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Real-time multi-view face detection and pose estimation based on cost-sensitive AdaBoost

机译:基于成本敏感型AdaBoost的实时多视图人脸检测和姿态估计

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摘要

Locating multi-view faces in images with a complex background remains a challenging problem. In this paper, an integrated method for real-time multi-view face detection and pose estimation is presented. A simple-to-complex and coarse-to-fine view-based detector architecture has been designed to detect multiview faces and estimate their poses efficiently. Both the pose estimators and the view-based faceonface detectors are trained by a cost-sensitive AdaBoost algorithm to improve the generalization ability. Experimental results show that the proposed multi-view face detector, which can be constructed easily, gives more robust face detection and pose estimation and has a faster real-time detection speed compared with other conventional methods.
机译:在具有复杂背景的图像中定位多视图面部仍然是一个具有挑战性的问题。本文提出了一种实时多视角人脸检测和姿态估计的集成方法。设计了一种从简单到复杂以及从粗糙到精细的基于视图的检测器体系结构,以检测多视图面部并有效地估计其姿势。姿势估计器和基于视图的脸部/非脸部检测器均通过成本敏感的AdaBoost算法进行训练,以提高泛化能力。实验结果表明,与其他常规方法相比,所提出的多视图人脸检测器易于构造,具有更强大的人脸检测和姿势估计能力,并具有更快的实时检测速度。

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