This chapter explores the considerations in determining optimal model sizes for Llama models, focusing on factors like data requirements, annotation constraints, and training time. It discusses the evolution of scaling laws in AI models, emphasizing the importance of training tokens for performance. Additionally, it delves into the planning and decisions behind the development of Llama 3 to compete with GPT-4, as well as the challenges in assessing scalability and longevity in AI research.

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