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Sagacious Intrusion Detection Strategy in Sensor Network

Shahzad Ashraf, Tauqeer Ahmed

20202020 International Conference on UK-China Emerging Technologies (UCET)29 citationsDOI

Abstract

Almost all smart appliances are operated through wireless sensor networks. With the passage of time, due to various applications, the WSN becomes prone to various external attacks. Preventing such attacks, Intrusion Detection strategy (IDS) is very crucial to secure the network from the malicious attackers. The proposed IDS methodology discovers the pattern in large data corpus which works for different types of algorithms to detect four types of Denial of service (DoS) attacks, namely, Grayhole, Blackhole, Flooding, and TDMA. The state-of-the-art detection algorithms, such as KNN, Naïve Bayes, Logistic Regression, Support Vector Machine (SVM), and ANN are applied to the data corpus and analyze the performance in detecting the attacks. The analysis shows that these algorithms are applicable for the detection and prediction of unavoidable attacks and can be recommended for network experts and analysts.

Topics & Concepts

Computer scienceDenial-of-service attackIntrusion detection systemSupport vector machineFlooding (psychology)Naive Bayes classifierWireless sensor networkData miningComputer networkComputer securityMachine learningArtificial intelligenceThe InternetOperating systemPsychotherapistPsychologyNetwork Security and Intrusion DetectionSecurity in Wireless Sensor NetworksAnomaly Detection Techniques and Applications
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