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A Design of Face Detection and Facial Expression Recognition Techniques Based on Boosting Schema

机译:基于Boosting模式的人脸检测与面部表情识别技术设计

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During the development of the facial expression classification procedure,we evaluate three machine learning methods.We combine ABAs with CARTs,which selects weak classifiers and integrates them into a strong classifier automatically.We have presented a highly automatic facial expression recognition system in which a face detection procedure is first able to detect and locate human faces in image sequences acquired in real environments.We need not label or choose characteristic blocks in advance.In the face detection procedure,some geometrical properties are applied to eliminate the skin color regions that do not belong to human faces.In the facial feature extraction procedure,we only perform both the binarization and edge detection operations on the proper ranges of eyes,mouth,and eyebrows to obtain the 16 landmarks of a human face to further produce 16 characteristic distances which represent a kind of expressions.We realize a facial expression classification procedure by employing an ABA to recognize six kinds of expressions.The performance of the system is very satisfactory; whose recognition rate achieves more than 90%.
机译:在开发面部表情分类程序的过程中,我们评估了三种机器学习方法。我们将ABA与CARTs结合在一起,选择弱分类器并将其自动集成为强分类器。检测程序首先能够检测和定位在真实环境中获取的图像序列中的人脸。我们无需预先标记或选择特征块。在人脸检测程序中,应用了某些几何属性以消除那些不存在的肤色区域在人脸特征提取过程中,我们仅对眼睛,嘴巴和眉毛的适当范围执行二值化和边缘检测操作,以获得人脸的16个界标以进一步产生16个特征距离,这些距离代表一种表情。我们通过使用一个表情来实现面部表情分类程序。 ABA识别六种表达方式。系统的性能非常令人满意;识别率达到90%以上。

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