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A gender classification scheme based on multi-region feature extraction and information fusion for unconstrained images

机译:基于多区域特征提取和信息融合的无约束图像性别分类方案

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摘要

Since gender classification has been interesting in many applications, we proposed a gender classification scheme based on multi-region feature extraction and information fusion in the paper. The proposed gender classification scheme is composed of three parts: pre-processing, multi-region feature extraction, and gender classifier. Before extracting useful information from multiple regions in a facial image, face detection and face orientation correction are performed in the pre-processing. Multi-region feature extraction measures three kinds of features from eyes, internal face, and hair. Since the three kinds of features have their particular properties, a classifier based on decision-level information fusion is utilized to combine these features for gender classification. To evaluate the proposed scheme, a large number of unconstrained images containing different-size faces are captured by using a low-cost webcam and digital cameras. Experimental results show that our proposed scheme can detect facial regions and the location of eyes well. Furthermore, the accuracy of the proposed gender classification scheme is higher than 96 %. These experimental results demonstrate that the proposed scheme can deal with unconstrained images for gender classification.
机译:由于性别分类在许多应用中引起了人们的兴趣,因此本文提出了一种基于多区域特征提取和信息融合的性别分类方案。拟议的性别分类方案由三个部分组成:预处理,多区域特征提取和性别分类器。在从面部图像的多个区域提取有用信息之前,在预处理中执行面部检测和面部朝向校正。多区域特征提取可测量眼睛,内脸和头发中的三种特征。由于这三种特征具有其特定的属性,因此基于决策级信息融合的分类器被用于组合这些特征以进行性别分类。为了评估所提出的方案,使用低成本的网络摄像头和数码相机捕获了大量包含不同大小面孔的无约束图像。实验结果表明,该方案能够很好地检测出面部区域和眼睛位置。此外,提出的性别分类方案的准确性高于96%。这些实验结果表明,该方案可以处理不受约束的图像进行性别分类。

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