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Fully Automated and Highly Accurate Dense Correspondence for Facial Surfaces

机译:面部表面的全自动和高度准确的密集对应

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We present a novel framework for fully automated and highly accurate determination of facial landmarks and dense correspondence, e.g. a topologically identical mesh of arbitrary resolution, across the entire surface of 3D face models. For robustness and reliability of the proposed approach, we are combining 2D landmark detectors and 3D statistical shape priors with a variational matching method. Instead of matching faces in the spatial domain only, we employ image registration to align the 2D parametrization of the facial surface to a planar template we call the Unified Facial Parameter Domain (ufpd). This allows us to simultaneously match salient photometric and geometric facial features using robust image similarity measures while reasonably constraining geometric distortion in regions with less significant features. We demonstrate the accuracy of the dense correspondence established by our framework on the BU3DFE database with 2500 facial surfaces and show, that our framework outperforms current state-of-the-art methods with respect to the fully automated location of facial landmarks.
机译:我们为面部地标和密集信念提供了一种全自动和高度准确的确定框架,例如,在3D面部模型的整个表面上,任意分辨率的拓扑上相同的网格。对于所提出的方法的稳健性和可靠性,我们将2D地标检测器和3D统计形状前置与变分匹配方法组合。我们仅使用图像登记以将面部表面的2D参数化对准平面模板,而不是匹配的空间域中的面部,而是调用统一的面部参数域(UFPD)。这允许我们同时使用鲁棒图像相似度测量同时匹配突出的光度和几何面部特征,同时合理地限制具有较差的区域中的几何失真。我们展示了我们在Bu3DFE数据库上的框架建立的密集信件的准确性,具有2500个面部表面和展示,我们的框架优于当前最先进的方法,了解面部地标的全自动位置。

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