Teaching Quality Evaluation and Software Implementation Based on ID3 Decision Tree Algorithm

Bi Yan, Song Danning
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引用次数: 0

Abstract

As a classical decision tree algorithm, ID3 selects the best test attribute based on information entropy, uses information gain as the attribute division basis, and selects the attribute with the largest information gain as the split node to generate a decision tree. ID3 algorithm is simple, clear and easy to understand, and has very high classification efficiency. This paper mainly includes three aspects. Firstly, study ID3 decision tree algorithm, including basic algorithm and algorithm improvement. Secondly, it constructs the evaluation index system of teaching quality. Thirdly, the realization of teaching quality evaluation software based on ID3 decision tree algorithm is studied, which consists of data acquisition, data preprocessing, selection of optimal features, generation of decision tree model, evaluation of decision tree model, teaching quality evaluation and visualization of evaluation results.
基于ID3决策树算法的教学质量评价及软件实现
作为一种经典的决策树算法,ID3基于信息熵选择最佳的测试属性,以信息增益作为属性划分依据,选择信息增益最大的属性作为分割节点生成决策树。ID3算法简单、清晰易懂,分类效率非常高。本文主要包括三个方面。首先,研究了ID3决策树算法,包括基本算法和算法改进。其次,构建了教学质量评价指标体系。第三,研究了基于ID3决策树算法的教学质量评价软件的实现,包括数据采集、数据预处理、最优特征的选取、决策树模型的生成、决策树模型的评价、教学质量评价和评价结果的可视化。
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