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Autonomous Machine Learning-Based Peer Reviewer Selection System

    • Nazarbayev University

    Результат исследований

    Аннотация

    The peer review process is essential for academic research, yet it faces challenges such as inefficiencies, biases, and limited access to qualified reviewers. This paper introduces an autonomous peer reviewer selection system that employs the Natural Language Processing (NLP) model to match submitted papers with expert reviewers independently of traditional journals and conferences. Our model performs competitively in comparison with the transformer-based state-of-the-art models while being 10 times faster at inference and 7 times smaller, which makes our platform highly scalable. Additionally, with our paper-reviewer matching model being trained on scientific papers from various academic fields, our system allows scholars from different backgrounds to benefit from this automation.

    Язык оригиналаEnglish
    Название основной публикацииSystem Demonstrations
    РедакторыOwen Rambow, Leo Wanner, Marianna Apidianaki, Hend Al-Khalifa, Barbara Di Eugenio, Steven Schockaert, Brodie Mather, Mark Dras
    ИздательAssociation for Computational Linguistics (ACL)
    Страницы199-207
    Число страниц9
    ISBN (электронное издание)9798891761988
    СостояниеPublished - 2025
    Событие31st International Conference on Computational Linguistics, COLING 2025 - Abu Dhabi
    Продолжительность: янв. 19 2025янв. 24 2025

    Серия публикаций

    НазваниеProceedings - International Conference on Computational Linguistics, COLING
    ISSN (печатное издание)2951-2093

    Conference

    Conference31st International Conference on Computational Linguistics, COLING 2025
    Страна/TерриторияUnited Arab Emirates
    ГородAbu Dhabi
    Период1/19/251/24/25

    ASJC Scopus subject areas

    • Computational Theory and Mathematics
    • Computer Science Applications
    • Theoretical Computer Science

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