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Oznake: computer science;machine learning
The Alternating Direction Method of Multipliers (ADMM) has been studied for years. Traditional ADMM algorithms need to compute, at each iteration, an (empirical) expected loss function on all training examples, resulting in a computational complexity proportional to the number of training examples. ...
Leto: 2015 Vir: videolectures.net
Video in druga učna gradiva
Oznake: computer science;machine learning
Uniform sampling of training data has been commonly used in traditional stochastic optimization algorithms such as Proximal Stochastic Mirror Descent (prox-SMD) and Proximal Stochastic Dual Coordinate Ascent (prox-SDCA). Although uniform sampling can guarantee that the sampled stochastic quantity is ...
Leto: 2015 Vir: videolectures.net
Št. zadetkov: 2
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