Daniel McNeela
Daniel McNeela
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Product Manifold Representations for Learning on Biological Pathways
Machine learning models that embed graphs in non-Euclidean spaces have shown substantial benefits in a variety of contexts, but their …
Daniel McNeela
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Frederic Sala
,
Anthony Gitter
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GROG - Reducing LLM Hallucinations for Improved Legal Reasoning
In this work we introduce Graph Retrieval-Optimized Generation (GROG), a method for reducing LLM hallucinations in contexts where …
Daniel McNeela
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Almost Equivariance via Lie Algebra Convolutions
Recently, the equivariance of models with respect to a group action has become an important topic of research in machine learning. …
Daniel McNeela
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