Greedy‐based user selection for federated graph neural networks with limited communication resources
Hancong Huangfu,
Zizhen Zhang
Abstract:Recently, graph neural networks (GNNs) have attracted much attention in the field of machine learning due to their remarkable success in learning from graph‐structured data. However, implementing GNNs in practice faces a critical bottleneck from the high complexity of communication and computation, which arises from the frequent exchange of graphic data during model training, especially in limited communication scenarios. To address this issue, we propose a novel framework of federated graph neural networks, w… Show more
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