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Nils Reimers on Cohere Search AI - Weaviate Podcast #63!

Weaviate Podcast

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Fine Tuning, Model Performance Guarantees, and User Preferences in Search

This chapter explores the concept of fine tuning in language models and its effectiveness in improving model performance. It discusses the challenges of creating a large dataset for fine tuning and how preferences can be encoded in the model to prioritize certain results. The chapter also touches upon enabling non-expert users to efficiently steer the model and the possibility of language models generating synthetic queries and using metadata for ranking enhancement.

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