Determining of the user attitudes on mobile security programs with machine learning methods

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Abstract

Security plays an important role in today's virtual world. Cybersecurity software has been widely used by the development of portable virtual environments. Smartphones occur in an important part of our lives. Daily routines are performed over mobile phones, especially after the COVID-19 pandemic process. Due to its ease of use, compulsory or optional mobile phone use also brought about many security concerns. Mobile security software is used for different purposes such as virus removal and protection of personal information according to user preferences. In the field of natural language processing, user preferences can now be analyzed on the basis of machine learning methods with sentiment analysis. In this paper, the preference reasons for mobile security software have been analysed with machine learning methods based on user comments and sentiment analysis. In the study, all user comments have been classified into 10 main categories and the user preferences of mobile security programs have been analysed.

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APA

Yayla, R., & Bilgin, T. T. (2021). Determining of the user attitudes on mobile security programs with machine learning methods. Informatica (Slovenia), 45(3), 393–403. https://doi.org/10.31449/inf.v45i3.3506

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