Problematic Machine Behavior: A Systematic Literature Review of Algorithm Audits
Jack Bandy
摘要
While algorithm audits are growing rapidly in commonality and public importance, relatively little scholarly work has gone toward synthesizing prior work and strategizing future research in the area. This systematic literature review aims to do just that, following PRISMA guidelines in a review of over 500 English articles that yielded 62 algorithm audit studies. The studies are synthesized and organized primarily by behavior (discrimination, distortion, exploitation, and misjudgement), with codes also provided for domain (e.g. search, vision, advertising, etc.), organization (e.g. Google, Facebook, Amazon, etc.), and audit method (e.g. sock puppet, direct scrape, crowdsourcing, etc.). The review shows how previous audit studies have exposed public-facing algorithms exhibiting problematic behavior, such as search algorithms culpable of distortion and advertising algorithms culpable of discrimination. Based on the studies reviewed, it also suggests some behaviors (e.g. discrimination on the basis of intersectional identities), domains (e.g. advertising algorithms), methods (e.g. code auditing), and organizations (e.g. Twitter, TikTok, LinkedIn) that call for future audit attention. The paper concludes by offering the common ingredients of successful audits, and discussing algorithm auditing in the context of broader research working toward algorithmic justice.
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引用它的顶会 Paper25
- An Empirical Investigation of Personalization Factors on TikTokMaximilian Boeker, Aleksandra UrmanWWW 2022 · 被引用 112 次
- End-User Audits: A System Empowering Communities to Lead Large-Scale Investigations of Harmful Algorithmic BehaviorMichelle S. Lam, Mitchell L. Gordon, Danaë Metaxa, Jeffrey T. Hancock 等CSCW 2022 · 被引用 77 次
- Towards AI Accountability Infrastructure: Gaps and Opportunities in AI Audit ToolingVictor Ojewale, Ryan Steed, Briana Vecchione, Abeba Birhane 等CHI 2025 · 被引用 46 次
- Sociotechnical Audits: Broadening the Algorithm Auditing Lens to Investigate Targeted AdvertisingMichelle S. Lam, Ayush Pandit, Colin H. Kalicki, Rachit Gupta 等CSCW 2023 · 被引用 40 次
- Lost in Moderation: How Commercial Content Moderation APIs Over- and Under-Moderate Group-Targeted Hate Speech and Linguistic VariationsDavid Hartmann, Amin Oueslati, Dimitri Staufer, Lena Pohlmann 等CHI 2025 · 被引用 37 次
它引用的顶会 Paper7
- Critical Race Theory for HCIIhudiya Finda Ogbonnaya-Ogburu, Angela D. R. Smith, Alexandra To, Kentaro ToyamaCHI 2020 · 被引用 397 次
- Measuring Misinformation in Video Search Platforms: An Audit Study on YouTubeEslam Hussein, Prerna Juneja, Tanushree MitraCSCW 2020 · 被引用 233 次
- Face Flashing: a Secure Liveness Detection Protocol based on Light ReflectionsDi Tang, Zhe Zhou, Yinqian Zhang, Kehuan ZhangNDSS 2018 · 被引用 78 次
- Facebook Ads Monitor: An Independent Auditing System for Political Ads on FacebookMárcio Silva, Lucas Santos de Oliveira, Athanasios Andreou, Pedro Olmo Stancioli Vaz de Melo 等WWW 2020 · 被引用 71 次
- Unveiling and Quantifying Facebook Exploitation of Sensitive Personal Data for Advertising PurposesJosé González Cabañas, Ángel Cuevas, Rubén CuevasUSENIX Security 2018 · 被引用 54 次
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