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Automated Language Scoring System by Employing Neural Network Approaches

机译:采用神经网络方法的自动语言评分系统

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Present approaches of automated language scoring lack the ability to investigate the multiple-level and several contexts of sequential features which are helpful to examine the language proficiency for the responses (monologue and dialogue). This paper aimed to identify the different levels of sequential features with respect to various contexts to evaluate the speaker's proficiency of a language. We have employed Neural Network based automated assessment. We have combined 3 attention based Bidirectional Long-Short-Term-Memory to effectively consider the three dimensions of a speech as delivery, grammar and content. The resultant outcomes demonstrated that our methodology have outperformed the traditional ways of language scoring.
机译:当前的自动语言评分方法缺乏调查顺序特征的多层次和几种环境的能力,这有助于检查语言的反应能力(口语和对话)。本文旨在确定针对各种语境的顺序特征的不同级别,以评估说话者的语言熟练程度。我们采用了基于神经网络的自动化评估。我们结合了3种基于注意力的双向长期短期记忆,以有效地将语音的三个维度视为传递,语法和内容。结果表明,我们的方法优于传统的语言评分方式。

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