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Frederic Sala

10 papers hereh-index 212.5k citations60 works total

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

author position
  • first author3
  • middle author7

Across the 10 of 10 papers where every author was matched, so the position is known.

fields
  • stat.ML6
  • cs.LG4
same name
  • Frederic Sala — 8 papers, h 4
  • Frederic Sala — 8 papers, h 4
  • Frederic Sala — 6 papers, h 9
  • Frederic Sala — 3 papers, h 2
  • Frederic Sala — 3 papers, h 3
  • Frederic Sala — 2 papers, h 3

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
20172021
most citedLearning Dependency Structures for Weak Supervision Models

14 citations · 36 across the 6 of their papers we have counts for

collaborators
Showing 2020Show all

4 papers · 1 filter

stat.ML2020★ 4 cited

Train and You'll Miss It: Interactive Model Iteration with Weak Supervision and Pre-Trained Embeddings

Mayee F. Chen, Daniel Y. Fu, Frederic Sala +5

Our goal is to enable machine learning systems to be trained interactively. This requires models that perform well and train quickly, without large amounts of hand-labeled data. We…

cs.LG2020

Low-Dimensional Hyperbolic Knowledge Graph Embeddings

Ines Chami, Adva Wolf, Da-Cheng Juan +3

Knowledge graph (KG) embeddings learn low-dimensional representations of entities and relations to predict missing facts. KGs often exhibit hierarchical and logical patterns which…

cs.LG2020★ 11 cited

Ivy: Instrumental Variable Synthesis for Causal Inference

Zhaobin Kuang, Frederic Sala, Nimit Sohoni +5

A popular way to estimate the causal effect of a variable x on y from observational data is to use an instrumental variable (IV): a third variable z that affects y only through x.…

stat.ML2020

Fast and Three-rious: Speeding Up Weak Supervision with Triplet Methods

Daniel Y. Fu, Mayee F. Chen, Frederic Sala +3

Weak supervision is a popular method for building machine learning models without relying on ground truth annotations. Instead, it generates probabilistic training labels by estima…

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Not affiliated with arXiv. Researcher data from Semantic Scholar (ODC-BY) and OpenAlex.