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MrRank: Improving Question Answering Retrieval System through Multi-Result Ranking Model

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arxiv 2406.05733 v1 pith:E43TCHUX submitted 2024-06-09 cs.CL

classification cs.CL
keywords retrievalsystemsansweringapproachesinformationllmsperformancequestion
verification ladder T0 review T1 audit T2 compute T3 formal
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Large Language Models (LLMs) often struggle with hallucinations and outdated information. To address this, Information Retrieval (IR) systems can be employed to augment LLMs with up-to-date knowledge. However, existing IR techniques contain deficiencies, posing a performance bottleneck. Given the extensive array of IR systems, combining diverse approaches presents a viable strategy. Nevertheless, prior attempts have yielded restricted efficacy. In this work, we propose an approach that leverages learning-to-rank techniques to combine heterogeneous IR systems. We demonstrate the method on two Retrieval Question Answering (ReQA) tasks. Our empirical findings exhibit a significant performance enhancement, outperforming previous approaches and achieving state-of-the-art results on ReQA SQuAD.

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  1. Rankify: A Comprehensive Python Toolkit for Retrieval, Re-Ranking, and Retrieval-Augmented Generation

    cs.IR 2025-02 conditional novelty 5.0 of 10

    The paper presents Rankify, a modular open-source toolkit that unifies retrieval, re-ranking, and RAG with 40 pre-retrieved datasets and benchmark results.

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