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Human Face Detection in Thermal Images Using an Ensemble of Cascading Classifiers

机译:使用级联分类器的集合体的热图像中的人脸检测

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摘要

The paper addresses the subject of thermal imagery in the context of face detection. Its aim is to create and investigate a set of cascading classifiers learned on thermal facial portraits. In order to achieve this, an own database was employed, consisting of images from IR thermal camera. Employed classifiers are based on AdaBoost learning method with three types of low-level descriptors, namely Haar–like features, Histogram of oriented Gradients, and Local Binary Patterns. Several schemes of joining classification results were investigated. Performed experiments, on images taken in controlled and uncontrolled conditions, support the conclusions drawn.
机译:本文在面部检测的背景下解决了热图像的主题。它的目标是创建和调查一套级联分类者在热面部肖像上了解。为了实现这一点,采用了自己的数据库,由IR热敏摄像头的图像组成。就业的分类器基于Adaboost学习方法,具有三种类型的低级描述符,即哈拉的特征,面向梯度的直方图和局部二进制模式。调查了加入分类结果的几个方案。在受控和不受控制的条件下拍摄的图像上进行了实验,支持得出的结论。

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