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Distributed Optimization

The goal of Distributed Optimization is to optimize a certain objective defined over millions of billions of data that is distributed over many machines by utilizing the computational power of these machines.

Source: Analysis of Distributed StochasticDual Coordinate Ascent

Papers

Showing 7180 of 536 papers

TitleStatusHype
Towards privacy-preserving cooperative control via encrypted distributed optimization0
Information-Geometric Barycenters for Bayesian Federated Learning0
Deep Distributed Optimization for Large-Scale Quadratic Programming0
Fractional Order Distributed Optimization0
Review of Mathematical Optimization in Federated Learning0
Problem-dependent convergence bounds for randomized linear gradient compression0
Logarithmically Quantized Distributed Optimization over Dynamic Multi-Agent Networks0
Tighter Performance Theory of FedExProx0
Byzantine-Resilient Output Optimization of Multiagent via Self-Triggered Hybrid Detection Approach0
FedECADO: A Dynamical System Model of Federated Learning0
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