<b>Research Note</b>—Discriminant Analysis with Strategically Manipulated Data
Juheng Zhang, Haldun Aytuğ, Gary J. Kœhler
Information Systems Research
- 주제온라인 학습 및 최적화 · 의사결정분석
We study the problem where a decision maker uses a linear classifier over attribute values (e.g., age, income, etc.) to classify agents into classes (e.g., creditworthy or not). Sometimes the attribute values are altered and/or hidden by agents to obtain a favorable but undeserved classification. Our main goal is to develop methods to thwart agents from hiding or distorting attribute values to obtain a favorable but incorrect classification. Intentionally altered attributes to obtain strategic goals have been studied. In this paper we develop methods that handle strategic hiding (i.e., nondisclosure) and then merge them with methods to thwart strategic distortion in the context of classification.
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- 저널Information Systems Research · 25(3) · 654–662
- 토픽Corruption and Economic Development · Sociology and Political Science
- DOI10.1287/isre.2014.0526
- 저자Juheng Zhang, Haldun Aytuğ, Gary J. Kœhler