Work place: School of Computer Science and Technology, Changchun University of Science and Technology, Changchun, 130022, Jilin, China
E-mail: yanl@cust.edu.cn
Website:
Research Interests: Computational Engineering, Engineering
Biography
Yan Liu received the bachelor degree of software engineering from Harbin Institute of Technology, master degree of software engineering from Shanghai Jiaotong University, received her PhD degree from School of Engineering and Innovation at The Open University, UK.
She is a Lecturer at School of Computer Science and Technology, Changchun University of Science and Technology. Her current research interests include design engineering, intelligent decision-making and knowledge acquisition.
DOI: https://doi.org/10.5815/ijmecs.2020.06.05, Pub. Date: 8 Dec. 2020
Course evaluation is a critical part of undergraduate curriculum in computer science. Most existing evaluation methods are based on questionnaire by analyzing the satisfaction rate of the respondents. However, there are many indicators such as attendance rate, activity level and average score that can reflect the overall effectiveness of the course. Limited research has taken all those indicators into account during course evaluation. This research chooses an innovative perspective that considers course evaluation as a multiple criteria decision-making problem. A hybrid model is proposed to measure the course effectiveness regarding various indicators. The indicators are first prioritized by a fuzzy Analytic Hierarchical Process (AHP) model which applies fuzzy numbers to deal with the uncertainty brought by subjective judgement. A hierarchical fuzzy inference system (FIS) is then designed to evaluate the course effectiveness, which reduces the number of the fuzzy IF-THEN rules and increases the efficiency compared to the traditional FIS. A numerical example is presented to demonstrate the application. The proposed model helps not only judge an individual course based on a comprehensive view but also rank multiple courses.
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