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PrivacyFL: A simulator for privacy-preserving and secure federated
  learning

PrivacyFL: A simulator for privacy-preserving and secure federated learning

19 February 2020
Vaikkunth Mugunthan
Anton Peraire-Bueno
Lalana Kagal
    FedML
ArXivPDFHTML

Papers citing "PrivacyFL: A simulator for privacy-preserving and secure federated learning"

6 / 6 papers shown
Title
Evaluating the Potential of Federated Learning for Maize Leaf Disease
  Prediction
Evaluating the Potential of Federated Learning for Maize Leaf Disease Prediction
Thalita Mendonça Antico
Larissa F. Rodrigues Moreira
Rodrigo Moreira
103
24
0
10 Dec 2024
Vertical Federated Learning: Taxonomies, Threats, and Prospects
Vertical Federated Learning: Taxonomies, Threats, and Prospects
Qun Li
Chandra Thapa
Lawrence Ong
Yifeng Zheng
Hua Ma
S. Çamtepe
Anmin Fu
Yan Gao
FedML
41
10
0
03 Feb 2023
Federated Learning for Medical Applications: A Taxonomy, Current Trends,
  Challenges, and Future Research Directions
Federated Learning for Medical Applications: A Taxonomy, Current Trends, Challenges, and Future Research Directions
A. Rauniyar
D. Hagos
Debesh Jha
J. E. Haakegaard
Ulas Bagci
D. Rawat
Vladimir Vlassov
OOD
41
91
0
05 Aug 2022
MUD-PQFed: Towards Malicious User Detection in Privacy-Preserving
  Quantized Federated Learning
MUD-PQFed: Towards Malicious User Detection in Privacy-Preserving Quantized Federated Learning
Hua Ma
Qun Li
Yifeng Zheng
Zhi Zhang
Xiaoning Liu
Yan Gao
S. Al-Sarawi
Derek Abbott
FedML
26
3
0
19 Jul 2022
Protea: Client Profiling within Federated Systems using Flower
Protea: Client Profiling within Federated Systems using Flower
Wanru Zhao
Xinchi Qiu
Javier Fernandez-Marques
Pedro Porto Buarque de Gusmão
Nicholas D. Lane
27
6
0
03 Jul 2022
SecFL: Confidential Federated Learning using TEEs
SecFL: Confidential Federated Learning using TEEs
D. Quoc
Christof Fetzer
FedML
16
16
0
03 Oct 2021
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