Corpus-Based Data-Driven Learning to Augment L2 Students’ Vocabulary Repertoire

Ira Rasikawati
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引用次数: 1

Abstract

Corpus-based data-driven learning (DDL) is an inductive instructional approach using computer-generated concordances. It provides students with the opportunity to analyze different language forms across contexts found in the concordance output. The idea of engaging students to discover the language rules and patterns from authentic learning materials is central to the theory of inquiry-based learning. Despite the robust research support, however, DDL has not been widely adopted, in part because of a dearth of practical and specific recommendations for teachers. More studies are needed to corroborate the claim that the approach can promote the development of different language learning areas effectively. This article synthesizes relevant theories and research findings on the use of DDL for second language instruction and illuminates the understanding of how corpus-based vocabulary instructional strategies may work in English for Academic Purposes (EAP) courses in non-English speaking countries. The study recommendations include a corpus-based DDL framework to expand students’ vocabulary and suggestions for future research. 
基于语料库的数据驱动学习增加二语学生的词汇量
基于语料库的数据驱动学习(DDL)是一种使用计算机生成的一致性的归纳教学方法。它为学生提供了分析在一致性输出中发现的跨上下文的不同语言形式的机会。探究性学习理论的核心思想是让学生从真实的学习材料中发现语言规则和模式。然而,尽管有强有力的研究支持,DDL并没有被广泛采用,部分原因是缺乏针对教师的实际和具体的建议。该方法能够有效促进不同语言学习领域的发展,这一说法需要更多的研究来证实。本文综合了DDL在第二语言教学中的相关理论和研究成果,阐明了基于语料库的词汇教学策略如何在非英语国家的学术英语(EAP)课程中发挥作用。研究建议包括一个基于语料库的DDL框架,以扩大学生的词汇量和对未来研究的建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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