第二语言学习中的自动语音识别:基于PRISMA方法的综述

IF 0.9 0 LANGUAGE & LINGUISTICS
Languages Pub Date : 2023-10-20 DOI:10.3390/languages8040242
Mireia Farrús
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引用次数: 1

摘要

语言学习领域也不能免于受益于最近的技术,这些技术已经彻底改变了语音技术领域。第二语言学习,特别是在学习世界上使用最广泛的语言时,越来越多的自动化方法被用于语言学方面的评估,并向学习者提供反馈,尤其是在发音问题上。一方面,这些系统中只有少数集成了自动语音识别作为语音评估的辅助工具。另一方面,大多数计算机辅助语言发音工具都侧重于语言的音段层面,对特定的语音发音提供反馈,而忽略了基于语调等的超音段特征。本文基于PRISMA的系统回顾方法,概述了现有的二语学习工具,根据评估水平(语法、词汇、语音和韵律)对它们进行了分类,并试图解释为什么现在专门用于评估语调方面的工具如此之少。此外,该评论还涉及现有的商业系统,以及这些工具与该领域开发的研究之间的现有差距。最后,手稿结束了对主要发现的讨论,并展望未来的研究方向。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Automatic Speech Recognition in L2 Learning: A Review Based on PRISMA Methodology
The language learning field is not exempt from benefiting from the most recent techniques that have revolutionised the field of speech technologies. L2 learning, especially when it comes to learning some of the most spoken languages in the world, is increasingly including more and more automated methods to assess linguistics aspects and provide feedback to learners, especially on pronunciation issues. On the one hand, only a few of these systems integrate automatic speech recognition as a helping tool for pronunciation assessment. On the other hand, most of the computer-assisted language pronunciation tools focus on the segmental level of the language, providing feedback on specific phonetic pronunciation, and disregarding the suprasegmental features based on intonation, among others. The current review, based on the PRISMA methodology for systematic reviews, overviews the existing tools for L2 learning, classifying them in terms of the assessment level, (grammatical, lexical, phonetic, and prosodic), and trying the explain why so few tools are nowadays dedicated to evaluate the intonational aspect. Moreover, the review also addresses the existing commercial systems, as well as the existing gap between those tools and the research developed in this area. Finally, the manuscript finishes with a discussion of the main findings and foresees future lines of research.
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来源期刊
Languages
Languages Arts and Humanities-Language and Linguistics
CiteScore
1.40
自引率
22.20%
发文量
282
审稿时长
11 weeks
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