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- W2910369730 abstract "Due to the exponential growth in the popularity of online social networks (OSNs), such as Twitter and Facebook, the number of machine accounts that are designed to mimic human users has increased. Social bots accounts (Sybils) have become more sophisticated and deceptive in their efforts to replicate the behaviors of normal accounts. As such, there is a distinct need for the research community to develop technologies that can detect social bots. This paper presents a review of the recent techniques that have emerged that are designed to differentiate between social bot account and human accounts. We limit the analysis to the detection of social bots on the Twitter social media platform. We review the various detection schemes that are currently in use and examine common aspects such as the classifier, datasets, and selected features employed. We also compare the evaluation techniques that are employed to validate the classifiers. Finally, we highlight the challenges that remain in the domain of social bot detection and consider future directions for research efforts that are designed to address this problem." @default.
- W2910369730 created "2019-01-25" @default.
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- W2910369730 date "2018-11-01" @default.
- W2910369730 modified "2023-10-13" @default.
- W2910369730 title "Detecting Social Bots on Twitter: A Literature Review" @default.
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- W2910369730 doi "https://doi.org/10.1109/innovations.2018.8605995" @default.
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