Translating a Typing-Based Adaptive Learning Model to Speech-Based L2 Vocabulary Learning

T. Wilschut, Maarten van der Velde, Florian Sense, Z. Fountas, H. van Rijn
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引用次数: 3

Abstract

Memorising vocabulary is an important aspect of formal foreign language learning. Advances in cognitive psychology have led to the development of adaptive learning systems that make vocabulary learning more efficient. These computer-based systems measure learning performance in real time to create optimal study strategies for individual learners. While such adaptive learning systems have been successfully applied to written word learning, they have thus far seen little application in spoken word learning. Here we present a system for adaptive, speech-based word learning. We show that it is possible to improve the efficiency of speech-based learning systems by applying a modified adaptive model that was originally developed for typing-based word learning. This finding contributes to a better understanding of the memory processes involved in speech-based word learning. Furthermore, our work provides a basis for the development of language learning applications that use real-time pronunciation assessment software to score the accuracy of the learner’s pronunciations. Speech-based learning applications are educationally relevant because they focus on what may be the most important aspect of language learning: to practice speech.
基于类型的自适应学习模式到基于语音的二语词汇学习
词汇记忆是正式外语学习的一个重要方面。认知心理学的进步导致了适应性学习系统的发展,使词汇学习更有效。这些基于计算机的系统实时测量学习表现,为个别学习者创建最佳学习策略。虽然这种适应性学习系统已经成功地应用于书面单词学习,但迄今为止,它们在口语单词学习中的应用很少。在这里,我们提出了一个自适应的、基于语音的单词学习系统。我们表明,通过应用最初为基于打字的单词学习开发的改进的自适应模型,可以提高基于语音的学习系统的效率。这一发现有助于更好地理解基于语音的单词学习的记忆过程。此外,我们的工作为语言学习应用程序的开发提供了基础,这些应用程序使用实时发音评估软件来评分学习者的发音准确性。基于语音的学习应用具有教育意义,因为它们关注的是语言学习中最重要的方面:练习语音。
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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