Practices and Challenges of Artificial Intelligence-Assisted Teaching in Vocational Undergraduate Public English Classrooms

被引:0
|
作者
Wang, Yanhua [1 ]
Cui, Cui [2 ,3 ]
机构
[1] General Education School, Jinhua Polytechnic, Zhejiang, Jinhua,321017, China
[2] College of Foreign Languages and Literature, Fudan University, Shanghai,200433, China
[3] School of Foreign Languages, Wuhan City Polytechnic, Wuhan, Hubei,430064, China
关键词
Artificial intelligence - Distribution functions - Teaching;
D O I
10.2478/amns-2024-1873
中图分类号
学科分类号
摘要
This paper first introduces the architecture of the natural language processing system and then analyzes how natural language processing decomposes the probability distribution function by multi-factor form and Bayesian formula to improve the efficiency of function description. Then, NLM is applied to enhance the statistical coefficients of the N-gram model, which solves the problems of data sparsity and dimensionality disaster. By using natural language understanding in English teaching practice and experimenting with the teaching effect, it was found that the overall English achievement of the experimental group increased by 5.4 points, the average Z-score reached more than 3 points, and 96.6% of the students were interested in the teaching method. The new teaching method is demonstrated to have a significant impact on the improvement of English scores. © 2024 Yanhua Wang et al., published by Sciendo.
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