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4 months ago

Invariant Risk Minimization

Martin Arjovsky; Léon Bottou; Ishaan Gulrajani; David Lopez-Paz

Invariant Risk Minimization

Abstract

We introduce Invariant Risk Minimization (IRM), a learning paradigm to estimate invariant correlations across multiple training distributions. To achieve this goal, IRM learns a data representation such that the optimal classifier, on top of that data representation, matches for all training distributions. Through theory and experiments, we show how the invariances learned by IRM relate to the causal structures governing the data and enable out-of-distribution generalization.

Code Repositories

parshakova/IRM_ICP-IC_ERM
pytorch
Mentioned in GitHub
thuml/Transfer-Learning-Library
pytorch
Mentioned in GitHub
facebookresearch/DomainBed
pytorch
Mentioned in GitHub
hasanjawad001/cglearn
pytorch
Mentioned in GitHub
kakaobrain/irm-empirical-study
pytorch
Mentioned in GitHub
reiinakano/invariant-risk-minimization
pytorch
Mentioned in GitHub
aniquetahir/jax_ood
jax
Mentioned in GitHub
facebookresearch/InvariantRiskMinimization
Official
pytorch
Mentioned in GitHub
claudiashi57/nice
pytorch
Mentioned in GitHub
ycq091044/manydg
pytorch
Mentioned in GitHub
chunyangx/IRM_research
pytorch
Mentioned in GitHub
rwchakra/exmap
pytorch
Mentioned in GitHub
fastforwardlabs/causality-for-ml
pytorch
Mentioned in GitHub
katoro8989/irm_variants_calibration
pytorch
Mentioned in GitHub
lingxiaoyuan/ood_mechanics
pytorch
Mentioned in GitHub
siddarth-c/FedGMA
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
image-classification-on-colored-mnist-withMLP-IRM
Accuracy : 66.9

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Invariant Risk Minimization | Papers | HyperAI