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Please use this identifier to cite or link to this item: http://arks.princeton.edu/ark:/88435/dsp01g445ch009
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dc.contributor.advisorRacz, Miklos-
dc.contributor.authorLaufer, Benjamin-
dc.date.accessioned2019-09-12T15:32:23Z-
dc.date.available2019-09-12T15:32:23Z-
dc.date.created2019-04-17-
dc.date.issued2019-09-12-
dc.identifier.urihttp://arks.princeton.edu/ark:/88435/dsp01g445ch009-
dc.description.abstractRisk-assessment algorithms in criminal justice put people’s lives at the discretion of a simple statistical tool. This thesis explores the ways in which algorithmic decision-making in criminal policy can exhibit feedback effects, where disadvantage accumulates among those deemed ‘high risk’ by the state. Evidence from Philadelphia suggests that risk – and, by extension, criminality – is not fundamental or in any way exogenous to political decision-making. Using court docket summaries from Philadelphia, we find evidence of a criminogenic effect of incarceration, even controlling for existing determinants of ‘criminal risk’. Evaluating Philadelphia’s newly proposed sentencing tool, we suggest that algorithmic sentencing may codify and entrench existing injustice. A close look at the geographical and demographic properties of risk calls into question the use of any type of prediction in criminal policy. Finally, using probabilistic models, we explore the theoretical implications of repeated algorithmic decision-making.en_US
dc.language.isoenen_US
dc.titleCompounding Injustice: History and Prediction in Carceral Decision-Makingen_US
dc.typePrinceton University Senior Theses-
pu.date.classyear2019en_US
pu.departmentOperations Research and Financial Engineering*
pu.contributor.authorid961167197-
pu.certificateUrban Studies Programen_US
Appears in Collections:Operations Research and Financial Engineering, 2000-2020

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