Characterising Behavioural Families and Dynamics of Promotional Twitter Bots via Sequence-Based Modelling
Ohoud Alzahrani, Russell Beale, Robert J. Hendley

TL;DR
This study uses sequence-based modelling to identify behavioural families among promotional Twitter bots, revealing their evolution, mutation patterns, and family-specific dynamics over time.
Contribution
It introduces a novel sequence-based approach to classify and analyze the behavioural evolution of promotional Twitter bots, uncovering distinct families and mutation dynamics.
Findings
Identified four coherent bot families with distinct behaviours.
Analyzed mutation patterns showing deletions and substitutions dominate.
Found family-specific mutation hotspots and response patterns.
Abstract
This paper asks whether promotional Twitter/X bots form behavioural families and whether members evolve similarly. We analyse 2,798,672 tweets from 2,615 ground-truth promotional bot accounts (2006-2021), focusing on complete years 2009 to 2020. Each bot is encoded as a sequence of symbolic blocks (``digital DNA'') from seven categorical post-level behavioural features (posting action, URL, media, text duplication, hashtags, emojis, sentiment), preserving temporal order only. Using non-overlapping blocks (k=7), cosine similarity over block-frequency vectors, and hierarchical clustering, we obtain four coherent families: Unique Tweeters, Duplicators with URLs, Content Multipliers, and Informed Contributors. Families share behavioural cores but differ systematically in engagement strategies and life-cycle dynamics (beginning/middle/end). We then model behavioural change as mutations.…
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Taxonomy
TopicsSpam and Phishing Detection · AI in Service Interactions · Misinformation and Its Impacts
