首页> 外文会议>Infrared Technology and Applications XXXII pt.2 >Face Recognition in Low-Light Environments Using Fusion of Thermal Infrared and Intensified Imagery
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Face Recognition in Low-Light Environments Using Fusion of Thermal Infrared and Intensified Imagery

机译:利用热红外图像和增强图像的融合在弱光环境中进行人脸识别

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This paper presents a study of face recognition performance as a function of light level using intensified near infrared imagery in conjunction with thermal infrared imagery. Intensification technology is the most prevalent in both civilian and military night vision equipment, and provides enough enhancement for human operators to perform standard tasks under extremely low-light conditions. We describe a comprehensive data collection effort undertaken by the authors to image subjects under carefully controlled illumination and quantify the performance of standard face recognition algorithms on visible, intensified and thermal imagery as a function of light level. Performance comparisons for automatic face recognition are reported using the standardized implementations from the CSU Face Identification Evaluation System, as well as Equinox own algorithms. The results contained in this paper should constitute the initial step for analysis and deployment efface recognition systems designed to work in low-light level conditions.
机译:本文结合增强型近红外图像和热红外图像,对人脸识别性能随光强的变化进行了研究。增强技术是民用和军事夜视设备中最普遍的技术,它为操作人员提供了足够的增强功能,使其可以在极弱的光照条件下执行标准任务。我们描述了作者进行的全面数据收集工作,以在精心控制的照明下对对象进行成像,并量化标准人脸识别算法在可见光,增强光和热图像上的性能,作为光强的函数。使用CSU人脸识别评估系统的标准化实现以及Equinox自己的算法,报告了自动人脸识别的性能比较。本文包含的结果应构成分析和部署面部识别系统的第一步,该系统旨在在弱光条件下工作。

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