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AUTOMATIC ASSESSMENT OF STUDENTS' FREE-TEXT ANSWERS WITH DIFFERENT LEVELS

机译:不同水平学生的自由文本答案的自动评估

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For improving the interaction between students and teachers, it is fundamental for teachers to understand students' learning levels. An intelligent computer system should be able to automatically evaluate students' answers when the teacher asks some questions. We first built the assessment corpus from the course in the university. With the corpus, we applied the following procedures to extract the relevant information and then built the feature model: (1) remove the punctuation and decimal numbers because it plays the noise roles, (2) apply the part-of-speech tagging such that the syntactic information is extracted, (3) for grouping the information, take the stemming and normalization procedure to sentences, and (4) extract other features. In this study, we treated the assessment problem as the classifying problem, and tried two kinds of classification strategies: two and three classifying classes. For two classes, we got an average of 66.3% precision rate at first. When adding n-gram concept to the feature model, the system reached to the average of 71.9% precision rate which increased performance by 5.6%. The same tendency emerged for three-class experiment. The experiments with SVM show exhilarating results and some improving efforts will be further made in the future.
机译:为了改善师生之间的互动,教师了解学生的学习水平是基础。当老师问一些问题时,智能计算机系统应该能够自动评估学生的答案。我们首先从大学课程中建立了评估语料库。对于语料库,我们应用了以下过程来提取相关信息,然后构建特征模型:(1)删除标点和十进制数字,因为它们起着噪声的作用,(2)应用词性标记,使得提取句法信息,(3)对信息进行分组,对句子采用词干和归一化程序,(4)提取其他特征。在本研究中,我们将评估问题视为分类问题,并尝试了两种分类策略:两个分类分类和三个分类分类。对于两个类别,我们最初的平均准确率为66.3%。当将n-gram概念添加到特征模型中时,系统的平均准确率达到71.9%,从而使性能提高了5.6%。三班实验也出现了相同的趋势。使用SVM进行的实验显示出令人振奋的结果,将来还会做一些改进。

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