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Depression Symptoms and Relational Patterns in 187k ChatGPT Histories
July 06, 2026 ยท Grace Period ยท ๐ CSCW Companion '26: Companion Publication of the 2026 Conference on Computer-Supported Cooperative Work and Social Computing
Authors
Neil K. R. Sehgal, Dunigan Folk, Lyle Ungar, Sharath Chandra Guntuku
arXiv ID
2607.05685
Category
cs.HC: Human-Computer Interaction
Cross-listed
cs.AI
Citations
0
Venue
CSCW Companion '26: Companion Publication of the 2026 Conference on Computer-Supported Cooperative Work and Social Computing
Abstract
Large language models are increasingly used as private, always-available conversational systems, but little is known about how people with depressive symptoms use them. Building on CSCW work on disclosure and peer support, we examine ChatGPT as an emerging informal support infrastructure: private, persistent, responsive, and available outside ordinary hours. We analyze 187,093 ChatGPT conversations from 766 participants who completed the PHQ-8, comparing those below the moderate-symptom threshold (score of 10) with those at or above it. Higher-PHQ participants used ChatGPT more for mental-health, interpersonal, loneliness, self-focused, and support-seeking conversations, with pronounced late-night and recurring month-level patterns. Their language contained more first-person singular pronouns and absolutist terms. They more often engaged ChatGPT in high-disclosure contexts, but professional redirection was not higher. Language-based prediction was modest and insufficient for screening (AUROC 0.591). We argue these histories should not be treated as clinical screening data but as evidence LLMs are increasingly used as informal support infrastructure.
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