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Blind Federated Learning without initial model

delete2024-04-23
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OA
AI
J
José L. Salmerón
I
Irina Arévalo *
DOI:10.1186/s40537-024-00911-ydelete
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摘要

摘要

En 中文
Federated learning is an emerging machine learning approach that allows the construction of a model between several participants who hold their own private data. This method is secure and privacy-preserving, suitable for training a machine learning model using sensitive data from different sources, such as hospitals. In this paper, the authors propose two innovative methodologies for Particle Swarm Optimisation-based federated learning of Fuzzy Cognitive Maps in a privacy-preserving way. In addition, one relevant contribution this research includes is the lack of an initial model in the federated learning process, making it effectively blind. This proposal is tested with several open datasets, improving both accuracy and precision.
Keyword:
Federated learning
Privacy-preserving machine learning
Fuzzy Cognitive Maps

期刊

Journal of Big Data 封面图
Journal of Big Data
IF:
6.4
论文数:
1.5K
被引数:
1.1W

机构

CUNEF Universidad 封面图
CUNEF Universidad
学者数:
186
论文数: 221
被引数: 133
引用论文

引用论文

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