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  • title: Communication-Efficient Federated Hypergradient Computation via Aggregated Iterative Differentiation
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            Communication-Efficient Federated Hypergradient Computation via Aggregated Iterative Differentiation
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            Communication-Efficient Federated Hypergradient Computation via Aggregated Iterative Differentiation

            Jul 24, 2023

            Sprecher:innen

            PX

            Peiyao Xiao

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            KJ

            Kaiyi Ji

            Sprecher:in · 0 Follower:innen

            Über

            Federated bilevel optimization has attracted increasing attention due to emerging machine learning and communication applications. The biggest challenge lies in computing the gradient of the upper-level objective function (i.e., hypergradient) in the federated setting due to the nonlinear and distributed construction of a series of global Hessian matrices. In this paper, we propose a novel communication-efficient federated hypergradient estimator via aggregated iterative differentiation (AggITD)…

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            ICML 2023

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