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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Colour invariants under a non-linear photometric camera model and their application to face recognition from video
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Colour invariants under a non-linear photometric camera model and their application to face recognition from video

机译:非线性光度相机模型下的颜色不变性及其在视频人脸识别中的应用

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摘要

Illumination invariance remains one of the most researched, yet the most challenging aspect of automatic face recognition. In this paper the discriminative power of colour-based invariants is investigated in the presence of large illumination changes between training and query data, when appearance changes due to cast shadows and non-Lambertian effects are significant. Specifically, there are three main contributions: (i) a general photometric model of the camera is described and it is shown how its parameters can be estimated from realistic video input of pseudo-random head motion, (ii) several novel colour-based face invariants are derived for different special instances of the camera model, and (iii) the performance of the largest number of colour-based representations in the literature is evaluated and analysed on a database of 700 video sequences. The reported results suggest that: (i) colour invariants do have a substantial discriminative power which may increase the robustness and accuracy of recognition from low resolution images in extreme illuminations, and (ii) that the non-linearities of the general photometric camera model have a significant effect on recognition performance. This highlights the limitations of previous work and emphasizes the need to assess face recognition performance using training and query data which had been captured by different acquisition equipment.
机译:照明不变性仍然是自动人脸识别中研究最多,但最具挑战性的方面之一。本文研究了在训练和查询数据之间存在较大照度变化时,当由于投射阴影和非朗伯效应引起的外观变化显着时,基于颜色的不变量的判别力。具体来说,有三个主要贡献:(i)描述了相机的一般光度模型,并显示了如何从伪随机头部运动的真实视频输入中估计其参数;(ii)几种基于颜色的新颖面孔对于相机模型的不同特殊实例,可以推导不变量,并且(iii)在700个视频序列的数据库中评估和分析文献中最大数量的基于颜色的表示的性能。报告的结果表明:(i)不变色确实具有很大的判别力,这可能会提高在极端照明下从低分辨率图像识别的鲁棒性和准确性,并且(ii)普通光度相机模型的非线性具有对识别性能有重大影响。这突出了先前工作的局限性,并强调了需要使用由不同采集设备捕获的训练和查询数据来评估人脸识别性能。

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