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HOG-Based Decision Tree for Facial Expression Classification

机译:基于HOG的面部表情分类决策树

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We address the problem of human emotion identification from still pictures taken in semi-controlled environments. Histogram of Oriented Gradient (HOG) descriptors are considered to describe the local appearance and shape of the face. First, we propose a Bayesian formulation to compute class specific edge distribution and log-likelihood maps over the entire aligned training set. A hierarchical decision tree is then built using a bottom-up strategy by recursively clustering and merging the classes at each level. For each branch of the tree we build a list of potentially discriminative HOG features using the log-likelihood maps to favor locations that we expect to be more discriminative. Finally, a Support Vector Machine (SVM) is considered for the decision process in each branch. The evaluation of the present method has been carried out on the Cohn-Kanade AU-Coded Facial Expression Database, recognizing different emotional states from single picture of people not present in the training set.
机译:我们解决了半控制环境中仍然拍摄的人类情感识别问题。定向梯度(HOG)描述符的直方图被认为是描述面部的局部外观和形状。首先,我们提出了一个贝叶斯配方来计算整个对齐训练集上的类特定边缘分布和日志似然映射。然后,通过递归群集培养并在每个级别合并类别,使用自下而上的策略构建分层决策树。对于树的每个分支,我们使用日志似然映射构建潜在鉴别的猪群特征列表,以支持我们期望更差异的位置。最后,考虑支持向量机(SVM)在每个分支中的决策过程。对本方法的评估已经在Cohn-Kanade Au编码的面部表情数据库中进行,识别不同的情绪状态,从训练集中的人们的单张图片中识别不同的情绪状态。

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