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Learning Paradigms in LLMs: From Examples to Feedback
by Nat Currier 21 min read
AILarge Language ModelsMachine LearningTraining Methods
Excerpt
Explore the different approaches that define how large language models learn, from supervised learning to reinforcement learning from human feedback (RLHF), and understand how each method shapes AI behavior.
This post was composed with the assistance of AI tools used solely for formatting and refining language. The opinions, experiences, and research presented are entirely my own. I strive to share accurate, well-researched information and welcome feedback or corrections. I support the ethical use of AI in content creation and firmly believe that appropriate credit is always due—even when AI plays a role in shaping the final product.