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Efficiency of In-Context Learning for Model Adaptation

In-context learning provides an efficient method for adapting Large Language Models to new tasks because it bypasses the need for additional training or parameter updates. This process enables the quick adaptation of LLMs to novel problems, expanding their capabilities beyond what was achieved during pre-training without requiring task-specific fine-tuning.

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Updated 2026-04-29

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Ch.3 Prompting - Foundations of Large Language Models

Foundations of Large Language Models

Foundations of Large Language Models Course

Computing Sciences

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