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FedDiff: Diffusion Model Driven Federated Learning for Multi-Modal and
  Multi-Clients

FedDiff: Diffusion Model Driven Federated Learning for Multi-Modal and Multi-Clients

16 November 2023
Daixun Li
Weiying Xie
Zixuan Wang
YiBing Lu
Yunsong Li
Leyuan Fang
    FedML
    DiffM
ArXivPDFHTML

Papers citing "FedDiff: Diffusion Model Driven Federated Learning for Multi-Modal and Multi-Clients"

4 / 4 papers shown
Title
Enhancing Sample Efficiency and Exploration in Reinforcement Learning through the Integration of Diffusion Models and Proximal Policy Optimization
Enhancing Sample Efficiency and Exploration in Reinforcement Learning through the Integration of Diffusion Models and Proximal Policy Optimization
Gao Tianci
Dmitriev D. Dmitry
Konstantin A. Neusypin
Yang Bo
Rao Shengren
OffRL
13
1
0
02 Sep 2024
Label-Efficient Semantic Segmentation with Diffusion Models
Label-Efficient Semantic Segmentation with Diffusion Models
Dmitry Baranchuk
Ivan Rubachev
A. Voynov
Valentin Khrulkov
Artem Babenko
DiffM
VLM
187
388
0
06 Dec 2021
Federated Learning on Non-IID Data Silos: An Experimental Study
Federated Learning on Non-IID Data Silos: An Experimental Study
Q. Li
Yiqun Diao
Quan Chen
Bingsheng He
FedML
OOD
82
712
0
03 Feb 2021
Source Data-absent Unsupervised Domain Adaptation through Hypothesis
  Transfer and Labeling Transfer
Source Data-absent Unsupervised Domain Adaptation through Hypothesis Transfer and Labeling Transfer
Jian Liang
Dapeng Hu
Yunbo Wang
R. He
Jiashi Feng
128
249
0
14 Dec 2020
1