Combining social-based and information-based approaches for personalised recommendation on sequencing learning activities

被引:26
作者
Hummel, Hans G. K. [1 ]
van den Berg, Bert [1 ]
Berlanga, Adriana J. [1 ]
Drachsler, Hendrik [1 ]
Janssen, Jose [1 ]
Nadolski, Rob [1 ]
Koper, Rob [1 ]
机构
[1] Open Univ Netherlands OUNL, Educ Technol Expertise Ctr ETEC, Valkenburgerweg 177, NL-6419 AT Heerlen, Netherlands
关键词
Personalised Recommender Systems; PRS; collaborative filtering; sequencing; learner profile; learning technology specifications; domain model for way-finding; learning technology;
D O I
10.1504/IJLT.2007.014842
中图分类号
G40 [教育学];
学科分类号
040101 ; 120403 ;
摘要
Lifelong learners who select learning activities to attain certain learning goals need to know which are suitable and in which sequence they should be performed. Learners need support in this way-finding process, and we argue that this could be provided by using Personalised Recommender Systems (PRSs). To enable personalisation, collaborative filtering could use information about learners and learning activities, since their alignment contributes to learning efficiency. A model for way-finding presents personalised recommendations in relation to information about learning goals, learning activities and learners. A PRS has been developed according to this model, and recommends to learners the best next learning activities. Both model and system combine social-based (i.e., completion data from other learners) and information-based (i.e., metadata from learner profiles and learning activities) approaches to recommend the best next learning activity to be completed.
引用
收藏
页码:152 / 168
页数:17
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