3D orientation rendering algorithm, coupled with 2D orientation distribution supervision, to effectively prevent the loss of structural information caused by undesired orientation blending. We further propose a Gaussian-based hair optimization strategy to refine the traced hair strands with a novel chained Gaussian representation, utilizing direct photometric supervision from images. Our results demonstrate that GroomCap is able to capture high-quality hair geometries that are not only more precise and detailed than existing methods but also versatile enough for a range of applications.
引用
收藏
页数:15
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