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Identifying Students' Summary Writing Strategies Using Summary Sentence Decomposition Algorithm

机译:利用摘要句分解算法识别学生的摘要写作策略

摘要

The Summary writing is one of the important skills taught in schools. A summary is a condensed version of an existing text. Its production differs from other types of writing where it requires the use of specific strategies. Most research on summary assessments focused on the end product of summary writing instead of its process. Research has shown that lack of strategic skills is a cause of students' difficulties in writing good summaries. There are a few systems available to assist teachers in assessing students summaries based on content and style. But virtually none have been developed to assess the process particularly in identifying the strategies used. To address this need, we propose an algorithm based on summary sentence decomposition to identify students' strategies in summary writing. We first analyzed experts' written summaries, extracted the strategies used in the summaries, formulated a set of heuristics rules to define the strategies and finally transformed the rules using position-based method into summary sentence decomposition algorithm (SSDA). For evaluation, we measured the algorithm's functionality in identifying the different strategies. We also compared its performance against human experts. The results based on 168 summary sentences indicate that the algorithm successfully identified these syntax level strategies: deletion, sentence combination, copy-paste, syntactic transformation and sentence reordering. In comparison to human performance, the algorithm's performance closely matched that of human with 94 accuracy in identifying the syntax level strategies. For future work, the algorithm will be extended to identify the semantic level strategies, diagnose the strategies used and provide constructive feedback.
机译:摘要写作是学校教授的重要技能之一。摘要是现有文本的精简版本。它的制作不同于需要使用特定策略的其他类型的写作。摘要评估的大多数研究都将重点放在摘要写作的最终产品而不是其过程上。研究表明,缺乏策略性技能是造成学生难以撰写出色的摘要的原因。有一些系统可以帮助教师根据内容和样式评估学生的摘要。但是实际上还没有人开发评估该过程的方法,特别是在确定所用策略时。为了满足这一需求,我们提出了一种基于摘要句子分解的算法,以识别学生在摘要写作中的策略。我们首先分析专家的书面摘要,提取摘要中使用的策略,制定一套启发式规则来定义策略,最后使用基于位置的方法将规则转换为摘要句子分解算法(SSDA)。为了进行评估,我们在识别不同策略时测量了算法的功能。我们还将其性能与人类专家进行了比较。基于168个摘要语句的结果表明,该算法成功识别了以下语法级别策略:删除,语句组合,复制粘贴,句法转换和语句重新排序。与人类的性能相比,该算法的性能在识别语法级别策略时以94的准确性与人类的性能紧密匹配。对于将来的工作,将扩展该算法以识别语义级别的策略,诊断所使用的策略并提供建设性的反馈。

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