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On the Origins of Memes by Means of Fringe Web Communities

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arxiv 1805.12512 v3 pith:OGKGEGM7 submitted 2018-05-31 cs.SI cs.CY

classification cs.SIcs.CY
keywords communitiesmemesfringeimagesmemeacrossclustersinfluence
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Internet memes are increasingly used to sway and manipulate public opinion. This prompts the need to study their propagation, evolution, and influence across the Web. In this paper, we detect and measure the propagation of memes across multiple Web communities, using a processing pipeline based on perceptual hashing and clustering techniques, and a dataset of 160M images from 2.6B posts gathered from Twitter, Reddit, 4chan's Politically Incorrect board (/pol/), and Gab, over the course of 13 months. We group the images posted on fringe Web communities (/pol/, Gab, and The_Donald subreddit) into clusters, annotate them using meme metadata obtained from Know Your Meme, and also map images from mainstream communities (Twitter and Reddit) to the clusters. Our analysis provides an assessment of the popularity and diversity of memes in the context of each community, showing, e.g., that racist memes are extremely common in fringe Web communities. We also find a substantial number of politics-related memes on both mainstream and fringe Web communities, supporting media reports that memes might be used to enhance or harm politicians. Finally, we use Hawkes processes to model the interplay between Web communities and quantify their reciprocal influence, finding that /pol/ substantially influences the meme ecosystem with the number of memes it produces, while \td has a higher success rate in pushing them to other communities.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. The Ethics of Generative AI in Anonymous Spaces: A Case Study of 4chan's /pol/ Board

    cs.CY 2025-06 conditional novelty 3.0 of 10

    A case study of 66 AI-generated images from 4chan's /pol/ board finds 28.8% contain racist content and 28.8% anti-Semitic content, but the sample is small and likely skewed.

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