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Face reconstruction from skull based on Least Squares Canonical Dependency Analysis

机译:基于最小二乘正则相关性分析的颅骨面部重构

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Face reconstruction from skull, called as Craniofacial Reconstruction (CFR), is a useful technique to identify an unknown decomposed corpse if no other evidence is available. Traditional manual methods greatly depend on the experience of sculptors, so that the results are highly subjective, and the whole process is time consuming. Recent years, 3D data acquiring technology becomes consummate, and machine learning techniques raise a tidal wave in academia and industry. Researchers turn to finding computer aided solutions, especially the supervised machine learning technique, for craniofacial reconstruction. Least Squares Canonical Dependency Analysis (LSCDA) is a dimension reduction method, which aims at finding subspaces where the dependency measured by Least Squares Mutual Information (LSMI) of two variables reaches maximum. This paper proposes a new method for craniofacial reconstruction based on LSCDA. First, two statistical shape models for skull and skin are constructed respectively by Principle Component Analysis (PCA). Then the subspaces of maximum dependency of face and skull are extracted in the shape parameter spaces via LSCDA. Finally, according to such dependency, the relationship model between skulls and skins is established by Least Squares Support Vector Regression (LSSVR), which is used to reconstruct the facial appearances for an unknown skull. Experiment results show that the proposed method is effective.
机译:如果没有其他证据,从颅骨面部重建称为颅面重建(CFR),是一种识别未知分解尸体的有用技术。传统的手工方法在很大程度上取决于雕刻家的经验,因此结果非常主观,而且整个过程很耗时。近年来,3D数据获取技术日趋完善,并且机器学习技术在学术界和工业界掀起了一股潮流。研究人员转向寻找用于颅面重建的计算机辅助解决方案,尤其是受监督的机器学习技术。最小二乘典范依存关系分析(LSCDA)是一种降维方法,旨在找到子空间,在该子空间中,两个变量的最小二乘互信息(LSMI)度量的依存关系达到最大。提出了一种基于LSCDA的颅面重建新方法。首先,分别通过主成分分析(PCA)构建了两个统计形状的头骨和皮肤形状模型。然后通过LSCDA在形状参数空间中提取人脸和头骨最大相关性的子空间。最后,根据这种依赖性,通过最小二乘支持向量回归(LSSVR)建立了头骨和皮肤之间的关系模型,该模型用于重构未知头骨的面部外观。实验结果表明,该方法是有效的。

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