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Facial Emotion Recognition Based on Eye and Mouth Regions

机译:基于眼与嘴区域的人脸情感识别

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Machine analysis of facial emotion recognition is a challenging and an innovative research topic in human-computer intelligent interaction nowadays. The eye and the mouth regions are most essential components for facial emotion recognition. Most of the existing approaches have not utilized the eye and the mouth regions for high recognition rate. This paper proposes an approach to overcome this limitation using the eye and the mouth region-based emotion recognition using reinforced local binary patterns (LBP). The local features are extracted in each frame by using Gabor wavelet with selected scale and orientations. This feature is passed on to the ensemble classifier for detecting the location of the face region. From the signature of each pixel on the face, the eye and the mouth regions are detected using ensemble classifier. The eye and the mouth features are extracted using reinforced LBP. Multi-class Adaboost algorithm is used to select and classify these discriminative features for recognizing the emotion of the face. The developed methods are deployed on the RML, CK and FERA 2011 databases, and they exhibit significant performance improvement owing to their novel features when compared to the existing techniques.
机译:如今,人脸智能识别的机器分析是一项具有挑战性和创新性的研究课题。眼睛和嘴巴区域是面部表情识别的最重要组成部分。大多数现有方法没有利用眼睛和嘴巴区域来实现高识别率。本文提出了一种方法,该方法使用增强的本地二进制模式(LBP)使用基于眼睛和嘴巴区域的情感识别来克服这种限制。通过使用具有选定比例和方向的Gabor小波在每帧中提取局部特征。此功能会传递到整体分类器,以检测面部区域的位置。根据面部每个像素的签名,使用集成分类器检测眼睛和嘴巴区域。使用增强的LBP提取眼睛和嘴部特征。多类Adaboost算法用于选择和分类这些识别特征,以识别面部表情。所开发的方法已部署在RML,CK和FERA 2011数据库上,并且与现有技术相比,由于其新颖的功能,它们具有显着的性能改进。

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