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Artificial Face Recognition Using Wavelet Adaptive LBP with Directional Statistical Features

机译:具有方向统计特征的小波自适应LBP人工面部识别

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In this paper, a novel face recognition technique based on discrete wavelet transform and Adaptive Local Binary Pattern (ALBP) with directional statistical features is proposed. The proposed technique consists of three stages: preprocessing, feature extraction and recognition. In preprocessing and feature extraction stages, wavelet decomposition is used to enhance the common features of the same subject of images and the ALBP is used to extract representative features from each facial image. Then, the mean and the standard deviation of the local absolute difference between each pixel and its neighbors are used within ALBP and the nearest neighbor classifier to improve the classification accuracy of the LBP. Experiments conducted on two virtual world avatar face image datasets show that our technique performs better than LBP, PCA, multi-scale Local Binary Pattern, ALBP and ALBP with directional statistical features (ALBPF) in terms of accuracy and the time required to classify each facial image to its subject.
机译:提出了一种基于离散小波变换和具有方向统计特征的自适应局部二值模式(ALBP)的人脸识别新技术。所提出的技术包括三个阶段:预处理,特征提取和识别。在预处理和特征提取阶段,小波分解用于增强同一图像对象的共同特征,而ALBP用于从每个面部图像中提取代表性特征。然后,在ALBP和最近的邻居分类器中使用每个像素与其邻居之间的局部绝对差的均值和标准差,以提高LBP的分类精度。在两个虚拟世界头像面部图像数据集上进行的实验表明,在分类每个面部所需的准确性和时间方面,我们的技术性能优于LBP,PCA,多尺度局部二进制模式,ALBP和具有方向统计特征(ALBPF)的ALBP与其主题相关的图片。

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