Analysis of Teaching Effect of Korean Education Course Based on Data Acquisition Technology.

Teaching evaluation is a comprehensive judgment of teachers' teaching effect and students' learning outcomes. It is an essential basis for comprehensive curriculum reform. There are many teaching evaluation systems for Korean majors, generally based on teachers' behavior discrimination and ignoring...

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Publicado en:Journal of Environmental & Public Health pp. 1 - 11
Autores principales: Suo, Baoli, Zhang, Tao
Formato: equations & formulas research tables/charts Journal Article
Publicado: Wiley-Blackwell 8/31/2022
Acceso en línea:Ver este registro en EBSCOhost
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      dt: 8/31/2022
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      pub: Wiley-Blackwell
      place: Malden, Massachusetts
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        10.1155/2022/2541576
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        atl: Analysis of Teaching Effect of Korean Education Course Based on Data Acquisition Technology.
      aug:
        au:
          Suo, Baoli
          Zhang, Tao
        affil: Yantai Nanshan University, Yantai, Shandong 265713, China
      sug:
        subj:
          Language
          Technology
          Educational Status
          Probability
          South Korea
      ab: Teaching evaluation is a comprehensive judgment of teachers' teaching effect and students' learning outcomes. It is an essential basis for comprehensive curriculum reform. There are many teaching evaluation systems for Korean majors, generally based on teachers' behavior discrimination and ignoring students' learning process and effect. The existing teaching evaluation system has problems such as heavy workload, slow calculation speed, and intense subjectivity. Based on the characteristics of Korean courses, this study constructs a teaching rating system for Korean courses in universities centered on language learning through data collection, correlation analysis, association rules, and other methods to optimize the student teaching evaluation index. At the same time, the machine learning algorithm is introduced into the teaching evaluation process to construct the teaching evaluation model and realize the automation of the teaching evaluation process. The weighted Bayesian incremental learning method is used to solve the cumulative problem of data acquisition samples. The experimental results show that the accuracy rate of classification using the weighted naive Bayesian algorithm to construct the model can reach 75%. Obviously, due to the traditional Bayesian algorithm and BP neural network algorithm, it is suitable for the teaching evaluation model of Korean majors. It provides a theoretical basis for the development of language education informatization.
      pubtype: Academic Journal
      doctype:
        equations & formulas
        research
        tables/charts
        Journal Article
      ougenre: Article
    language: English
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