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Composite Support Vector Machines with Extended Discriminative Features for Accurate Face Detection

机译:具有扩展判别功能的复合支持向量机,用于精确的人脸检测

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This paper describes a pattern classifier for detecting frontal-view faces via learning a decision boundary. The proposed classifier consists of two major parts for improving classification accuracy: the implicit modeling of both the face and the near-face classes resulting in an extended discriminative feature set, and the subsequent composite Support Vector Machines (SVMs) for speeding up the classification. For the extended discriminative feature set, Principal Component Analysis (PCA) or Independent Component Analysis (ICA) is performed for the face and nearface classes separately. The projections and distances to the two different subspaces are complementary, which significantly enhances classification accuracy of SVM. Multiple nonlinear SVMs are trained for the local facial feature spaces considering the general multi-modal characteristic of the face space. Each component SVM has a simpler boundary than that of a single SVM for the whole face space. The most appropriate component SVM is selected by a gating mechanism based on clustering. The classification by utilizing one of the multiple SVMs guarantees good generalization performance and speeds up face detection. The proposed classifier is finally implemented to work in real-time by cascading a boosting based face detector.
机译:本文介绍了一种通过学习决策边界来检测正面人脸的模式分类器。拟议的分类器包括两个主要部分,以提高分类的准确性:对人脸和近人脸类进行隐式建模,从而产生扩展的判别特征集;以及随后的复合支持向量机(SVM),用于加快分类速度。对于扩展的区分特征集,分别对面部和近面部类别执行主成分分析(PCA)或独立成分分析(ICA)。到两个不同子空间的投影和距离是互补的,这大大提高了SVM的分类精度。考虑到面部空间的一般多峰特征,针对局部面部特征空间训练了多个非线性SVM。对于整个面部空间,每个组件SVM的边界都比单个SVM的边界简单。通过基于群集的门控机制选择最合适的组件SVM。利用多个SVM之一进行分类可确保良好的泛化性能并加快人脸检测速度。最终,通过级联基于提升的面部检测器,实现了提出的分类器以实时工作。

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