Multiple Choice

A startup wants to adapt a large, pre-trained language model to classify customer sentiment (positive, negative, neutral). They have a very small labeled dataset (fewer than 500 examples) and extremely limited access to high-performance computing, making extensive retraining financially unfeasible. Which adaptation approach is most suitable for their situation?

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Updated 2025-09-28

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Ch.1 Pre-training - Foundations of Large Language Models

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