Εμφάνιση απλής εγγραφής

dc.creatorPapafotikas S., Kakarountas A.en
dc.date.accessioned2023-01-31T09:42:53Z
dc.date.available2023-01-31T09:42:53Z
dc.date.issued2019
dc.identifier10.1109/SEEDA-CECNSM.2019.8908520
dc.identifier.isbn9781728147574
dc.identifier.urihttp://hdl.handle.net/11615/77652
dc.description.abstractNowadays we see the sharp increase in smart devices on the internet and in the network of things. An ever increasing problem with these devices is their protection against malware and internet attacks because of their heterogeneity. This makes them vulnerable and many of them without even showing signs of malfunction. In this work, we study these devices, the types of attacks that make them vulnerable, and suggest a digital system that embeds a Machine Learning(ML)-based clustering algorithm for detecting suspicious behavior, exploiting current supply characteristic dissipation. The system is prototype and uses the K-Means Clustering Algorithm with Supervised Training. The results of this work showed successful detection of suspicious behavior of smart IoT devices. © 2019 IEEE.en
dc.language.isoenen
dc.source2019 4th South-East Europe Design Automation, Computer Engineering, Computer Networks and Social Media Conference, SEEDA-CECNSM 2019en
dc.source.urihttps://www.scopus.com/inward/record.uri?eid=2-s2.0-85076353845&doi=10.1109%2fSEEDA-CECNSM.2019.8908520&partnerID=40&md5=398ab094e0e7f020e64b1fd290049d47
dc.subjectComputer aided designen
dc.subjectDigital devicesen
dc.subjectIntrusion detectionen
dc.subjectK-means clusteringen
dc.subjectMachine learningen
dc.subjectMalwareen
dc.subjectSocial networking (online)en
dc.subjectComponenten
dc.subjectFormattingen
dc.subjectInserten
dc.subjectStyleen
dc.subjectStylingen
dc.subjectInternet of thingsen
dc.subjectInstitute of Electrical and Electronics Engineers Inc.en
dc.titleA machine-learning clustering approach for intrusion detection to IoT devicesen
dc.typeconferenceItemen


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