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Application of an Automatic Plagiarism Detection System in a Large-scale Assessment of English Speaking Proficiency

机译:自动抄袭检测系统在大规模英语口语评估中的应用

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This study aims to build an automatic system for the detection of plagiarized spoken responses in the context of an assessment of English speaking proficiency for non-native speakers. Classification models were trained to distinguish between plagiarized and non-plagiarized responses with two different types of features: text-to-text content similarity measures, which are commonly used in the task of plagiarism detection for written documents, and speaking proficiency measures, which were specifically designed for spontaneous speech and extracted using an automated speech scoring system. The experiments were first conducted on a large data set drawn from an operational English proficiency assessment across multiple years, and the best classifier on this heavily imbalanced data set resulted in an Fl-score of 0.761 on the plagiarized class. This system was then validated on operational responses collected from a single administration of the assessment and achieved a recall of 0.897. The results indicate that the proposed system can potentially be used to improve the validity of both human and automated assessment of non-native spoken English.
机译:这项研究旨在建立一个自动系统,以在评估非母语人士的英语熟练程度的情况下检测窃的口语反应。训练了分类模型,以区分具有两种不同类型特征的抄袭和非抄袭响应:文本到文本内容相似性度量(通常用于书面文档的窃检测任务)和口语能力度量(分别为专为自发语音而设计,并使用自动语音评分系统提取。实验首先是根据从多年的英语操作能力评估中得出的大型数据集进行的,在这个严重失衡的数据集上的最佳分类器在窃类中的得分为0.761。然后,根据从一次评估中收集到的操作响应对该系统进行了验证,并得出0.897的召回率。结果表明,提出的系统可以潜在地用于提高人工和自动评估非母语英语的有效性。

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