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20202026
most citedThe Expando-Mono-Duo Design Pattern for Text Ranking with Pretrained Sequence-to-Sequence Models

42 citations · 129 across the 13 of their papers we have counts for

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cs.IR2026

Overview of the TREC 2025 Retrieval Augmented Generation (RAG) Track

Shivani Upadhyay, Nandan Thakur, Ronak Pradeep +3

The second edition of the TREC Retrieval Augmented Generation (RAG) Track advances research on systems that integrate retrieval and generation to address complex, real-world inform…

cs.IR20251 cited

RankLLM: A Python Package for Reranking with LLMs

Sahel Sharifymoghaddam, Ronak Pradeep, Andre Slavescu +7

The adoption of large language models (LLMs) as rerankers in multi-stage retrieval systems has gained significant traction in academia and industry. These models refine a candidate…

cs.IR2025

Chatbot Arena Meets Nuggets: Towards Explanations and Diagnostics in the Evaluation of LLM Responses

Sahel Sharifymoghaddam, Shivani Upadhyay, Nandan Thakur +2

Battles, or side-by-side comparisons in so-called arenas that elicit human preferences, have emerged as a popular approach for assessing the output quality of LLMs. Recently, this…

cs.IR20252 cited

The Great Nugget Recall: Automating Fact Extraction and RAG Evaluation with Large Language Models

Ronak Pradeep, Nandan Thakur, Shivani Upadhyay +3

Large Language Models (LLMs) have significantly enhanced the capabilities of information access systems, especially with retrieval-augmented generation (RAG). Nevertheless, the eva…

cs.IR20246 cited

Initial Nugget Evaluation Results for the TREC 2024 RAG Track with the AutoNuggetizer Framework

Ronak Pradeep, Nandan Thakur, Shivani Upadhyay +3

This report provides an initial look at partial results from the TREC 2024 Retrieval-Augmented Generation (RAG) Track. We have identified RAG evaluation as a barrier to continued p…

cs.IR20249 cited

A Large-Scale Study of Relevance Assessments with Large Language Models: An Initial Look

Shivani Upadhyay, Ronak Pradeep, Nandan Thakur +5

The application of large language models to provide relevance assessments presents exciting opportunities to advance information retrieval, natural language processing, and beyond,…