Malware Detection in Internet of Things (IoT) Devices Using Deep Learning. 2022

Sharjeel Riaz, and Shahzad Latif, and Syed Muhammad Usman, and Syed Sajid Ullah, and Abeer D Algarni, and Amanullah Yasin, and Aamir Anwar, and Hela Elmannai, and Saddam Hussain
Department of Computer Science, Shaheed Zulfikar Ali Bhutto Institute of Science and Technology, Islamabad Campus, Islamabad 44000, Pakistan.

Internet of Things (IoT) devices usage is increasing exponentially with the spread of the internet. With the increasing capacity of data on IoT devices, these devices are becoming venerable to malware attacks; therefore, malware detection becomes an important issue in IoT devices. An effective, reliable, and time-efficient mechanism is required for the identification of sophisticated malware. Researchers have proposed multiple methods for malware detection in recent years, however, accurate detection remains a challenge. We propose a deep learning-based ensemble classification method for the detection of malware in IoT devices. It uses a three steps approach; in the first step, data is preprocessed using scaling, normalization, and de-noising, whereas in the second step, features are selected and one hot encoding is applied followed by the ensemble classifier based on CNN and LSTM outputs for detection of malware. We have compared results with the state-of-the-art methods and our proposed method outperforms the existing methods on standard datasets with an average accuracy of 99.5%.

UI MeSH Term Description Entries
D012108 Research Personnel Those individuals engaged in research. Clinical Investigator,Clinical Investigators,Researchers,Investigator, Clinical,Investigators,Investigators, Clinical,Survey Personnel,Investigator,Personnel, Research,Personnel, Survey,Researcher
D006801 Humans Members of the species Homo sapiens. Homo sapiens,Man (Taxonomy),Human,Man, Modern,Modern Man
D000077321 Deep Learning Supervised or unsupervised machine learning methods that use multiple layers of data representations generated by nonlinear transformations, instead of individual task-specific ALGORITHMS, to build and train neural network models. Hierarchical Learning,Learning, Deep,Learning, Hierarchical
D000080487 Internet of Things Networking capability which facilitates information flow to and from objects and devices using the INTERNET.
D020407 Internet A loose confederation of computer communication networks around the world. The networks that make up the Internet are connected through several backbone networks. The Internet grew out of the US Government ARPAnet project and was designed to facilitate information exchange. World Wide Web,Cyber Space,Cyberspace,Web, World Wide,Wide Web, World

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