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Integrating Mental Models into Intelligent Tutoring Systems for Solving Random Sampling Word Problems

机译:将心理模型整合到智能辅导系统中,以解决随机采样词问题

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Mental models have been deeply concerned by researchers and practitioners since it plays a crucial role in problem-solving. In this study, we proposed mental models for random sampling word problems. On basis of the proposed mental models, we further performed a mental simulation with a rule-based mental reasoning method and a template-based approach to generate human-style explanations. And then we established an experiment on a prototype intelligent tutoring system. Experimental results showed that: the proposed mental models were available for most random sampling word problems; and a solution with human-style explanations to the problem encoded in mental models was produced effectively by means of mental reasoning. Based on these results, we concluded that our mental models can be used to encode essential information for solving random sampling word problems effectively, and it is profitable to take mental models into account when developing intelligent tutoring systems.
机译:由于它在解决问题中发挥着至关重要的作用,因此精神模型深受研究人员和从业者深感关切。在这项研究中,我们提出了随机采样词问题的心理模型。在拟议的心理模型的基础上,我们进一步进行了基于规则的心理推理方法和基于模板的方法来进行精神模拟,以产生人为风格的解释。然后我们在原型智能辅导系统上建立了一个实验。实验结果表明:拟议的心理模型可用于大多数随机抽样词问题;通过精神推理有效地生产了对精神模型中编码的问题的人类解释的解决方案。基于这些结果,我们得出的结论是,我们的心理模型可用于编码有效解决随机采样词问题的基本信息,并且在开发智能辅导系统时,将在考虑心理模型中是有利可图的。

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