基于面部和外耳热特征的性别歧视

G. Koukiou, V. Anastassopoulos
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引用次数: 1

摘要

提出了从人脸热红外图像中提取简单特征进行性别歧视的方法。使用了两种不同类型的热特性。第一种类型实际上是基于面部特定位置像素的平均值。基于这一特征,可以正确区分数据库中所有的男性和女性病例。使用两种常规方法验证分类结果,即:a.尽可能简单的神经网络,从而实现泛化并成功区分所有人;b.使用尽可能简单的分类器来展示对未知人的分类性能的留一方法。第二种是利用人耳上的温度分布。研究发现,男性耳朵上较冷的区域所占的比例要比女性大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gender Discrimination based on the Thermal Signature of the Face and the External Ear
Simple features extracted from the thermal infrared images of the persons' face are proposed for gender discrimination. Two different types of thermal features are used. The first type is actually based on the mean value of the pixels of specific locations on the face. All cases of persons from the used database, males and females, are correctly distinguished based on this feature. Classification results are verified using two conventional approaches, namely: a. the simplest possible neural network so that generalization is achieved along with successful discrimination between all persons and b. the leave-one-out approach to demonstrate the classification performance on unknown persons using the simplest classifiers possible. The second type takes advantage of the temperature distribution on the ear of the persons. It is found that for the men the cooler region on the ear is larger as percentage compared to that of the women.
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