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Automatic evaluation of surface coherence in L2 texts in Czech

机译:自动评估捷克语L2文本中的表面连贯性

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We introducc possibilities of automatic evaluation of surface text coherence (cohesion) in texts written by learners of Czech during certified exams for non-native speakers. On the basis of a corpus analysis, we focus on finding and describing relevant distinctive features for automatic detection of Al-Cl levels (established by CEFR - the Common European Framework of Reference for Languages) in terms of surface text coherence. The CEFR levels are evaluated by human assessors and we try to reach this assessment automatically by using several discourse features like frequency and diversity of discourse connectives, density of discourse relations etc. We present experiments with various features using two machine learning algorithms. Our results of automatic evaluation of CEFR coherence/cohesion marks (compared to human assessment) achieved 73.2% success rate for the detection of Al-Cl levels and 74.9% for the detection of A2-B2 levels.
机译:我们在非母语人员的经过认证考试期间培养了学习者捷克语学习者撰写的文本中表面文本连贯性(凝聚力)的可能性。在语料库分析的基础上,我们专注于发现和描述相关的独特特征,以便在表面文本连贯方面自动检测Al-Cl水平(CEFR - 语言共同的欧洲参考框架)。 CEFR水平由人类评估员评估,我们试图通过使用多种话语功能,如话语联系,话语密度密度等多样性等多种话语特征自动达到此评估。我们使用两种机器学习算法具有各种功能的实验。我们对CEFR相干性/凝聚力(与人类评估相比)自动评估的结果达到了73.2%的成功率,用于检测Al-Cl水平,74.9%用于检测A2-B2水平。

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