基于梯度促进决策树的幼儿园儿童数学知识认知规律研究

Ye Yang, Xuebing Li
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引用次数: 0

摘要

利用梯度提升决策树(GBDT)算法,将儿童数学知识认知水平的分类问题转化为机器学习中的分类问题。不同数学知识模块的幼儿园幼儿认知难度不同。每个知识模块可以抽象为几个基本技能点,所有的知识模块和基本技能点组成一个知识技能矩阵。本研究以某幼儿园大班教学教材为基础,将所有数学知识模块分解为几个基本技能点,构建知识技能矩阵。然后,基于实际教学活动中收集到的儿童学习数据,利用GBDT算法构建了儿童数学知识和技能的两个分类模型。这两种模式都可以应用到实际教学中。挖掘幼儿对数学知识的认知规律,有助于教师设计合理的心理干预机制,提高幼儿的认知水平。
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Gradient Boost Decision Tree-based Research on Kindergarten Children's Cognitive Law of Mathematical Knowledge
Using the Gradient boost decision tree (GBDT) algorithm, the classification problem of children's cognitive level of mathematical knowledge is transformed into the classification problem in machine learning. Kindergarten children's cognitive difficulty with different mathematical knowledge modules is different. Each knowledge module can be abstracted into several basic skill points, and all knowledge modules and basic skill points form a knowledge skill matrix. In this study, based on the teaching textbooks of a large class in a kindergarten, all mathematical knowledge modules are decomposed into several basic skill points, and the knowledge skill matrix is constructed. Then, based on the children's learning data collected in the actual teaching activities, two classification models of children's mathematical knowledge and skills are constructed by using the GBDT algorithm. The two models can be applied to practical teaching. Mining children's cognitive law of mathematical knowledge help teachers design reasonable psychological intervention mechanisms and improve children's cognition level.
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