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Language Cognition and Pronunciation Training Using Applications

机译:语言认知和使用应用的发音培训

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摘要

In language learning, adults seem to be superior in their ability to memorize knowledge of new languages and have better learning strategies, experiences, and intelligence to be able to integrate new knowledge. However, unless one learns pronunciation in childhood, it is almost impossible to reach a native-level accent. In this research, we take the difficulties of learning tonal pronunciation in Mandarin as an example and analyze the difficulties of tone learning and the deficiencies of general learning methods using the cognitive load theory. With the tasks designed commensurate with the learner's perception ability based on perception experiments and small-step learning, the perception training app is more effective for improving the tone pronunciation ability compared to existing apps with voice analysis function. Furthermore, the learning effect was greatly improved by optimizing the app interface and operation procedures. However, as a result of the combination of pronunciation practice and perception training, pronunciation practice with insufficient feedback could lead to pronunciation errors. Therefore, we also studied pronunciation practice using machine learning and aimed to train the model for the pronunciation task design instead of classification. We used voices designed as training data and trained a model for pronunciation training, and demonstrated that supporting pronunciation practice with machine learning is practicable.
机译:在语言学习中,成年人似乎可以归功于记忆新语言知识,并具有更好的学习策略,经验和智力,以能够整合新知识。但是,除非一个人学习童年的发音,否则几乎不可能达到原生级口音。在这项研究中,我们认为普通话中音调发音的困难为例,并分析了语气学习的困难以及使用认知负荷理论的通用学习方法的缺陷。通过根据感知实验和小型学习的学习者的感知能力设计的任务,感知培训应用程序与具有语音分析功能的现有应用程序相比改善音调发音能力更有效。此外,通过优化应用程序接口和操作程序,大大提高了学习效果。但是,由于发音实践和感知训练的组合,反馈不足不足的发音实践可能会导致发音错误。因此,我们还研究了使用机器学习的发音实践,并旨在培训模型的发音任务设计而不是分类。我们使用设计作为培训数据的声音,并培训了一个型号的发音培训,并展示了支持机器学习的发音实践是可行的。

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