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Algorithm-Assisted Decision Making and Racial Disparities in Housing: A Study of the Allegheny Housing Assessment Tool

aut.relation.endpage292
aut.relation.startpage281
aut.relation.volume7
dc.contributor.authorCheng, Lingwei
dc.contributor.authorDrayton, Cameron
dc.contributor.authorChouldechova, Alexandra
dc.contributor.authorVaithianathan, Rhema
dc.date.accessioned2026-09-07T01:35:45Z
dc.date.issued2024-10-16
dc.description.abstractThe demand for housing assistance across the United States far exceeds the supply, leaving housing providers the task of prioritizing clients for receipt of this limited resource. To be eligible for federal funding, local homelessness systems are required to implement assessment tools as part of their prioritization processes. The Vulnerability Index Service Prioritization Decision Assistance Tool (VI-SPDAT) is the most commonly used assessment tool nationwide. Recent studies have criticized the VI-SPDAT as exhibiting racial bias, which may lead to unwarranted racial disparities in housing provision. In response to these criticisms, some jurisdictions have developed alternative tools, such as the Allegheny Housing Assessment (AHA), which uses algorithms to assess clients' risk levels. Drawing on data from its deployment, we conduct descriptive and quantitative analyses to evaluate whether replacing the VI-SPDAT with the AHA affects racial disparities in housing allocation. We find that the VI-SPDAT tended to assign higher risk scores to white clients and lower risk scores to Black clients, and that white clients were served at a higher rates pre-AHA deployment. While post-deployment service decisions became better aligned with the AHA score, and the distribution of AHA scores is similar across racial groups, we do not find evidence of a corresponding decrease in disparities in service rates. We attribute the persistent disparity to the use of Alt-AHA, a survey-based tool that is used in cases of low data quality, as well as group differences in eligibility-related factors, such as chronic homelessness and veteran status. We discuss the implications for housing service systems seeking to reduce racial disparities in their service delivery.
dc.identifier.citationProceedings of the AAAI ACM Conference on AI, Ethics, and Society (AIES-24), 7(1), 281–292.
dc.identifier.doi10.1609/aies.v7i1.31636
dc.identifier.issn3065-8365
dc.identifier.issn3065-8365
dc.identifier.urihttp://hdl.handle.net/10292/21906
dc.publisherAssociation for the Advancement of Artificial Intelligence (AAAI)
dc.relation.urihttps://ojs.aaai.org/index.php/AIES/article/view/31636
dc.rightsThis is the Author's Accepted Manuscript of a conference paper published in the Proceedings of the AAAI ACM Conference on AI, Ethics, and Society (AIES-24) by The AAAI Press, Washington, DC, USA Copyright © 2024, Association for the Advancement of Artificial Intelligence. All Rights Reserved. The final, published version is available (free access) at (see Publisher's version).
dc.rights.accessrightsOpenAccess
dc.subject4406 Human Geography
dc.subject44 Human Society
dc.subjectBasic Behavioral and Social Science
dc.subjectHealth Services
dc.subjectBehavioral and Social Science
dc.subjectHealth Disparities
dc.subjectClinical Research
dc.subjectSocial Determinants of Health
dc.titleAlgorithm-Assisted Decision Making and Racial Disparities in Housing: A Study of the Allegheny Housing Assessment Tool
dc.typeConference Contribution
pubs.elements-id580831

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