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Score normalization for keystroke dynamics biometrics

机译:击键动态生物特征评分标准化

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摘要

This paper analyzes score normalization for keystroke dynamics authentication systems. Previous studies have shown that the performance of behavioral biometric recognition systems (e.g. voice and signature) can be largely improved with score normalization and target-dependent techniques. The main objective of this work is twofold: i) to analyze the effects of different thresholding techniques in 4 different keystroke dynamics recognition systems for real operational scenarios; and ii) to improve the performance of keystroke dynamics on the basis of target-dependent score normalization techniques. The experiments included in this work are worked out over the keystroke pattern of 114 users from two different publicly available databases. The experiments show that there is large room for improvements in keystroke dynamic systems. The results suggest that score normalization techniques can be used to improve the performance of keystroke dynamics systems in more than 20%. These results encourage researchers to explore this research line to further improve the performance of these systems in real operational environments.
机译:本文分析了击键动态认证系统的分数归一化。以前的研究表明,行为生物特征识别系统(例如语音和签名)的性能可以通过分数归一化和依赖目标的技术大大提高。这项工作的主要目的是双重的:i)在实际操作场景下分析4种不同的击键动力学识别系统中不同阈值处理技术的效果; ii)在目标相关的得分归一化技术的基础上提高击键动力学的性能。这项工作中包含的实验是根据来自两个不同的公开数据库的114位用户的按键模式进行的。实验表明,击键动态系统仍有很大的改进空间。结果表明,分数归一化技术可用于将击键动力学系统的性能提高20%以上。这些结果鼓励研究人员探索这一研究方向,以进一步提高这些系统在实际操作环境中的性能。

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