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Parjanya Prajakta Prashant

4 accepted papers

2025

Differentiable Causal Discovery for Latent Hierarchical Causal Models

ICLR 2025poster

Discovering causal structures with latent variables from observational data is a fundamental challenge in causal discovery. Existing methods often rely on constraint-based, iterative discrete searches, limiting their scalability for large numbers of variables. Moreover, these methods frequently assu…

Cited by 0SourcePDFScholar
2025

Scalable Out-of-Distribution Robustness in the Presence of Unobserved Confounders

AISTATS 2025poster

We consider the task of out-of-distribution (OOD) generalization, where the distribution shift is due to an unobserved confounder ($Z$) affecting both the covariates ($X$) and the labels ($Y$). This confounding introduces heterogeneity in the predictor, i.e., $P(Y \mid X) = E_{P(Z \mid X)}[P(Y \mid…

Cited by 0SourceScholar
2025

TokenSwap: A Lightweight Method to Disrupt Memorized Sequences in LLMs

NeurIPS 2025spotlight

As language models scale, their performance improves dramatically across a wide range of tasks, but so does their tendency to memorize and regurgitate parts of their training data verbatim. This tradeoff poses serious legal, ethical, and safety concerns, especially in real-world deployments. Existin…

Cited by 0SourcecodeScholar