Neural Search Talks — Zeta Alpha cover image

Using LLMs in Information Retrieval (w/ Ronak Pradeep)

Neural Search Talks — Zeta Alpha

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Re-ranking Models in Information Retrieval

This chapter explores the distinctions between list-wise and pair-wise re-ranking models within the T5 architecture, highlighting their impacts on document relevance assessments. It further examines the advancements brought about by larger language models, the efficiency of multi-stage pipelines, and practical challenges in deploying these models for real-world applications.

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