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To assess current practices, we conducted a scoping review of crowdsourced eye-tracking from 2011\u20132025. The review confirms fragmented reporting and a lack of established quality benchmarks. To address this lack of predictive insight, we conducted a case study on AI fairness interviews (\n                    <jats:italic toggle=\"yes\">N<\/jats:italic>\n                    = 205) using the RealEye platform. Applying Ordered Logistic Regression (OLR) to the platform\u2019s quality metric, we found that behavioral and technical factors significantly predict data quality. Specifically, within the RealEye platform, higher fixation counts, shorter sessions, and operating system choice yield significantly higher quality grades. Based on this review and platform-specific predictive insights, we provide actionable recommendations to enhance the reliability, transparency, and replicability of future crowdsourced webcam eye tracking in HCI and behavioral science.\n                  <\/jats:p>","DOI":"10.1145\/3806017","type":"journal-article","created":{"date-parts":[[2026,5,28]],"date-time":"2026-05-28T12:44:33Z","timestamp":1779972273000},"page":"1-19","update-policy":"https:\/\/doi.org\/10.1145\/crossmark-policy","source":"Crossref","is-referenced-by-count":1,"title":["What Shapes Participant Data Quality? 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