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FAIRPLAI: A Human-in-the-Loop Approach to Fair and Private Machine Learning

arXiv:2511.08702v1 Announce Type: new Abstract: As machine learning systems move from theory to practice, they are increasingly tasked with decisions that affect healthcare access, financial opportunities, hiring, and public services. In these contexts, accuracy is only one piece of the…

Benevolent Dictators? On LLM Agent Behavior in Dictator Games

arXiv:2511.08721v1 Announce Type: new Abstract: In behavioral sciences, experiments such as the ultimatum game are conducted to assess preferences for fairness or self-interest of study participants. In the dictator game, a simplified version of the ultimatum game where only one…

Simulating Non-Markovian Open Quantum Dynamics with Neural Quantum States

arXiv:2404.11093v3 Announce Type: replace-cross Abstract: Reducing computational scaling for simulating non-Markovian dissipative dynamics using artificial neural networks is both a major focus and formidable challenge in open quantum systems. To enable neural quantum states (NQSs), we encode environmental memory in…

TAMIS: Tailored Membership Inference Attacks on Synthetic Data

arXiv:2504.00758v2 Announce Type: replace Abstract: Membership Inference Attacks (MIA) enable to empirically assess the privacy of a machine learning algorithm. In this paper, we propose TAMIS, a novel MIA against differentially-private synthetic data generation methods that rely on graphical models.…