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Debargha Ganguly

3 accepted papers

2025

Forte : Finding Outliers with Representation Typicality Estimation

ICLR 2025poster

Generative models can now produce photorealistic synthetic data which is virtually indistinguishable from the real data used to train it. This is a significant evolution over previous models which could produce reasonable facsimiles of the training data, but ones which could be visually distinguishe…

2025

Grammars of Formal Uncertainty: When to Trust LLMs in Automated Reasoning Tasks

NeurIPS 2025poster

Large language models (LLMs) show remarkable promise for democratizing automated reasoning by generating formal specifications. However, a fundamental tension exists: LLMs are probabilistic, while formal verification demands deterministic guarantees. This paper addresses this epistemological gap by…

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