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Application of Machine Learning in the Evaluation Model of Scientific Research Performance of Teachers

机译:机器学习在教师科研表现评价模型中的应用

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Due to the small number of scientific research evaluation indicators of college teachers, the mathematical model of evaluation is uncertain and the subjective process of the evaluation process is too strong, this paper proposes a model of university teachers' scientific research performance evaluation based on machine learning. The evaluation model uses the neighborhood rough set to reduce the index of the evaluation index and form the decision table as the input data of the support vector machine algorithm, which reduces the dimension of the sample data and improves the training speed of the evaluation model. The particle swarm optimization algorithm is used to optimize the parameter search of the support vector machine algorithm, which improves the prediction accuracy of the evaluation model. Finally, the feasibility and practicability of the scientific research performance evaluation model based on machine learning are proved through experiments.
机译:由于大学教师的少数科研评估指标,评价的数学模型是不确定的,评价过程的主观过程太大,本文提出了基于机器学习的大学教师科研绩效评估模型。评估模型使用邻域粗糙集来减少评估索引的索引,并将决定表作为支持向量机算法的输入数据,这降低了样本数据的维度并提高了评估模型的训练速度。粒子群优化算法用于优化支持向量机算法的参数搜索,这提高了评估模型的预测精度。最后,通过实验证明了基于机器学习的科学研究性能评估模型的可行性和实用性。

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