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Development of Material Automatic Generation System Based on the Analysis of Phonemic Errors in English Vocabulary Listening

机译:基于英语词汇聆听中音箱误差分析的材料自动生成系统的开发

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With analyzing the learning log-data, personalized learning patterns of different students could be detected, and the personalized materials could be automatically created and offered to learners for guiding their specific learning processes and solving weak points. In this paper, we propose a new approach to develop a CALL system including an error-detecting algorithm and a material-creating module. And in our approach, we pay much of our attention on the detection of phonemic errors. The system can detect the phonemic errors of Japanese learners' in English vocabulary listening by analyzing the relative learning log data, and automatically create multiple-choice question materials to help students take practices to enhance perception on the phonemes that they distinguish difficultly.
机译:通过分析学习日志数据,可以检测到不同学生的个性化学习模式,并且可以自动创建和提供个性化材料,以指导他们的特定学习过程和解决弱点。在本文中,我们提出了一种新方法来开发包括错误检测算法和材料创建模块的呼叫系统。在我们的方法中,我们对大部分注意到检测到音素错误。通过分析相对学习日志数据,系统可以检测日本学习者的语音误差,并通过分析相对学习日志数据,并自动创建多项选择质量,以帮助学生采取实践,以提高他们在难以实现的音素的看法。

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