Feature Extraction Using Observer Gaze Distributions for Gender Recognition

Masashi Nishiyama
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Abstract

We determine and use the gaze distribution of observers viewing images of subjects for gender recognition. In general, people look at informative regions when determining the gender of subjects in images. Based on this observation, we hypothesize that the regions corresponding to the concentration of the observer gaze distributions contain discriminative features for gender recognition. We generate the gaze distribution from observers while they perform the task of manually recognizing gender from subject images. Next, our gaze-guided feature extraction assigns high weights to the regions corresponding to clusters in the gaze distribution, thereby selecting discriminative features. Experimental results show that the observers mainly focused on the head region, not the entire body. Furthermore, we demonstrate that the gaze-guided feature extraction significantly improves the accuracy of gender recognition.
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基于观察者注视分布的特征提取用于性别识别
我们确定并使用观察对象图像的观察者的凝视分布进行性别识别。一般来说,人们在确定图像中主体的性别时,会看信息区域。基于这一观察,我们假设观察者注视分布的集中对应的区域包含性别识别的歧视性特征。当观察者手动从被试图像中识别性别时,我们生成了他们的注视分布。接下来,我们的凝视引导特征提取为凝视分布中集群对应的区域分配高权重,从而选择判别特征。实验结果表明,观察者主要集中在头部区域,而不是整个身体。此外,我们还证明了注视引导下的特征提取显著提高了性别识别的准确性。
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