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A Clustering Approach for Profiling LoRaWAN IoT Devices

机译:剖析洛拉瓦本IOT设备的聚类方法

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Internet of Things (IoT) devices are starting to play a predominant role in our everyday life. Application systems like Amazon Echo and Google Home allow IoT devices to answer human requests, or trigger some alarms and perform suitable actions. In this scenario, any data information, related device and human interaction are stored in databases and can be used for future analysis and improve the system functionality. Also, IoT information related to the network level (wireless or wired) may be stored in databases and can be processed to improve the technology operation and to detect network anomalies. Acquired data can be also used for profiling operation, in order to group devices according to their characteristics. LoRaWAN (Long Range Wide Area Network) is one of the emerging IoT technologies in today's world, it is a protocol based on LoRa modulation. In this work, we propose a methodology to process LoRaWAN packets and perform profiling of the IoT devices. Specifically, we use the k-means algorithm to group devices according to their radio and network behaviour. We tested our approach on a real LoRaWAN network where the entire captured traffic is stored in a proprietary database. Our analysis, performed on 286, 753 packets with 765 devices involved, leads to remarkable clustering performance according to validation indices such as the Silhouette and the Davies-Bouldin indices. Further, with the help of field-experts, we were able to analyze clusters' contents, revealing results both in line with the current network behaviour and alerts on malfunctioning devices, remarking the reliability of the proposed approach.
机译:物联网(物联网)设备开始在日常生活中发挥主要作用。像Amazon Echo和Google Home等应用系统允许IoT设备回答人类请求,或触发一些警报并执行合适的操作。在这种情况下,任何数据信息,相关设备和人工交互都存储在数据库中,并且可用于将来的分析和提高系统功能。此外,与网络级别(无线或有线)相关的物联网信息可以存储在数据库中,并且可以被处理以改善技术操作并检测网络异常。获取的数据也可以用于分析操作,以根据其特征对设备进行分析。 Lorawan(远程广域网)是当今世界的新兴物联网技术之一,它是一种基于LORA调制的协议。在这项工作中,我们提出了一种方法来处理Lorawan数据包并执行物联网设备的分析。具体地,我们使用K-Means算法根据其无线电和网络行为来对组设备。我们在真正的LoraWan网络上测试了我们的方法,其中整个捕获的流量存储在专有数据库中。我们的分析,在286,753个数据包中进行了765个设备,导致验证指数(如轮廓和Davies-Bouldin指数)导致卓越的聚类性能。此外,在现场专家的帮助下,我们能够分析集群内容,透露符合目前网络行为和故障设备上的警报的结果,阐述了所提出的方法的可靠性。

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