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Fengyu Gao

4 accepted papers

2025

Data-adaptive Differentially Private Prompt Synthesis for In-Context Learning

ICLR 2025poster

Large Language Models (LLMs) rely on the contextual information embedded in examples/demonstrations to perform in-context learning (ICL). To mitigate the risk of LLMs potentially leaking private information contained in examples in the prompt, we introduce a novel data-adaptive differentially privat…

Cited by 1SourcePDFScholar
2024

Federated Online Prediction from Experts with Differential Privacy: Separations and Regret Speed-ups

NeurIPS 2024poster

We study the problems of differentially private federated online prediction from experts against both *stochastic adversaries* and *oblivious adversaries*. We aim to minimize the average regret on $m$ clients working in parallel over time horizon $T$ with explicit differential privacy (DP) guarantee…

Cited by 0SourcePDFScholar
2024

Federated Q-Learning: Linear Regret Speedup with Low Communication Cost

ICLR 2024poster

In this paper, we consider federated reinforcement learning for tabular episodic Markov Decision Processes (MDP) where, under the coordination of a central server, multiple agents collaboratively explore the environment and learn an optimal policy without sharing their raw data. While linear speedu…

Cited by 14SourcePDFScholar