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Bayesian Tangent Shape Model: Estimating Shape and Pose Parameters via Bayesian Inference

机译:贝叶斯切线形状模型:通过贝叶斯推理估算形状和姿势参数

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In this paper we study the problem of shape analysis and its application in locating facial feature points on frontal faces. We propose a Bayesian inference solution based on tangent shape approximation called Bayesian Tangent Shape Model (BTSM). Similarity transform coefficients and the shape parameters in BTSM are determined through MAP estimation. Tangent shape vector is treated as the hidden state of the model, and accordingly, an EM based searching algorithm is proposed to implement the MAP procedure. The major results of our algorithm are: 1) tangent shape is updated by a weighted average of two shape vectors, the projection of the observed shape onto tangent space, and the reconstruction of shape parameters. 2) Shape parameters are regularized by multiplying a ratio of the noise variations, which is a continuous junction instead of a truncated function. We discussed the advantages conveyed by these results, and demonstrate the accuracy and the stability of the algorithm by extensive experiments.
机译:本文研究了形状分析问题及其在额面面上定位面部特征点的应用。我们提出了一种基于切线形状近似的贝叶斯推理解决方案,称为贝叶斯切线形状模型(BTSM)。通过地图估计确定相似性变换系数和BTSM中的形状参数。切线形状矢量被视为模型的隐藏状态,因此,提出了基于基于的搜索算法来实现地图过程。我们算法的主要结果是:1)切线形状由两个形状向量的加权平均值更新,观察到的形状的投影到切换空间,以及形状参数的重建。 2)通过将噪声变化的比率乘以连续的结来而不是截断的功能来规则化的形状参数。我们讨论了这些结果传达的优点,并通过广泛的实验证明了算法的准确性和稳定性。

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