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Statistical Analysis of Complex Problem-Solving Process Data: An Event History Analysis Approach

机译:复杂问题解决过程数据的统计分析:事件历史分析方法

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Complex problem-solving (CPS) ability has been recognized as a central 21st century skill. Individuals' processes of solving crucial complex problems may contain substantial information about their CPS ability. In this paper, we consider the prediction of duration and final outcome (i.e., success/failure) of solving a complex problem during task completion process, by making use of process data recorded in computer log files. Solving this problem may help answer questions like "how much information about an individual's CPS ability is contained in the process data?", "what CPS patterns will yield a higher chance of success?", and "what CPS patterns predict the remaining time for task completion?". We propose an event history analysis model for this prediction problem. The trained prediction model may provide us a better understanding of individuals' problem-solving patterns, which may eventually lead to a good design of automated interventions (e.g., providing hints) for the training of CPS ability. A real data example from the 2012 Programme for International Student Assessment (PISA) is provided for illustration.
机译:复杂的问题解决(CPS)能力被认为是21世纪中央的技能。个人的解决至关重要的复杂问题的过程可能包含有关其CPS能力的大量信息。在本文中,我们考虑在任务完成过程中解决复杂问题的持续时间和最终结果(即成功/失败)的预测,通过使用计算机日志文件中记录的进程数据来解决复杂问题。解决这个问题可能有助于回答“关于个人的CPS能力的信息”等问题,如“过程数据”,“CPS模式将产生更高的成功机会?”,以及“CPS模式预测剩余时间任务完成?“。我们提出了一个关于这种预测问题的事件历史分析模型。训练有素的预测模型可以提供更好地理解个人的解决方案模式,这可能最终导致自动化干预的良好设计(例如,为CPS能力提供训练的自动化干预措施(例如,提供提示)。提供2012年国际学生评估计划(PISA)的真实数据示例是为了说明。

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