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jyhong836/README.md

Hi there, I'm Junyuan Hong πŸ‘‹

I am a researcher on Machine Learning. My research centers around Privacy-Centric Trustworthy Machine Learning. My vision is to enhance trustworthiness (regarding fairness, robustness and security) under the privacy constraint, e.g., federated learning and differentially-private learning. My research highlights:

See my homepage and CV for more information.


Junyuan's github stats Top Langs

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  1. llm-dp-finetune llm-dp-finetune Public

    End-to-end codebase for finetuning LLMs (LLaMA 2, 3, etc.) with or without DP

    Python 6 2

  2. VITA-Group/DP-OPT VITA-Group/DP-OPT Public

    [ICLR'24 Spotlight] DP-OPT: Make Large Language Model Your Privacy-Preserving Prompt Engineer

    Python 32 9

  3. illidanlab/SplitMix illidanlab/SplitMix Public

    [ICLR2022] Efficient Split-Mix federated learning for in-situ model customization during both training and testing time

    Python 40 9

  4. illidanlab/FedRBN illidanlab/FedRBN Public

    [AAAI'23] Federated Robustness Propagation: Sharing Robustness in Heterogeneous Federated Learning

    Python 26 2

  5. illidanlab/FADE illidanlab/FADE Public

    [KDD2021] Federated Adversarial Debiasing for Fair and Transferable Representations: Optimize an adversarial domain-adaptation objective without adversarial or source data.

    Python 26 2

  6. illidanlab/inversion-influence-function illidanlab/inversion-influence-function Public

    Official codes for "Understanding Deep Gradient Leakage via Inversion Influence Functions", NeurIPS 2023

    Python 15