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Using Dirichlet Free Form Deformation to Fit Deformable Models to Noisy 3-D Data

机译:使用Dirichlet Free Form变形将可变形模型适合嘈杂的3-D数据

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Free-form deformations (FFD) constitute an important geometric shape modification method that has been extensively investigated for computer animation and geometric modelling. In this work, we show that FFDs are also very effective to fit deformable models to the kind of noisy 3-D data that vision algorithms such as stereo tend to produce. We advocate the use of Dirichlet Free Form Deformation (DFFD) instead of more conventional FFDs because they give us the ability to place control points at arbitrary locations rather than on a regular lattice, and thus much greater flexibility. We tested our approach on stereo data acquired from monocular video-sequences and show that it can be successfully used to reconstruct a complex object such as the whole head, including the neck and the ears, as opposed to the face only.
机译:自由形式变形(FFD)构成了一个重要的几何形状修改方法,用于计算机动画和几何建模。在这项工作中,我们表明FFDS也非常有效地适应可变形模型,以这种嘈杂的3-D数据,视觉算法如立体声倾向于产生。我们主张使用Dirichlet Free Form变形(DFFD)而不是更传统的FFD,因为它们使我们能够将控制点放置在任意位置而不是常规格子上,因此更大的灵活性。我们在从单眼视频序列获取的立体声数据上测试了我们的方法,并表明它可以成功地用于重建一个复杂的物体,例如整个头部,包括颈部和耳朵,仅与面部相反。

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