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Gianluca Francini

1 accepted papers

2018

Learning sparse neural networks via sensitivity-driven regularization

NeurIPS 2018poster

The ever-increasing number of parameters in deep neural networks poses challenges for memory-limited applications. Regularize-and-prune methods aim at meeting these challenges by sparsifying the network weights. In this context we quantify the output sensitivity to the parameters (i.e. their relevan…

Cited by 103SourcePDFScholar