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Evidence Identification and Acquisition Based on Network Link in an Internet of Things Environment

机译:基于网络环境中的网络链接的证据识别和收购

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In an Internet of Things (IoT) environment, IoT devices are typically connected through different network media types such as mobile, WiFi and wired networks. Due to the pervasive nature of such devices, they are a potential evidence source in both civil litigation and criminal investigations. It is, however, challenging to identify and acquire forensic artifacts from the broad range of devices, which have varying storage and communication capabilities. We posit the importance of focusing on the hidden links between different IoT devices (e.g. whether one device is controlled or can be accessed from another device in the system), and design an approach to do so. Specifically, our approach adopts a graph to model the message flows of IoT communications, with the aim of facilitating the identification of correlated network traffic, based on the direction of the network and the associated attributes. To demonstrate how such an approach can be deployed in practice, we evaluate our approach using IoT devices in a smart home environment and achieve an accuracy rate of 98.3% for detecting hidden links between devices.
机译:在某网内容(物联网)环境中,IOT设备通常通过不同的网络媒体类型连接,例如移动,WiFi和有线网络。由于此类设备的普遍性,他们是民事诉讼和刑事调查的潜在证据来源。然而,挑战识别和获取来自广泛的设备的法医伪像,具有不同的存储和通信能力。我们对专注于不同物联网设备之间的隐藏链接的重要性(例如,可以从系统中的另一个设备访问或可以访问一个设备),并设计一种方法。具体而言,我们的方法采用图形来模拟物联网通信的消息流,以促进基于网络的方向和相关属性的相关网络流量的识别。为了展示在实践中可以部署这种方法,我们使用智能家庭环境中的IOT设备评估我们的方法,并实现98.3%的准确率,以检测设备之间的隐藏链接。

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