Quiz: Data Preparation and Tokenization
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1. Which of the following best describes the purpose of tokenization in transformer models?
2. What is the role of an attention mask in transformer-based models?
3. Why is it important to split your dataset into training, validation, and test sets when preparing data for fine-tuning?
4. When using a tokenizer from a pre-trained transformer model, what is a common output besides input IDs?
5. Which statement about padding is correct when batching sequences for transformers?
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Section 2. Chapitre 5
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Section 2. Chapitre 5