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Enhancing the Efficiency of Massive Online Learning by Integrating Intelligent Analysis into MOOCs with an Application to Education of Sustainability

Author

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  • Chao Li

    (School of Economics and Management, Beihang University, Beijing 100191, China)

  • Hong Zhou

    (School of Economics and Management, Beihang University, Beijing 100191, China)

Abstract

Massive Open Online Courses (MOOCs) is an innovative method in modern education, especially important for autonomous study and the sharing of global excellent education resources. However, it is not easy to implement the teaching process according to the specific characters of students by MOOCs because the number of participants is huge and the teacher cannot identify the characters of students through a face to face interaction. As a new subject combined with different areas, such as economics, sociology, environment, and even engineering, the education of sustainability-related courses requires elaborate consideration of individualized teaching for students from diverse backgrounds and with different learning styles. Although the major MOOC platforms or learning management systems (LMSs) have tried lots of efforts in the design of course system and the contents of the courses for sustainability education, the achievements are still unsatisfied, at least the issue of how to effectively take into account the individual characteristics of participants remains unsolved. A hybrid Neural Network (NN) model is proposed in this paper which integrates a Convolutional Neural Networks (CNN) and with a Gated Recurrent Unit (GRU) based Recurrent Neural Networks (RNN) in an effort to detect individual learning style dynamically. The model was trained by learners’ behavior data and applied to predicting their learning styles. With identified learning style for each learner, the power of MOOC platform can be greatly enhanced by being able to offer the capabilities of recommending specific learning path and the relevant contents individually according to their characters. The efficiency of learning can thus be significantly improved. The proposed model was applied to the online study of sustainability-related course based on a MOOC platform with more than 9,400,000 learners. The results revealed that the learners could effectively increase their learning efficiency and quality for the courses when the learning styles are identified, and proper recommendations are made by using our method.

Suggested Citation

  • Chao Li & Hong Zhou, 2018. "Enhancing the Efficiency of Massive Online Learning by Integrating Intelligent Analysis into MOOCs with an Application to Education of Sustainability," Sustainability, MDPI, vol. 10(2), pages 1-16, February.
  • Handle: RePEc:gam:jsusta:v:10:y:2018:i:2:p:468-:d:131189
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    References listed on IDEAS

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    1. Kaplan, Andreas M. & Haenlein, Michael, 2016. "Higher education and the digital revolution: About MOOCs, SPOCs, social media, and the Cookie Monster," Business Horizons, Elsevier, vol. 59(4), pages 441-450.
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    6. Serdar Türkeli & Martine Schophuizen, 2019. "Decomposing the Complexity of Value: Integration of Digital Transformation of Education with Circular Economy Transition," Social Sciences, MDPI, vol. 8(8), pages 1-22, August.
    7. María Consuelo Sáiz-Manzanares & Raúl Marticorena-Sánchez & Javier Ochoa-Orihuel, 2020. "Effectiveness of Using Voice Assistants in Learning: A Study at the Time of COVID-19," IJERPH, MDPI, vol. 17(15), pages 1-20, August.
    8. Muhammad Imran & Saman Hina & Mirza Mahmood Baig, 2022. "Analysis of Learner’s Sentiments to Evaluate Sustainability of Online Education System during COVID-19 Pandemic," Sustainability, MDPI, vol. 14(8), pages 1-18, April.
    9. Cecilia Temilola Olugbara & Moeketsi Letseka & Oludayo O. Olugbara, 2021. "Multiple Correspondence Analysis of Factors Influencing Student Acceptance of Massive Open Online Courses," Sustainability, MDPI, vol. 13(23), pages 1-21, December.
    10. Ishteyaaq Ahmad & Sonal Sharma & Rajesh Singh & Anita Gehlot & Neeraj Priyadarshi & Bhekisipho Twala, 2022. "MOOC 5.0: A Roadmap to the Future of Learning," Sustainability, MDPI, vol. 14(18), pages 1-17, September.
    11. Martín Bustamante-León & Paúl Herrera & Luis Domínguez-Granda & Tammy Schellens & Peter L. M. Goethals & Otilia Alejandro & Martin Valcke, 2022. "Toward a More Personalized MOOC: Data Analysis to Identify Drinking Water Production Operators’ Learning Characteristics—An Ecuador Case," Sustainability, MDPI, vol. 14(21), pages 1-31, November.
    12. María José Sosa-Díaz & María Rosa Fernández-Sánchez, 2020. "Massive Open Online Courses (MOOC) within the Framework of International Developmental Cooperation as a Strategy to Achieve Sustainable Development Goals," Sustainability, MDPI, vol. 12(23), pages 1-23, December.
    13. Jesús Maya & Juan F. Luesia & Javier Pérez-Padilla, 2021. "The Relationship between Learning Styles and Academic Performance: Consistency among Multiple Assessment Methods in Psychology and Education Students," Sustainability, MDPI, vol. 13(6), pages 1-18, March.
    14. Bernardo Tabuenca & Marco Kalz & Ansje Löhr, 2019. "Massive Open Online Education for Environmental Activism: The Worldwide Problem of Marine Litter," Sustainability, MDPI, vol. 11(10), pages 1-16, May.
    15. Chi-Cheng Chang & Chin-Guo Kuo & Yu-Hsuan Chang, 2018. "An Assessment Tool Predicts Learning Effectiveness for Project-Based Learning in Enhancing Education of Sustainability," Sustainability, MDPI, vol. 10(10), pages 1-15, October.
    16. Ping-Huan Kuo & Chiou-Jye Huang, 2018. "An Electricity Price Forecasting Model by Hybrid Structured Deep Neural Networks," Sustainability, MDPI, vol. 10(4), pages 1-17, April.

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