The BEA 2023 Shared Task on Generating AI Teacher Responses in Educational Dialogues

Tack, Anaïs;Kochmar, Ekaterina;Yuan, Zheng;Bibauw, Serge;Piech, Chris
(2023) Workshop on Innovative Use of NLP for Building Educational Applications (BEA) — Location: Toronto, Canada (13.July.2023)

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Authors
  • Tack, AnaïsUCLouvain
    Author
  • Kochmar, EkaterinaMBZUAI
    Author
  • Yuan, ZhengKing's College London
    Author
  • Bibauw, Sergeorcid-logoUCLouvain
    Author
  • Piech, ChrisStanford University
    Author
Abstract
This paper describes the results of the first shared task on the generation of teacher responses in educational dialogues. The goal of the task was to benchmark the ability of generative language models to act as AI teachers, replying to a student in a teacher-student dialogue. Eight teams participated in the competition hosted on CodaLab. They experimented with a wide variety of state-of-the-art models, including Alpaca, Bloom, DialoGPT, DistilGPT-2, Flan-T5, GPT-2, GPT-3, GPT- 4, LLaMA, OPT-2.7B, and T5-base. Their submissions were automatically scored using BERTScore and DialogRPT metrics, and the top three among them were further manually evaluated in terms of pedagogical ability based on Tack and Piech (2022). The NAISTeacher system, which ranked first in both automated and human evaluation, generated responses with GPT-3.5 using an ensemble of prompts and a DialogRPT-based ranking of responses for given dialogue contexts. Despite the promising achievements of the participating teams, the results also highlight the need for evaluation metrics better suited to educational contexts.
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Citations

Tack, A., Kochmar, E., Yuan, Z., Bibauw, S., & Piech, C. (2023). The BEA 2023 Shared Task on Generating AI Teacher Responses in Educational Dialogues. In Ekaterina Kochmar, Jill Burstein, Andrea Horbach, Ronja Laarmann-Quante, Nitin Madnani, Anaïs Tack, et.al. (eds) (ed.), Proceedings of the 18th Workshop on Innovative Use of NLP for Building Educational Applications (BEA 2023) (pp. 785-795). Association for Computational Linguistics. https://doi.org/10.18653/v1/2023.bea-1.64