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Samuel Deng

5 accepted papers

2021

A Separation Result Between Data-oblivious and Data-aware Poisoning Attacks

NeurIPS 2021poster

Poisoning attacks have emerged as a significant security threat to machine learning algorithms. It has been demonstrated that adversaries who make small changes to the training set, such as adding specially crafted data points, can hurt the performance of the output model. Most of these attacks requ…

Cited by 3SourcePDFScholar
2020

Ensuring Fairness Beyond the Training Data

NeurIPS 2020poster

We initiate the study of fair classifiers that are robust to perturbations in the training distribution. Despite recent progress, the literature on fairness has largely ignored the design of fair and robust classifiers. In this work, we develop classifiers that are fair not only with respect to the…