Face recognition “on the move” combining incomplete information

Souad Khellat-Kihel, A. Lagorio, M. Tistarelli
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引用次数: 1

Abstract

Face recognition has a strong potential for identity verification on mobile devices, now embedding high resolution cameras and high-end computing hardware. Personal computing devices often also embed automatic face detection, thus facilitating the extraction and processing of face data. The main objective of this paper is to implement a flexible architecture to recognize faces from partial face data. The proposed architecture can be very effective to analyze video data from forensic cases where portions of the face are hidden from other objects. The proposed approach is based on the application of Kernel Fisher Analysis (KFA) to Gabor features extracted from the available face data. Several experiments carried out on realistic image samples demonstrate the validity of the proposed approach.
人脸识别“移动中”结合不完整信息
人脸识别在移动设备上具有强大的身份验证潜力,现在嵌入了高分辨率摄像头和高端计算硬件。个人计算设备也经常嵌入自动人脸检测,从而方便了人脸数据的提取和处理。本文的主要目标是实现一种灵活的从部分人脸数据中识别人脸的体系结构。所提出的架构可以非常有效地分析来自法医案件的视频数据,其中面部部分被其他物体隐藏。该方法基于核费雪分析(KFA)对从可用人脸数据中提取的Gabor特征的应用。在真实图像样本上进行的实验证明了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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