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Robust Metric and Alignment for Profile-Based Face Recognition: An Experimental Comparison

机译:基于概况的面部识别的鲁棒度量和对准:实验比较

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The human facial profile curve provides complementary information of the face that is not present in the frontal-view face, which has been used in face identification, face analysis and modelling. This paper addresses robust facial profile recognition. With appropriate rotation, the profile curve can be considered as a histogram, where histogram metric could be employed to measure profiles. The advantage is that no detection of fiducial points is required, which is usually unreliable and hard to implement fully automatically. This paper also introduces three methods to align profiles, and investigates four similarity measures. The experiments on two profile image databases (Bern and FERET) and a facial range data set are carried out. The comparison with two primary approaches is conducted. The experimental results demonstrate that, compared with other methods, the involved metric for profile recognition has perfect performance robustness against noise.
机译:人的面部轮廓曲线提供了额视面部中不存在的互补信息,该脸部是面部识别,面部分析和建模。 本文解决了强大的面部轮廓识别。 通过适当的旋转,轮廓曲线可以被认为是直方图,其中可以采用直方图度量来测量配置文件。 优点是,不需要检测无需基准点,这通常是不可靠的并且难以完全自动实现。 本文还介绍了三种对齐型材的方法,并调查四种相似度措施。 执行两个轮廓图像数据库(BERN和FERET)的实验和面部范围数据集。 进行与两种主要方法的比较。 实验结果表明,与其他方法相比,涉及的简介识别的指标具有完善的对抗噪声的鲁棒性。

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