从多个视图建模头发

Yichen Wei, E. Ofek, Long Quan, H. Shum
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引用次数: 124

摘要

在本文中,我们提出了一种新的基于图像的方法,从多个视点拍摄的图像中建模头发几何形状。不像以前的头发建模技术,需要密集的用户交互或依赖于特殊的捕获设置受控照明条件下,我们使用手持相机捕捉头发图像在不受控制的照明条件下。我们的多视图方法是自然和灵活的捕获。它还提供了固有的强大和准确的几何约束,以恢复头发模型。在我们的方法中,毛发纤维是由局部图像方向合成的。每个合成纤维段都经过验证,并从所有可见视图进行最佳三角剖分。合成纤维的发量和可见性也可以从多个角度可靠地估计。获取的灵活性、较少的用户交互和高质量的恢复结果是我们的方法的关键优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling hair from multiple views
In this paper, we propose a novel image-based approach to model hair geometry from images taken at multiple viewpoints. Unlike previous hair modeling techniques that require intensive user interactions or rely on special capturing setup under controlled illumination conditions, we use a handheld camera to capture hair images under uncontrolled illumination conditions. Our multi-view approach is natural and flexible for capturing. It also provides inherent strong and accurate geometric constraints to recover hair models.In our approach, the hair fibers are synthesized from local image orientations. Each synthesized fiber segment is validated and optimally triangulated from all visible views. The hair volume and the visibility of synthesized fibers can also be reliably estimated from multiple views. Flexibility of acquisition, little user interaction, and high quality results of recovered complex hair models are the key advantages of our method.
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