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Facial expression recognition based on local directional number pattern and ANFIS classifier

机译:基于局部方向数字模式和ANFIS分类的面部表情识别

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In this work, an efficient algorithm for facial expression recognition using a local feature descriptor, Local Binary Pattern (LBP), Local Directional Number Pattern (LDN) and Soft Computing Technique, Adaptive Neuro-Fuzzy Inference Systems (ANFIS) is presented. In the first experiment local binary pattern is computed using the input image.In the second experiment, the face image is subjected to a Kirsch compass mask that gives the directional information of the image and with the help of masked output Local Directional Number Pattern (LDN) code is computed. The obtained LBP and LDN image is divided into several regions and the distribution of the LBP and LDN features are extracted from them. These features are then concatenated into a feature vector, which is used for ANFIS training and classification. The experimental evaluation of the presented method is carried out using Japanese Female Facial Expression Database (JAFFE) and Indian Face Database (IFD). The results obtained from the experiments prove that the presented method successfully recognize the facial expression variations.
机译:在这项工作中,呈现了使用本地特征描述符,局部二进制模式(LBP),局部方向数图案(LDN)和软计算技术,自适应神经模糊推理系统(ANFIS)的基面表达识别的有效算法。在第一实验中,使用输入图像计算局部二进制图案。在第二实验中,对面部图像进行Kirsch Compass掩模,其给出图像的方向信息,并且在屏蔽输出局部方向数图案的帮助下(LDN )计算代码。所获得的LBP和LDN图像分为几个区域,并从它们中提取LBP和LDN特征的分布。然后将这些功能连接到特征向量中,该特征向量用于ANFIS培训和分类。所提出的方法的实验评估是使用日本女性面部表情数据库(jaffe)和印度面部数据库(IFD)进行的。从实验中获得的结果证明,所提出的方法成功地识别面部表情变化。

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