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AccurateRAG: A Framework for Building Accurate Retrieval-Augmented Question-Answering Applications

Proceedings of the Fifteenth Language Resources and Evaluation Conference (LREC 2026)

DOI:10.63317/2ygvnkbv24j6

Abstract

We introduce AccurateRAG—a novel framework for constructing high-performance question-answering applications based on retrieval-augmented generation (RAG). Our framework offers a pipeline for development efficiency with tools for raw dataset processing, fine-tuning data generation, text embedding & LLM fine-tuning, output evaluation, and building RAG systems locally. Experimental results show that our framework outperforms previous strong baselines and obtains new state-of-the-art question-answering performance on benchmark datasets.

Details

Paper ID
lrec2026-main-394
Pages
pp. 5015-5023
BibKey
nguyen-etal-2026-accuraterag
Editor
N/A
Publisher
European Language Resources Association (ELRA)
ISSN
2522-2686
ISBN
978-2-493814-49-4
Conference
The Fifteenth Language Resources and Evaluation Conference (LREC 2026)
Location
Palma, Mallorca, Spain
Date
11 May 2026 16 May 2026

Authors

  • LN

    Linh The Nguyen

  • CT

    Chi Tran

  • DN

    Dung Ngoc Nguyen

  • VP

    Van-Cuong Pham

  • HN

    Hoang Ngo

  • DN

    Dat Quoc Nguyen

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