Machine translation as a form of feedback on L2 writing

Author:

Sasaki Miyuki1,Mizumoto Atsushi2,Matsuda Paul Kei3

Affiliation:

1. 13148 Waseda University , Tokyo , Japan

2. 12860 Kansai University , Osaka , Japan

3. 7864 Arizona State University , Tempe , AZ , USA

Abstract

Abstract With advances in artificial intelligence (AI), many language teachers have started exploring the classroom implications of AI-powered technology, including machine translation (MT). To examine the usefulness of MT technology in writing instruction, we conducted a mixed-methods study comparing two types of written feedback: comprehensive direct Teacher Corrective Feedback (TCF), and MT feedback. Participants were 23 Japanese university students in an intact L2 writing classroom. Sample size adequacy was confirmed through a priori power analysis. Participants were instructed to describe a picture prompt in L2 English and then in L1 Japanese. Half the participants received first TCF then MT on their L2 English text, while the order was reversed for the other half. Participants in both conditions were then asked to study the feedback and describe the same picture prompt without the feedback. In the following phase, both groups completed the same tasks in reverse order. Participants also responded to a survey exploring their engagement with the feedback. Results reveal that: 1) TCF improved complexity; 2) MT improved accuracy and fluency; and 3) variation in outcomes may be explained by the different ways in which participants engaged with both TCF and MT. Implications for appropriate classroom use of MT are discussed.

Funder

MEXT/JPSP KAKENHI

Publisher

Walter de Gruyter GmbH

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