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This book first presents a tutorial on Federated Learning (FL) and
its role in enabling Edge Intelligence over wireless edge networks.
This provides readers with a concise introduction to the challenges
and state-of-the-art approaches towards implementing FL over the
wireless edge network. Then, in consideration of resource
heterogeneity at the network edge, the authors provide multifaceted
solutions at the intersection of network economics, game theory,
and machine learning towards improving the efficiency of resource
allocation for FL over the wireless edge networks. A clear
understanding of such issues and the presented theoretical studies
will serve to guide practitioners and researchers in implementing
resource-efficient FL systems and solving the open issues in FL
respectively.
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