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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 381390 of 536 papers

TitleStatusHype
Achieving Linear Speedup with ProxSkip in Distributed Stochastic Optimization0
Rate Analysis of Coupled Distributed Stochastic Approximation for Misspecified Optimization0
Real-Time Distributed Model Predictive Control with Limited Communication Data Rates0
Recurrent Averaging Inequalities in Multi-Agent Control and Social Dynamics Modeling0
Reducing the Communication of Distributed Model Predictive Control: Autoencoders and Formation Control0
Redundancy Techniques for Straggler Mitigation in Distributed Optimization and Learning0
Graph neural networks-based Scheduler for Production planning problems using Reinforcement Learning0
Residual-Evasive Attacks on ADMM in Distributed Optimization0
Review of Mathematical Optimization in Federated Learning0
Revisiting EXTRA for Smooth Distributed Optimization0
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