1min snip

Machine Learning Street Talk (MLST) cover image

Patrick Lewis (Cohere) - Retrieval Augmented Generation

Machine Learning Street Talk (MLST)

NOTE

Balance Faithfulness and Fluency

In augmented generation, a significant challenge lies in maintaining the balance between faithfulness to the retrieved information and producing fluent, engaging responses, particularly in chatbot interactions. The desire for a pleasing response can sometimes conflict with accurately representing the retrieved data. Additionally, determining whether a question is answerable based on the retrieved information adds complexity, as this information may be fragmented and lack context. Establishing a clear decision boundary for what constitutes a sufficient response to the user's information need poses another empirical challenge.

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