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Using Trusted Networks to Detect Anomaly Nodes in Internet of Things

机译:使用可信网络检测Internet Internet中的异常节点

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The increase of Internet of Things has insert many challenges on networks studies. This kind of network suffer with problems like wide traffic, fault and monitoring problems. Regarding this, the concept of trust has gained increasing attention on academia by its comprehensiveness through the nodes behavior such as energy consumption, data transmission, and processing time. If a node has a different behavior from its neighbours it can be considered an anomalous node. In this paper, we propose a method for identifying if nodes are anomalous, using only their own monitored data by computing trust values for each node. Also, a data compression method is applied to help reduce the network traffic. This method is capable of signaling and separating anomalous data coming from different nodes in order to maintain the lowest possible interference level due to errors, frauds or malicious attacks. Our objective is to avoid errors in a posterior phase. For trust measurement we have used Subjective Logic that has been recently explored for these purposes. Experiments demonstrate that our method is feasible and help to reduce package size and spare energy.
机译:互联网上的增加在网络研究中也存在许多挑战。这种网络遭受了广泛的交通,故障和监测问题等问题。关于这一点,通过通过节点行为,如能量消耗,数据传输和处理时间,信任的概念在学术界上取得了越来越关注。如果节点与其邻居具有不同的行为,则它可以被视为异常节点。在本文中,我们提出了一种用于识别如果节点是异常的方法,仅通过计算每个节点的信任值来使用自己的监视数据。此外,应用数据压缩方法以帮助减少网络流量。该方法能够发信号通知和分离来自不同节点的异常数据,以便由于错误,欺诈或恶意攻击而保持最低的干扰水平。我们的目标是避免后期错误。对于信任测量,我们使用最近探索这些目的的主观逻辑。实验表明,我们的方法是可行的,有助于减少包装尺寸和备用能量。

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