Emotion Detection and Analysis from Facial Image using Distance between Coordinates Feature

Jinhee Bae, Minwoo Kim, J. Lim
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Abstract

Facial expression recognition has long been established as a subject of continuous research in various fields. In this study, feature extraction was conducted by calculating the distance between facial landmarks in an image. The extracted features of the relationship between each landmark and analysis were used to classify five facial expressions. We increased the data and label reliability based on our labeling work with multiple observers. Additionally, faces were recognized from the original data, and landmark coordinates were extracted and used as features. A genetic algorithm was used to select features that were relatively more helpful for classification. We performed facial recognition classification and analysis using the method proposed in this study, which showed the validity and effectiveness of the proposed method.
基于坐标距离特征的人脸图像情感检测与分析
面部表情识别早已成为各个领域不断研究的课题。在本研究中,通过计算图像中面部地标之间的距离来进行特征提取。将提取的特征与各地标之间的关系进行分析,对5种面部表情进行分类。基于我们与多个观察者的标记工作,我们提高了数据和标签的可靠性。此外,从原始数据中识别人脸,提取地标坐标作为特征。使用遗传算法选择相对更有助于分类的特征。我们使用本研究提出的方法进行了人脸识别分类和分析,验证了所提方法的有效性。
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