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Automatic scoring method for open answer task in the SJ-CAT speaking test considering utterance difficulty level

机译:考虑话语难度级别的SJ-CAT说话测试中的自动评分方法

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In this paper, we propose an automatic scoring method for the open answer task of the Japanese speaking test SJ-CAT. The proposed method first extracts a set of features from an input answer utterance and then estimates a vocabulary richness score by human raters, which ranges from 0 to 4, by employing SVR (support vector regression). We devised a novel set of features, namely text statistics weighted by word reliability, to assess the abundance of vocabulary and expression, and degree of word relevance based on the hierarchical distance in a thesaurus to evaluate the suitability of vocabulary. We confirmed experimentally that the proposed method provides good estimates of the human richness score, with a correlation coefficient of 0.92 and an RMSE (root mean square error) of 0.56. We also showed that the proposed method is relatively robust to differences among examinees and among questions used for training and testing.
机译:在本文中,我们为日语测试SJ-Cat的开放答案任务提出了一种自动评分方法。所提出的方法首先从输入答案话语中提取一组特征,然后通过采用SVR(支持向量回归)来估计人类评分的词汇量评分,其范围为0至4。我们设计了一组小说的特征,即文本统计的文字可靠性加权,评估了基于词库中的分层距离的词汇和表达的丰富,以及字相关性,以评估词汇的适用性。我们通过实验证实,该方法提供了对人类丰富度评分的良好估计,相关系数为0.92,RMSE(均方误差)为0.56。我们还表明,该方法对考生的差异以及用于培训和测试的问题相对强大。

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