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Nicola Gnecco

1 accepted papers

2024

Achievable distributional robustness when the robust risk is only partially identified

NeurIPS 2024poster

In safety-critical applications, machine learning models should generalize well under worst-case distribution shifts, that is, have a small robust risk. Invariance-based algorithms can provably take advantage of structural assumptions on the shifts when the training distributions are heterogeneous e…

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