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Probabilistic Joint Face-Skull Modelling for Facial Reconstruction

机译:面部重建的概率关节面部颅骨建模

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We present a novel method for co-registration of two independent statistical shape models. We solve the problem of aligning a face model to a skull model with stochastic optimization based on Markov Chain Monte Carlo (MCMC). We create a probabilistic joint face-skull model and show how to obtain a distribution of plausible face shapes given a skull shape. Due to environmental and genetic factors, there exists a distribution of possible face shapes arising from the same skull. We pose facial reconstruction as a conditional distribution of plausible face shapes given a skull shape. Because it is very difficult to obtain the distribution directly from MRI or CT data, we create a dataset of artificial face-skull pairs. To do this, we propose to combine three data sources of independent origin to model the joint face-skull distribution: a face shape model, a skull shape model and tissue depth marker information. For a given skull, we compute the posterior distribution of faces matching the tissue depth distribution with Metropolis-Hastings. We estimate the joint face-skull distribution from samples of the posterior. To find faces matching to an unknown skull, we estimate the probability of the face under the joint face-skull model. To our knowledge, we are the first to provide a whole distribution of plausible faces arising from a skull instead of only a single reconstruction. We show how the face-skull model can be used to rank a face dataset and on average successfully identify the correct match in top 30%. The face ranking even works when obtaining the face shapes from 2D images. We furthermore show how the face-skull model can be useful to estimate the skull position in an MR-image.
机译:我们提出了一种新的两个独立统计形状模型的共同配准方法。基于Markov链蒙特卡罗(MCMC)的随机优化,解决了对准面部模型对颅骨模型的问题。我们创建了一个概率的关节面颅骨模型,并展示了如何获得骷髅形状的合理面形状的分布。由于环境和遗传因素,存在由同一头骨产生的可能面部形状的分布。我们将面部重建构成为骷髅形状的合理面形状的条件分布。因为很难直接从MRI或CT数据获得分布,所以我们创建了一个人工面部颅骨对的数据集。为此,我们建议将三个独立原点的数据源组合以模拟联合面部颅骨分布:面部形状模型,颅骨形状模型和组织深度标记信息。对于给定的头骨,我们将面孔的后部分布计算与大都会 - 黑斯廷斯匹配的组织深度分布。我们估计了从后部样品的关节面颅骨分布。找到与未知头骨匹配的面孔,我们估计了联合面部颅骨模型下面部的概率。为了我们的知识,我们是第一个提供从骷髅中产生的合理面的整体分布而不是单一的重建。我们展示了面部颅骨模型如何用于对面部数据集进行排名,平均成功识别前30%的正确匹配。当从2D图像获得面部形状时,脸部排名甚至工作。我们还展示了面部颅骨模型如何有用以估计MR图像中的颅骨位置。

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