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Spotting the Details: The Various Facets of Facial Expressions

机译:发现细节:面部表情的各个方面

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3D Morphable Models (MM) are a popular tool for analysis and synthesis of facial expressions. They represent plausible variations in facial shape and appearance within a low-dimensional parameter space. Fitted to a face scan, the model's parameters compactly encode its expression patterns. This expression code can be used, for instance, as a feature in automatic facial expression recognition. For accurate classification, an MM that can adequately represent the various characteristic facets and variants of each expression is necessary. Currently available MMs are limited in the diversity of expression patterns. We present a novel high-quality 3D Facial Expression Morphable Model built from a large-scale face database as a tool for expression analysis and synthesis. Establishment of accurate dense correspondence, up to finest skin features, enables a detailed statistical analysis of facial expressions. Various characteristic shape patterns are identified for each expression. The results of our analysis give rise to a new facial expression code. We demonstrate the advantages of such a code for the automatic recognition of expressions, and compare the accuracy of our classifier to state-of-the-art.
机译:3D变形模型(MM)是用于分析和合成面部表情的流行工具。它们表示低维参数空间内面部形状和外观的合理变化。该模型的参数适合面部扫描,可以紧凑地编码其表情模式。例如,可以将该表情代码用作自动面部表情识别中的功能。为了进行准确的分类,必须有一个能够充分代表每个表达式各个特征面和变体的MM。当前可用的MM在表达模式的多样性方面受到限制。我们提出了一种新型的高质量3D面部表情可变形模型,该模型是通过大规模的面部数据库构建的,作为表情分析和合成的工具。建立精确的密集对应关系,直至最精细的皮肤特征,都可以对面部表情进行详细的统计分析。为每个表达式标识各种特征形状图案。我们的分析结果产生了一个新的面部表情代码。我们展示了这种代码可自动识别表达式的优势,并将分类器的准确性与最新技术进行了比较。

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