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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 301310 of 536 papers

TitleStatusHype
Learning Autonomy in Management of Wireless Random Networks0
Distributed Model Predictive Control Design for Multi-agent Systems via Bayesian Optimization0
Learning (With) Distributed Optimization0
Leveraging Function Space Aggregation for Federated Learning at Scale0
Limited Communications Distributed Optimization via Deep Unfolded Distributed ADMM0
Linear Convergence of Distributed Mirror Descent with Integral Feedback for Strongly Convex Problems0
On Linear Convergence of PI Consensus Algorithm under the Restricted Secant Inequality0
Linear Convergent Decentralized Optimization with Compression0
Linear Speedup of Incremental Aggregated Gradient Methods on Streaming Data0
Local Methods with Adaptivity via Scaling0
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