Linear SVM-Based Android Malware Detection for Reliable IoT Services

Author:

Ham Hyo-Sik1,Kim Hwan-Hee1,Kim Myung-Sup2ORCID,Choi Mi-Jung1ORCID

Affiliation:

1. Department of Computer Science, Kangwon National University, 1 Kangwondaehak-gil, Gangwon-do 200-701, Republic of Korea

2. Department of Computer and Information Science, Korea University, 2511 Sejong-ro, Sejong-si 339-770, Republic of Korea

Abstract

Current many Internet of Things (IoT) services are monitored and controlled through smartphone applications. By combining IoT with smartphones, many convenient IoT services have been provided to users. However, there are adverse underlying effects in such services including invasion of privacy and information leakage. In most cases, mobile devices have become cluttered with important personal user information as various services and contents are provided through them. Accordingly, attackers are expanding the scope of their attacks beyond the existing PC and Internet environment into mobile devices. In this paper, we apply a linear support vector machine (SVM) to detect Android malware and compare the malware detection performance of SVM with that of other machine learning classifiers. Through experimental validation, we show that the SVM outperforms other machine learning classifiers.

Funder

National Research Foundation of Korea

Publisher

Hindawi Limited

Subject

Applied Mathematics

Reference19 articles.

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