The Dual² approach produces iD2A and MiD2A gradient methods that achieve asymptotic convergence under milder conditions on the public function and linear rates with reduced communication and computation complexity.
Chebyshev acceleration of iterative refinement,
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Accelerated Decentralized Constraint-Coupled Optimization: A Dual$^2$ Approach
The Dual² approach produces iD2A and MiD2A gradient methods that achieve asymptotic convergence under milder conditions on the public function and linear rates with reduced communication and computation complexity.