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Differentiable Programming a la Moreau

Citation Author(s):
Zaid Harchaoui
Submitted by:
Vincent Roulet
Last updated:
5 May 2022 - 12:49pm
Document Type:
Poster
Document Year:
2022
Event:
Presenters:
Vincent Roulet
Paper Code:
1912
 

The notion of a Moreau envelope is central to the analysis of first-order optimization algorithms for machine learning and signal processing. We define a compositional calculus adapted to Moreau envelopes and show how to apply it to deep networks, and, more broadly, to learning systems equipped with automatic differentiation and implemented in the spirit of differentiable programming.

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