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2016 | OriginalPaper | Buchkapitel

On Profiling Bots in Social Media

verfasst von : Richard J. Oentaryo, Arinto Murdopo, Philips K. Prasetyo, Ee-Peng Lim

Erschienen in: Social Informatics

Verlag: Springer International Publishing

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Abstract

The popularity of social media platforms such as Twitter has led to the proliferation of automated bots, creating both opportunities and challenges in information dissemination, user engagements, and quality of services. Past works on profiling bots had been focused largely on malicious bots, with the assumption that these bots should be removed. In this work, however, we find many bots that are benign, and propose a new, broader categorization of bots based on their behaviors. This includes broadcast, consumption, and spam bots. To facilitate comprehensive analyses of bots and how they compare to human accounts, we develop a systematic profiling framework that includes a rich set of features and classifier bank. We conduct extensive experiments to evaluate the performances of different classifiers under varying time windows, identify the key features of bots, and infer about bots in a larger Twitter population. Our analysis encompasses more than 159K bot and human (non-bot) accounts in Twitter. The results provide interesting insights on the behavioral traits of both benign and malicious bots.

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4
The exceptionally low tweet frequencies in the first week of January and 12-14 February are due to major downtime of our servers.
 
5
Random guess w.r.t. a class c refers to a classifier that assigns a proportion \(p_c\%\) of the instances to class c, and \((1-p_c)\%\) to classes other than c. In this case, \(Precision(c) = Recall(c) = F1(c) = p_c\), where \(p_c = \frac{P(c)}{P(c)+N(c)} = \frac{TP(c) + FN(c)}{TP(c) + FN(c) + TN(c) + FP(c)}\).
 
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Metadaten
Titel
On Profiling Bots in Social Media
verfasst von
Richard J. Oentaryo
Arinto Murdopo
Philips K. Prasetyo
Ee-Peng Lim
Copyright-Jahr
2016
DOI
https://doi.org/10.1007/978-3-319-47880-7_6

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