"We're not all construction workers": Algorithmic Compression of Latinidad on TikTok
Nina Lutz, Cecilia R. Aragon
摘要
The Latinx diaspora in the United States is a rapidly growing and complex demographic who face intersectional harms and marginalizations in sociotechnical systems and are currently underserved in CSCW research. While the field understands that algorithms and digital content are experienced differently by marginalized populations, more investigation is needed about how Latinx people experience social media and, in particular, visual media. In this paper, we focus on how Latinx people experience the algorithmic system of the video-sharing platform TikTok. Through a bilingual interview and visual elicitation study of 19 Latinx TikTok users and 59 survey participants, we explore how Latinx individuals experience TikTok and its Latinx content. We find Latinx TikTok users actively use platform affordances to create positive and affirming identity content feeds, but these feeds are interrupted by negative content (i.e. violence, stereotypes, linguistic assumptions) due to platform affordances that have unique consequences for Latinx diaspora users. We discuss these implications on Latinx identity and representation, introduce the concept of algorithmic identity compression, where sociotechncial systems simplify, flatten, and conflate intersection identities, resulting in compression via the loss of critical cultural data deemed unnecessary by these systems and designers of them. This study explores how Latinx individuals are particularly vulnerable to this in sociotechnical systems, such as, but not limited to, TikTok.
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引用它的顶会 Paper3
- With Visual Integrity and Care: A Framework for Mixed Methods Research on Visual Social DataNina Lutz, Joseph S. Schafer, Priya Dhawka, Phil Tinn 等CHI 2026 · 被引用 2 次
- "I Was Told to Come Back and Share This": Social Media-Based Near-Death Experience Disclosures as Expressions of Spiritual BeliefsYifan Zhao, Yuxin Fang, Yihuan Chen, Ray LCCHI 2026 · 被引用 1 次
- Iterative Netnography and Occurrence for Rapid Research: A Case Study of TikTokNina Lutz, Kiera Hannuksela, Ethan Hynes, Celestine Le 等CSCW 2026
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- For You, or For"You"?: Everyday LGBTQ+ Encounters with TikTokEllen Simpson, Bryan C. SemaanCSCW 2020 · 被引用 228 次
- How We've Taught Algorithms to See Identity: Constructing Race and Gender in Image Databases for Facial AnalysisMorgan Klaus Scheuerman, Kandrea Wade, Caitlin Lustig, Jed R. BrubakerCSCW 2020 · 被引用 198 次
- How Transfeminine TikTok Creators Navigate the Algorithmic Trap of Visibility Via Folk TheorizationMichael Ann DeVitoCSCW 2022 · 被引用 125 次
- "I See Me Here": Mental Health Content, Community, and Algorithmic Curation on TikTokAshlee Milton, Leah Ajmani, Michael Ann DeVito, Stevie ChancellorCHI 2023 · 被引用 115 次
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