Heterogeneous network intrusion detection via domain adaptation in IoT environment

Jun Zhang, Yao Li, Litian Zhang
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Abstract

Network intrusion detection refers to detect the threaten behaviors in the network to guarantee the network security. Compared with computer network, Internet of Things (IoT) consists of various devices, including computer, smart phone, smart watch, various sensors etc. The data in IoT may be captured from heterogeneous scenes using various devices. The data may follow from different distributions. Most previous works may fail when they are used in heterogeneous scenes of IoT. In order to overcome this issue, this paper designs a heterogeneous network intrusion detection scheme using attention sharing mechanism to implement domain adaptation for the intrusion detection of the data with heterogeneous distributions. The data from heterogeneous IoT devices is projected into the same sharing space via attention sharing to alleviate the bias between the distributions of data from these devices. Thus, the intrusion detection model learnt from the data from a scene can be migrated to another scene. The experiments and simulation demonstrate that the proposed intrusion detection scheme can adapt the changes of IoT scene.
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在物联网环境中通过域适应进行异构网络入侵检测
网络入侵检测是指检测网络中的威胁行为,以保证网络安全。与计算机网络相比,物联网(IoT)由各种设备组成,包括计算机、智能手机、智能手表、各种传感器等。物联网中的数据可能来自使用各种设备的异构场景。数据可能来自不同的分布。以前的大多数作品在物联网的异构场景中使用时可能会失败。为了克服这一问题,本文设计了一种异构网络入侵检测方案,利用注意力共享机制实现域自适应,对异构分布的数据进行入侵检测。通过注意力共享,异构物联网设备的数据被投射到同一个共享空间,以减轻这些设备数据分布之间的偏差。因此,从一个场景的数据中学习到的入侵检测模型可以迁移到另一个场景。实验和仿真证明,所提出的入侵检测方案能够适应物联网场景的变化。
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