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Realizing Corrective Feedback in Task-Based Chatbots Engineered for Second Language Learning
- Shin, Dongkwang;
- Lee, Jang Ho;
- Noh, Wonjun Izac
WEB OF SCIENCE
8SCOPUS
10초록
Building on the work of customized chatbots for language teaching and learning and the second-language acquisition literature on corrective feedback (CF), this article showcases an innovative practice for building a tailored and task-based chatbot to provide CF. Given that extant chatbots are generally not sensitive to learners' grammatical errors, we illustrate a way to install a CF function by using 'action and parameters' and 'define prompts' options in the chatbot-building platform known as Google Dialogflow (TM). Our study, which included upper-grade English-as-a-foreign language learners in South Korea, demonstrated that customized chatbots could offer CF when students made non-target utterances and elicit learner uptake successfully. Based on our innovation, we then provide directions for pedagogy on chatbot-based language learning.
키워드
- 제목
- Realizing Corrective Feedback in Task-Based Chatbots Engineered for Second Language Learning
- 저자
- Shin, Dongkwang; Lee, Jang Ho; Noh, Wonjun Izac
- 발행일
- 2025-08
- 유형
- Article; Early Access
- 저널명
- RELC Journal
- 권
- 56
- 호
- 2
- 페이지
- 457 ~ 467
- 언어
- ENG
- 출판사
- SAGE PUBLICATIONS LTD
- 발행국가
- 영국
- 분량
- 11 페이지
- ISSN
- E 1745-526X
P 0033-6882