Nidham
Gazagnadou

Publications

FedP3: Federated Personalized and Privacy-friendly Network Pruning under Model Heterogeneity

ICLR, 2024
Kai Yi, Nidham Gazagnadou, Peter Richtárik*, Lingjuan Lyu

The interest in federated learning has surged in recent research due to its unique ability to train a global model using privacy-secured information held locally on each client. This paper pays particular attention to the issue of client-side model heterogeneity, a pervasive…

Privacy Assessment on Reconstructed Images: Are Existing Evaluation Metrics Faithful to Human Perception?

NeurIPS, 2023
Xiaoxiao Sun*, Nidham Gazagnadou, Vivek Sharma, Lingjuan Lyu, Hongdong Li*, Liang Zheng*

Hand-crafted image quality metrics, such as PSNR and SSIM, are commonly used to evaluate model privacy risk under reconstruction attacks. Under these metrics, reconstructed images that are determined to resemble the original one generally indicate more privacy leakage. Image…

Blog

December 13, 2023 | Events

Sony AI Reveals New Research Contributions at NeurIPS 2023

Sony Group Corporation and Sony AI have been active participants in the annual NeurIPS Conference for years, contributing pivotal research that has helped to propel the fields of artificial intelligence and machine learning forwar…

Sony Group Corporation and Sony AI have been active participants in the annual NeurIPS Conference for years, contributing pivotal …

August 7, 2023 | Machine Learning

Privacy-Preserving Machine Learning Blog Series: Practicing Privacy by Design

Privacy-Preserving Machine Learning Blog SeriesAt Sony AI, the Privacy-Preserving Machine Learning (PPML) team focuses on fundamental and applied research in computer vision privacy. Their innovative research aims to apply these n…

Privacy-Preserving Machine Learning Blog SeriesAt Sony AI, the Privacy-Preserving Machine Learning (PPML) team focuses on fundamen…

July 13, 2023 | Life at Sony AI

Meet the Team #8: Weiming Zhuang, Nidham Gazagnadou, Chen Chen

At Sony AI, the Privacy-Preserving Machine Learning (PPML) team focuses on fundamental and applied research in computer vision privacy. Their innovative research aims to apply these novel ideas to real-world AI applications. In th…

At Sony AI, the Privacy-Preserving Machine Learning (PPML) team focuses on fundamental and applied research in computer vision pri…

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