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Formative Essay Feedback Using Predictive Scoring Models

机译:使用预测评分模型的表现篇论文反馈

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摘要

A major component of secondary education is learning to write effectively, a skill which is bolstered by repeated practice with formative guidance. However, providing focused feedback to every student on multiple drafts of each essay throughout the school year is a challenge for even the most dedicated of teachers. This paper first establishes a new ordinal essay scoring model and its state of the art performance compared to recent results in the Automated Essay Scoring field. Extending this model, we describe a method for using prediction on realistic essay variants to give rubric-specific formative feedback to writers. This method is used in Revision Assistant, a deployed data-driven educational product that provides immediate, rubric-specific, sentence-level feedback to students to supplement teacher guidance. We present initial evaluations of this feedback generation, both offline and in deployment.
机译:中学教育的主要组成部分正在学习有效地写入,这是通过具有形成性指导的重复实践来挥霍的技能。 然而,在整个学年的每篇文章的多个学生上为每个学生提供重点反馈是甚至最献身的教师的挑战。 本文首先建立了一个新的序数论文评分模型及其最先进的性能,而最近的自动化论文评分领域的结果相比。 扩展该模型,我们描述了一种对现实散文变体上预测的方法,以向作者提供特定的特定于规度的形成反馈。 这种方法用于修订助理,该方法部署的数据驱动教育产品,为学生提供了立即,标题的特定句子级反馈,以补充教师指导。 我们在脱机和部署中展示了对该反馈生成的初始评估。

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