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Why template self-update should work in biometric authentication systems?

机译:为什么模板自我更新应该在生物识别系统中起作用?

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摘要

The term adaptive biometric systems refers to biometric recognition systems in which an algorithm aimed to follow variations of the clients appearance has been implemented. Among others, the self update algorithm is used when only one biometric is available, and is able to add to the clients gallery novel data collected during system operation, on the basis of a updating threshold: if the novel data, compared with existing template(s), provide a matching score higher than the given threshold, they are added to the gallery. In order to avoid misclassification errors, thus inserting impostors into the clients gallery, this threshold is very conservative. Self-update algorithm has shown to be effective for many biometrics. However, no work tried to explain, so far, why self-update should work, in particular when a very conservative update threshold is used (zeroFAR threshold). This is the goal of the present paper, which provides a conceptual explanation of the self update mechanism coupled with a set of experiments on a publicly available data set explicitly designed for studying adaptive biometric systems.
机译:术语自适应生物识别系统是指其中已实现了旨在遵循客户外观变化的算法的生物识别系统。除其他方法外,当只有一个生物特征数据可用时使用自更新算法,并且能够根据更新阈值将系统运行期间收集的新数据添加到客户端图库:如果新数据与现有模板相比, s),提供高于给定阈值的匹配分数,这些分数将添加到图库中。为了避免错误分类错误,从而将冒名顶替者插入客户通道,此阈值非常保守。自我更新算法已显示对许多生物特征识别都是有效的。但是,到目前为止,没有工作试图解释为什么自我更新应该起作用,尤其是当使用非常保守的更新阈值(zeroFAR阈值)时。这是本文的目标,它提供了对自我更新机制的概念性解释,并结合了一组针对明确设计用于研究自适应生物识别系统的公共可用数据集的实验。

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