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Reasoning, Robustness, and Human Feedback in AI - Max Bartolo (Cohere)

Machine Learning Street Talk (MLST)

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Exploring the Intersection of Reasoning and Robustness in AI

This chapter explores the connection between effective reasoning and the robustness of AI outcomes, highlighting how reasoning failures can reflect on a model's capabilities. It also examines the shift towards 'AI-first' applications and the importance of model fine-tuning for improved performance.

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