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A probabilistic risk analysis for multimodal entry control

机译:多模式进入控制的概率风险分析

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Entry control is an important security measure that prevents undesired persons from entering secure areas. The advanced risk analysis presented in this paper makes it possible to distinguish between acceptable and unacceptable entries, based on several entry sensors, such as fingerprint readers, and intelligent methods that learn behavior from previous entries. We have extended the intelligent layer in two ways: first, by adding a meta-learning layer that combines the output of specific intelligent modules, and second, by constructing a Bayesian network to integrate the predictions of the learning and meta-learning modules. The obtained results represent an important improvement in detecting security attacks.
机译:进入控制是一项重要的安全措施,可防止不想要的人进入安全区域。本文中介绍的高级风险分析功能使您可以基于几种进入传感器(例如指纹读取器)和从先前的进入中学习行为的智能方法,来区分可接受和不可接受的进入。我们以两种方式扩展了智能层:首先,通过添加将特定智能模块的输出组合在一起的元学习层,其次,通过构造贝叶斯网络来集成学习模块和元学习模块的预测。获得的结果表示在检测安全攻击方面的重要改进。

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