Design of Foreign Language Teachers' Teaching Language Teaching Evaluation Model Based on Association Mining

Liping Huang
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Abstract

In order to improve the quality of foreign language teachers' teaching evaluation, a teaching language teaching evaluation model based on association rule mining is proposed, which combines the data analysis method with the optimization design of the teaching language quantitative evaluation model. A time series analysis model of the statistical data flow of foreign language teachers' teaching language teaching evaluation is constructed, and the data structure of foreign language teachers' teaching language evaluation is analyzed. The phase space of the statistical data of foreign language teaching evaluation is reconstructed, and the association rule feature of foreign language teacher teaching language teaching evaluation is extracted in the reconstructed phase space. The extracted features are used as the clustering center for information fusion and the adaptive regression analysis is used to realize the optimal design of the teaching evaluation model. The simulation results show that this method can improve the accuracy of teaching evaluation of foreign language teachers, and the whole evaluation process has good convergence and strong anti-interference ability.
基于关联挖掘的外语教师教学评价模型设计
为了提高外语教师教学评价的质量,提出了一种基于关联规则挖掘的教学语言教学评价模型,该模型将数据分析方法与教学语言定量评价模型的优化设计相结合。构建了外语教师教学语言评价统计数据流的时间序列分析模型,分析了外语教师教学语言评价的数据结构。重构外语教学评价统计数据的相空间,并在重构相空间中提取外语教师教学语言教学评价的关联规则特征。将提取的特征作为聚类中心进行信息融合,利用自适应回归分析实现教学评价模型的优化设计。仿真结果表明,该方法可以提高外语教师教学评价的准确性,整个评价过程具有良好的收敛性和较强的抗干扰能力。
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