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Anchored Deformable Face Ensemble Alignment

机译:锚定可变形面组合对齐

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At present, many approaches have been proposed for deformable face alignment with varying degrees of success. However, the common drawback to nearly all these approaches is the inaccurate landmark registrations. The registration errors which occur are predominantly heterogeneous (i.e. low error for some frames in a sequence and higher error for others). In this paper we propose an approach for simultaneously aligning an ensemble of deformable face images stemming from the same subject given noisy heterogeneous landmark estimates. We propose that these initial noisy landmark estimates can be used as an "anchor" in conjunction with known state-of-the-art objectives for unsupervised image ensemble alignment. Impressive alignment performance is obtained using well known deformable face fitting algorithms as "anchors".
机译:目前,已经提出了许多方法来使可变形的面部对准具有不同程度的成功。但是,几乎所有这些方法的共同缺点是地标注册不准确。发生的配准错误主要是异类的(即,序列中某些帧的错误较低,而其他帧的错误较高)。在本文中,我们提出了一种方法,可在噪声异质地标估计给定的情况下,同时对齐源自同一主题的可变形面部图像的整体。我们建议,这些初始的嘈杂界标估计值可以与已知的最新目标一起用作“锚点”,以实现无监督的图像集成对齐。使用众所周知的可变形面部拟合算法作为“锚”可获得令人印象深刻的对齐性能。

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