A Multi-Agent Question-Answering System for E-Learning and Collaborative Learning Environment

Author:

Alinaghi Tannaz1,Bahreininejad Ardeshir2

Affiliation:

1. Tarbiat Modares University, Iran

2. University of Malaya, Malaysia

Abstract

The increasing advances of new Internet technologies in all application domains have changed life styles and interactions. E-learning and collaborative learning environment systems are originated through such changes and aim at providing facilities for people in different times and geographical locations to cooperate, collaborate, learn and work together by using various educational services. One of the most important requirements of learners in online and virtual environments is the ability to ask questions and receive appropriate answers. The nature of such environments and the lack of physical existence of teachers make such issues critical and challenging problems. This paper presents a multi-agent system for building a question-answering system in learning management systems and collaborative learning environments. In the proposed system, after validating the content of questions, all available resources including course materials, frequently asked questions and responses from other learners will be gathered and finally using a recommender system, the most appropriate answer(s) with respect to several criteria such as learner’s knowledge, research background, history of previous questions, and the candidate answers relevant to the question will be suggested. A simplified version of the system has been implemented and integrated to a well known open source collaborative learning environment system in order to simulate and evaluate the applicability and appropriateness of the proposed system. The result shows that the proposed question-answering system may be used efficiently and expanded to accommodate further advanced capabilities.

Publisher

IGI Global

Reference36 articles.

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2. Deloach, S. A. (2001). Analysis and design using MaSE and agentTool. In Proceedings of 12th Midwest Artificial Intelligence and Cognitive Science Conference, Oxford, OH.

3. Girju, R., Rus, V., & Morarescu, P. (2000). FALCON: Boosting knowledge for answer engines. In Proceedings of the Ninth Text REtrieval Conference.

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