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Fan Qi

4 accepted papers

2025

Rethinking the Temperature for Federated Heterogeneous Distillation

ICML 2025poster

Federated Distillation (FedKD) relies on lightweight knowledge carriers like logits for efficient client-server communication. Although logit-based methods have demonstrated promise in addressing statistical and architectural heterogeneity in federated learning (FL), current approaches remain const…

Cited by 0SourcePDFScholar
2024

Enhancing Storage and Computational Efficiency in Federated Multimodal Learning for Large-Scale Models

ICML 2024poster

The remarkable generalization of large-scale models has recently gained significant attention in multimodal research. However, deploying heterogeneous large-scale models with different modalities under Federated Learning (FL) to protect data privacy imposes tremendous challenges on clients' limited…