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FairFare: A Tool for Crowdsourcing Rideshare Data to Empower Labor Organizers

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arxiv 2502.11273 v2 pith:GVEKQ3CO submitted 2025-02-16 cs.HC cs.AIcs.CY

classification cs.HCcs.AIcs.CY
keywords datafairfarerideshareorganizerstransparencybillcollaboratedlabor
verification ladder T0 review T1 audit T2 compute T3 formal
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Rideshare workers experience unpredictable working conditions due to gig work platforms' reliance on opaque AI and algorithmic systems. In response to these challenges, we found that labor organizers want data to help them advocate for legislation to increase the transparency and accountability of these platforms. To address this need, we collaborated with a Colorado-based rideshare union to develop FairFare, a tool that crowdsources and analyzes workers' data to estimate the take rate -- the percentage of the rider price retained by the rideshare platform. We deployed FairFare with our partner organization that collaborated with us in collecting data on 76,000+ trips from 45 drivers over 18 months. During evaluation interviews, organizers reported that FairFare helped influence the bill language and passage of Colorado Senate Bill 24-75, calling for greater transparency and data disclosure of platform operations, and create a national narrative. Finally, we reflect on complexities of translating quantitative data into policy outcomes, nature of community based audits, and design implications for future transparency tools.

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Cited by 2 Pith papers

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  2. Aggregated Individual Reporting for Post-Deployment Evaluation

    cs.CY 2025-06 conditional novelty 6.0 of 10

    The authors formalize a mechanism for collecting and aggregating public reports about deployed AI systems, aiming to surface unknown harms and enable accountability.

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