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LABELFACES: PARSING FACIAL FEATURES BY MULTICLASS LABELING WITH AN EPITOME PRIOR

机译:Labelfaces:通过先前用缩影的多牌标记解析面部特征

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We consider the problem of parsing facial features from an image labeling perspective. We learn a per-pixel unary classifier, and a prior over expected label configurations, allowing us to estimate a dense labeling of facial images by part (e.g. hair, mouth, moustache, hat). This approach deals naturally with large variations in shape and appearance characteristic of unconstrained facial images, and also the problem of detecting classes that may be present or absent. We use an Adaboost-based unary classifier, and develop a family of priors based on 'epitomes' which are shown to be particularly effective in capturing the non-stationary aspects of face label distributions.
机译:我们考虑从图像标签透视中解析面部特征的问题。我们学习一个每像素的一元分类器,以及之前的预期标签配置,允许我们估计部分图像的密集标签(例如,头发,嘴巴,胡子,帽子)。这种方法自然地处理了不受约束面部图像的形状和外观特性的大变化,以及检测可能存在或不存在的类的问题。我们使用基于Adaboost的Unary分类器,并基于“展会”开发一系列前沿,这在捕获面部标签分布的非静止方面方面表现出特别有效。

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