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Stable face representations

机译:稳定的面部表情

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摘要

Photographs are often used to establish the identity of an individual or to verify that they are who they claim to be. Yet, recent research shows that it is surprisingly difficult to match a photo to a face. Neither humans nor machines can perform this task reliably. Although human perceivers are good at matching familiar faces, performance with unfamiliar faces is strikingly poor. The situation is no better for automatic face recognition systems. In practical settings, automatic systems have been consistently disappointing. In this review, we suggest that failure to distinguish between familiar and unfamiliar face processing has led to unrealistic expectations about face identification in applied settings. We also argue that a photograph is not necessarily a reliable indicator of facial appearance, and develop our proposal that summary statistics can provide more stable face representations. In particular, we show that image averaging stabilizes facial appearance by diluting aspects of the image that vary between snapshots of the same person. We review evidence that the resulting images can outperform photographs in both behavioural experiments and computer simulations, and outline promising directions for future research.
机译:照片通常用于建立个人身份或验证其身份。但是,最近的研究表明,将照片与脸部匹配非常困难。人和机器都无法可靠地执行此任务。尽管人类感知者擅长匹配熟悉的面孔,但与陌生面孔的表现却非常差。对于自动人脸识别系统而言,情况并不更好。在实际环境中,自动系统一直令人失望。在这篇评论中,我们建议未能区分熟悉和不熟悉的脸部处理导致对应用环境中的脸部识别不切实际的期望。我们还认为照片不一定是面部表情的可靠指标,并提出了我们的建议,即摘要统计可以提供更稳定的面部表情。特别是,我们显示图像平均可以通过稀释同一个人快照之间变化的图像方面来稳定面部外观。我们审查的证据表明,所得到的图像在行为实验和计算机模拟中均能胜过照片,并为未来的研究提供了有希望的方向。

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