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Classification algorithms and social outcomes

Bibliographic Data

ID11065037
AuthorsElizabeth Maggie Penn (0000-0002-2018-4367, Departments of Political Science and Data & Decision Sciences Emory University Atlanta Georgia USA), John W Patty (0000-0002-1142-9334, Departments of Political Science and Data & Decision Sciences Emory University Atlanta Georgia USA)
Year2025
Publication date2025-09-16
Peer ReviewedYes
Open AccessYes
TypeARTICLE
VenueAmerican Journal of Political Science (JOURNAL)
Journal identifiersISSN: 0092-5853 • E-ISSN: 1540-5907
PublisherWiley (PUBLISHER • GB)
DOI10.1111/ajps.70005
OpenAlexW4414302845
LanguageEN
Citations received1
References cited37

Classification algorithms are increasingly important in areas such as obtaining credit, employment, health care, housing, law enforcement, and national security. These classification decisions affect people's lives and, accordingly, can shape their behaviors. We present a formal model of optimal classification by an algorithm designer who may want to affect the distribution of behavior in a population. Our model allows the designer to have a wide array of objectives (such as maximizing compliance or maximizing accuracy, among many others), and these objectives shape equilibrium behavioral outcomes in the population, sometimes in surprising ways. Our results also speak to questions of algorithmic fairness in settings where behavior and algorithms are interdependent, and where measures of fairness focusing on statistical parity across groups may not be appropriate

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Unique citing works1
Citations per year1
Citation span2026 - 2026 (1)
Citation velocitycurrent
Highly citedNo

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