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R. Vidal

54 papers hereh-index 7827.7k citations329 works total

Matching runs newest-first, so older work may not be attached to this profile yet.

author position
  • first author1
  • middle author17
  • last author36

Across the 54 of 54 papers where every author was matched, so the position is known.

fields
  • cs.CV22
  • cs.LG18
  • math.OC5
  • cs.IT2
  • eess.SP2
  • stat.ML2
same name
  • R. Vidal — 87 papers
  • R. Vidal — 43 papers
  • R. Vidal — 27 papers
  • R. Vidal — 12 papers
  • R. Vidal — 10 papers
  • R. Vidal — 7 papers, h 4

Either other researchers who publish under this name, or the same person where the external sources have not merged their records.

identity via Semantic Scholar / OpenAlex

activity
20152023
most citedMathematics of Deep Learning

80 citations · 187 across the 27 of their papers we have counts for

collaborators
Showing 2017 · cs.LGShow all

4 papers · 2 filters

cs.LG2017★ 80 cited

Mathematics of Deep Learning

Rene Vidal, Joan Bruna, Raja Giryes +1

Recently there has been a dramatic increase in the performance of recognition systems due to the introduction of deep architectures for representation learning and classification.…

cs.LG2017★ 20 cited

Dropout as a Low-Rank Regularizer for Matrix Factorization

Jacopo Cavazza, Pietro Morerio, Benjamin Haeffele +3

Regularization for matrix factorization (MF) and approximation problems has been carried out in many different ways. Due to its popularity in deep learning, dropout has been applie…

cs.LG2017★ 2 cited

An Analysis of Dropout for Matrix Factorization

Jacopo Cavazza, Connor Lane, Benjamin D. Haeffele +2

Dropout is a simple yet effective algorithm for regularizing neural networks by randomly dropping out units through Bernoulli multiplicative noise, and for some restricted problem…

cs.LG2017

Structured Low-Rank Matrix Factorization: Global Optimality, Algorithms, and Applications

Benjamin D. Haeffele, Rene Vidal

Recently, convex formulations of low-rank matrix factorization problems have received considerable attention in machine learning. However, such formulations often require solving f…

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