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Oscar Clivio

3 accepted papers

2024

Towards Representation Learning for Weighting Problems in Design-Based Causal Inference

UAI 2024poster

Reweighting a distribution to minimize a distance to a target distribution is a powerful and flexible strategy for estimating a wide range of causal effects, but can be challenging in practice because optimal weights typically depend on knowledge of the underlying data generating process. In this pa…

2023

PWSHAP: A Path-Wise Explanation Model for Targeted Variables

ICML 2023poster

Predictive black-box models can exhibit high-accuracy but their opaque nature hinders their uptake in safety-critical deployment environments. Explanation methods (XAI) can provide confidence for decision-making through increased transparency. However, existing XAI methods are not tailored towards m…

2022

Neural score matching for high-dimensional causal inference

AISTATS 2022poster

Traditional methods for matching in causal inference are impractical for high-dimensional datasets. They suffer from the curse of dimensionality: exact matching and coarsened exact matching find exponentially fewer matches as the input dimension grows, and propensity score matching may match highly…