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Building a Smart E-Portfolio Platform for Optimal E-Learning Objects Acquisition

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  • Chih-Kun Ke
  • Kai-Ping Liu
  • Wen-Chin Chen

Abstract

In modern education, an e-portfolio platform helps students in acquiring e-learning objects in a learning activity. Quality is an important consideration in evaluating the desirable e-learning object. Finding a means of determining a high quality e-learning object from a large number of candidate e-learning objects is an important requirement. To assist student learning in a modern e-portfolio platform, this work proposed an optimal selection approach determining a reasonable e-learning object from various candidate e-learning objects. An optimal selection approach which uses advanced information techniques is proposed. Each e-learning object undergoes a formalization process. An Information Retrieval (IR) technique extracts and analyses key concepts from the student’s previous learning contexts. A context-based utility model computes the expected utility values of various e-learning objects based on the extracted key concepts. The expected utility values of e-learning objects are used in a multicriteria decision analysis to determine the optimal selection order of the candidate e-learning objects. The main contribution of this work is the demonstration of an effective e-learning object selection method which is easy to implement within an e-portfolio platform and which makes it smarter.

Suggested Citation

  • Chih-Kun Ke & Kai-Ping Liu & Wen-Chin Chen, 2013. "Building a Smart E-Portfolio Platform for Optimal E-Learning Objects Acquisition," Mathematical Problems in Engineering, Hindawi, vol. 2013, pages 1-8, November.
  • Handle: RePEc:hin:jnlmpe:896027
    DOI: 10.1155/2013/896027
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