In authors or contributors

3 resources

  • Yann Hicke, Anmol Agarwal, Qianou Ma
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    Nov 13th, 2023
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    preprint
    Yann Hicke, Anmol Agarwal, Qianou Ma
    Nov 13th, 2023

    Responding to the thousands of student questions on online QA platforms each semester has a considerable human cost, particularly in computing courses with rapidly growing enrollments. To address the challenges of scalable and intelligent question-answering (QA), we introduce an innovative solution that leverages open-source Large Language Models (LLMs) from the LLaMA-2 family to ensure data privacy. Our approach combines augmentation techniques such as retrieval augmented generation (RAG),...

  • Yann Hicke, Anmol Agarwal, Qianou Ma
    |
    Nov 13th, 2023
    |
    preprint
    Yann Hicke, Anmol Agarwal, Qianou Ma
    Nov 13th, 2023

    Responding to the thousands of student questions on online QA platforms each semester has a considerable human cost, particularly in computing courses with rapidly growing enrollments. To address the challenges of scalable and intelligent question-answering (QA), we introduce an innovative solution that leverages open-source Large Language Models (LLMs) from the LLaMA-2 family to ensure data privacy. Our approach combines augmentation techniques such as retrieval augmented generation (RAG),...

  • Jadon Geathers, Yann Hicke, Colleen Chan...
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    May 15th, 2025
    |
    preprint
    Jadon Geathers, Yann Hicke, Colleen Chan...
    May 15th, 2025

    Objective Structured Clinical Examinations (OSCEs) are widely used to assess medical students' communication skills, but scoring interview-based assessments is time-consuming and potentially subject to human bias. This study explored the potential of large language models (LLMs) to automate OSCE evaluations using the Master Interview Rating Scale (MIRS). We compared the performance of four state-of-the-art LLMs (GPT-4o, Claude 3.5, Llama 3.1, and Gemini 1.5 Pro) in evaluating OSCE...

Last update from database: 15/12/2025, 14:15 (UTC)
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