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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >A hybrid novelty score and its use in keystroke dynamics-based user authentication
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A hybrid novelty score and its use in keystroke dynamics-based user authentication

机译:混合新颖性评分及其在基于击键动力学的用户身份验证中的应用

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摘要

The purpose of novelty detection is to detect (novel) patterns that are not generated by the identical distribution of the normal class. A distance-based novelty detector classifies a new data pattern as "novel" if its distance from "normal" patterns is large. It is intuitive, easy to implement, and fits naturally With incremental learning. Its performance is limited, however, because it relies only on distance. In this paper, we propose considering topological relations as well. We compare our proposed method with 13 other novelty detectors based on 21 benchmark data sets from two sources. We then apply our method to a real-world application in which incremental learning is necessary: keystroke dynamics-based user authentication. The experimental results are promising. Not only does our method improve the performance of distance-based novelty detectors, but it also outperforms the other non-distance-based algorithms. Our method also allows efficient model updates.
机译:新颖性检测的目的是检测不是由正常类别的相同分布生成的(新颖)模式。如果基于距离的新颖性检测器与“正常”模式的距离较大,则将其分类为“新颖”。它直观,易于实施,并且自然适合增量学习。但是,它的性能受到限制,因为它仅依赖于距离。在本文中,我们还建议考虑拓扑关系。我们基于两个来源的21个基准数据集,将我们提出的方法与其他13个新颖性检测器进行了比较。然后,我们将我们的方法应用于需要增量学习的实际应用程序中:基于击键动力学的用户身份验证。实验结果是有希望的。我们的方法不仅提高了基于距离的新颖性检测器的性能,而且还优于其他基于非距离的算法。我们的方法还允许有效的模型更新。

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