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Physical Sciences → Computer Science → Artificial Intelligence

Stochastic Gradient Optimization Techniques

This cluster of papers focuses on the application of optimization methods in machine learning, particularly in the context of stochastic gradient descent, random projections, deep learning, convex optimization, matrix decompositions, and large-scale optimization. The papers explore various algorithms and techniques for improving the efficiency and effectiveness of machine learning models, with a specific emphasis on neural networks and generalization.

28.6K works worldwide356.1K citations
Stochastic Gradient DescentRandom ProjectionsDeep LearningConvex OptimizationMatrix DecompositionsApproximation AlgorithmsLarge-Scale OptimizationNeural NetworksCoordinate DescentGeneralization

Journals publishing in this area