一种语言学习自动评分的同步方法

Bin Dong, Yonghong Yan
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引用次数: 2

摘要

本文提出了一种基于状态图的同步方法来计算计算机辅助语言学习(CALL)中自动评分的评价特征。选择状态的后验概率作为主要特征。利用相应的状态信息估计假设音素和词的得分。传统的系统分别使用两个通道和两种不同的模型来解码和计算后验概率。该算法在对由语法构造的状态图进行解码的过程中计算后验概率。该算法在解码和后验概率计算过程中使用了相同的声学模型。通过实验对新旧算法进行了比较,结果表明新算法的性能得到了有效的提高。新同步算法的评分精度提高,计算复杂度降低16%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Synchronous Method for Automatic Scoring of Language Learning
In this paper, a synchronous method based on state graph is proposed to calculate the evaluation feature for automatic scoring in computer-assisted language learning (CALL). The posterior probabilities of states are selected as the main feature. The score of hypothesized phonemes and words are estimated using the information of corresponding states. Traditional systems use two passes and two different models for decoding and computing posterior probabilities respectively. In this new algorithm, the posterior probabilities are calculated during the decoding of the state graph constructed from grammar. And in this new algorithm, the same acoustics model is used during the process of decoding and posterior probabilities computing. The old and new computing algorithms are compared through experiments, and the result shows that performance of the new algorithm is effectively improved. The scoring accuracy of new synchronous algorithm is improved, while the computing complexity reduces 16%.
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