Detecting Effects of AI-Mediated Communication on Language Complexity and Sentiment
April 28, 2025 ยท Declared Dead ยท ๐ The Web Conference
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Authors
Kristen Sussman, Daniel Carter
arXiv ID
2504.19556
Category
cs.CL: Computation & Language
Cross-listed
cs.HC
Citations
0
Venue
The Web Conference
Last Checked
4 months ago
Abstract
Given the subtle human-like effects of large language models on linguistic patterns, this study examines shifts in language over time to detect the impact of AI-mediated communication (AI- MC) on social media. We compare a replicated dataset of 970,919 tweets from 2020 (pre-ChatGPT) with 20,000 tweets from the same period in 2024, all of which mention Donald Trump during election periods. Using a combination of Flesch-Kincaid readability and polarity scores, we analyze changes in text complexity and sentiment. Our findings reveal a significant increase in mean sentiment polarity (0.12 vs. 0.04) and a shift from predominantly neutral content (54.8% in 2020 to 39.8% in 2024) to more positive expressions (28.6% to 45.9%). These findings suggest not only an increasing presence of AI in social media communication but also its impact on language and emotional expression patterns.
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