Papers by James McClelland

2 papers
Can language models learn from explanations in context? (2022.findings-emnlp)

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Challenge: Language Models can adapt to a few in-context examples, but without training.
Approach: They examine how explanations of few-shot examples can help Language Models (LMs) explanations can improve performance even without tuning, they find .
Outcome: The proposed explanations outperform hand-tuned explanations on small validation sets.
Causal interventions expose implicit situation models for commonsense language understanding (2023.findings-acl)

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Challenge: Classical psycholinguistic accounts have suggested that world knowledge enters into language understanding through structured schemas called situation models.
Approach: They apply causal intervention techniques to transformer models to analyze performance on the Winograd Schema Challenge .
Outcome: The proposed model performs well on the Winograd Schema Challenge .

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