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March 13, 2026International Journal of Continuing Engineering Education and Life-Long Learning0 citations

An evaluation method of ChatGPT intervention in online course teaching effectiveness based on principal component regression analysis

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HWHao WangHWHaibin WangSLSansan Li

Key Points

  • To develop an enhanced evaluation method for ChatGPT's effectiveness in online teaching, addressing limitations of existing methods.
  • Developed a new evaluation index system using principal component regression analysis.
  • Clustered evaluation index data via Gaussian mixture model.
  • Applied RBF neural network to derive evaluation results.
  • Achieved a maximum recall rate of 98.74% in evaluation indicators.
  • Minimum screening time recorded at 1.28 seconds.
  • Evaluation accuracy ranged from 63.8% to 85.8%.

Abstract

In order to overcome the limitations of low recall rate and low accuracy of evaluation indicators in traditional online course teaching effectiveness evaluation methods, a new evaluation method of ChatGPT intervention in online course teaching effectiveness using principal component regression analysis is proposed. Principal component regression analysis is adopted to screen evaluation indicators to establish an evaluation index system for ChatGPT intervention in online course teaching effectiveness. The evaluation index data is clustered using Gaussian mixture model, and then input into RBF neural network to obtain the evaluation results of ChatGPT intervention in online course teaching effectiveness. The experimental results show that the proposed method achieves a maximum recall rate of 98.74% in evaluation indicates, a minimum screening time of 1.28 seconds, and evaluation accuracy ranging from 63.8% to 85.8%.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69b3acf302a1e69014ccf141https://doi.org/10.1504/ijceell.2026.152141
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