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Parinaz Naghizadeh

4 accepted papers

2026

Robust Strategic Classification under Decision-Dependent Cost Uncertainty

ICML 2026poster

Humans facing algorithmic decision systems have been found to ``game'' them by altering their input data (at a cost to them) in order to favorably change the algorithmic outcomes they receive (at a cost to the algorithm). The growing literature on strategic classification seeks to develop robust mac…

Cited by 0SourceScholar
2023

Social Bias Meets Data Bias: The Impacts of Labeling and Measurement Errors on Fairness Criteria

AAAI 2023technical

Although many fairness criteria have been proposed to ensure that machine learning algorithms do not exhibit or amplify our existing social biases, these algorithms are trained on datasets that can themselves be statistically biased. In this paper, we investigate the robustness of existing (demograp…

2022

Fairness Interventions as (Dis)Incentives for Strategic Manipulation

ICML 2022spotlight

Although machine learning (ML) algorithms are widely used to make decisions about individuals in various domains, concerns have arisen that (1) these algorithms are vulnerable to strategic manipulation and "gaming the algorithm"; and (2) ML decisions may exhibit bias against certain social groups. E…

Cited by 26SourcePDFScholar