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Comparison of intelligent systems in detecting a child's mathematical gift

机译:智能系统检测孩子的数学天赋的比较

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This paper compares the efficiency of two intelligent methods: expert systems and neural networks, in detecting children's mathematical gift at the fourth grade of elementary school. The input space for the expert system and the neural network model consisted of 60 variables describing five basic components of a child's mathematical gift identified in previous research. The expert system estimated a child's gift based on heuristically defined logic rules, while the scientifically confirmed psychological evaluation of gift based on Raven's standard progressive matrices was used at the output of neural network models. Three neural network algorithms were tested on a Croatian dataset. The results show that both the expert system and the neural network recognize more pupils as mathematically gifted than teachers do. The expert system produces the highest average hit rate, although the highest accuracy in classifying gifted children is obtained by the radial basis neural network algorithm, which also yields lower type 11 error. Due to the ability of expert systems to explain the result, it can be suggested that both the expert system and the neural network model have potential to serve as effective intelligent decision support tools in detecting mathematical gift in early stage, therefore enabling its further development.
机译:本文比较了两种智能方法(专家系统和神经网络)在检测小学四年级儿童数学天赋方面的效率。专家系统和神经网络模型的输入空间由60个变量组成,这些变量描述了先前研究中确定的儿童数学礼物的五个基本组成部分。专家系统根据启发式定义的逻辑规则估算儿童的礼物,而在神经网络模型的输出中使用基于Raven标准渐进矩阵的科学确认的礼物心理评估。在克罗地亚语数据集上测试了三种神经网络算法。结果表明,专家系统和神经网络都比数学上承认更多的学生具有数学天赋。专家系统产生最高的平均命中率,尽管通过径向基神经网络算法获得了对有天赋的孩子进行分类的最高准确性,这也产生了较低的11型错误。由于专家系统具有解释结果的能力,因此可以认为专家系统和神经网络模型都有潜力作为早期检测数学天赋的有效智能决策支持工具,因此有可能进一步发展。

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