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Automatic Coding of Short Text Responses via Clustering in Educational Assessment

机译:通过评估中的聚类自动编码短文本响应

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摘要

Automatic coding of short text responses opens new doors in assessment. We implemented and integrated baseline methods of natural language processing and statistical modelling by means of software components that are available under open licenses. The accuracy of automatic text coding is demonstrated by using data collected in the Programme for International Student Assessment (PISA) 2012 in Germany. Free text responses of 10 items with n = 41, 990 responses in total were analyzed. We further examined the effect of different methods, parameter values, and sample sizes on performance of the implemented system. The system reached fair to good up to excellent agreement with human codings (.458 ≤ κ ≤ .959). Especially items that are solved by naming specific semantic concepts appeared properly coded. The system performed equally well with n ≥ 1, 661 and somewhat poorer but still acceptable down to n = 249. Based on our findings, we discuss potential innovations for assessment that are enabled by automatic coding of short text responses.
机译:短文本回复的自动编码为评估打开了新的大门。我们通过开放许可下可用的软件组件来实施和集成自然语言处理和统计建模的基准方法。通过使用德国2012年国际学生评估计划(PISA)中收集的数据,可以证明自动文本编码的准确性。分析了10个项目的自由文本回复,其中n = 41,总共990个回复。我们进一步检查了不同方法,参数值和样本量对已实现系统性能的影响。该系统与人类编码(.458≤κ≤.959)达到了良好的良好协议。特别是通过命名特定语义概念解决的项目似乎已正确编码。该系统在n≥1、661时表现良好,但性能稍差,但在n = 249时仍然可以接受。基于我们的发现,我们讨论了通过自动编码短文本回复实现的潜在评估创新。

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