DocumentCode :
703751
Title :
Learning object recommendation for an effective open e-learning environment
Author :
Venkataraman, Ganesh ; Ravichandran, Arunkumar ; Srinivasan, Chellam ; Elias, Susan ; Ramesh, Lakshimi Prabha
Author_Institution :
Sri Venkateswara Coll. of Eng., Sriperumbudur, India
fYear :
2015
fDate :
19-21 Feb. 2015
Firstpage :
1
Lastpage :
5
Abstract :
Over the past few years, with the exponential expansion of the World Wide Web and its applications, there has been a paradigm shift in the way people learn - Massively Open Online Courses (MOOCs) and other online learning recourses are fast replacing conventional textbook learning. Efforts are also being made to develop and foster crowd sourced massive open repositories of learning objects, which can be tapped to author courses for diverse learners with varied backgrounds dynamically. While this can be done by adopting different systems and architectures, its effectiveness calls for a collaborative approach of learning object recommendation, driven by the learner´s learning preferences. A course is basically authored based on the learner´s requirements by retrieving learning objects that have high aptness to the particular subject/course and high collaborative-predicted rating which signifies high relation to the user´s learning preferences. The learner rates the content after working on the learning object and this rating is used to learn the aptness and the learner´s preferences.
Keywords :
Internet; computer aided instruction; MOOC; World Wide Web; collaborative approach; crowd sourced massive open repositories; diverse learners; effective open e-learning environment; high collaborative-predicted rating; learner requirements; learning object recommendation; learning objects; learning preferences; massively open online courses; online learning recourses; Decision support systems; Collaborative recommendation; Learning object recommendation; Open E-Learning; preference based clustering;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing, Informatics, Communication and Energy Systems (SPICES), 2015 IEEE International Conference on
Conference_Location :
Kozhikode
Type :
conf
DOI :
10.1109/SPICES.2015.7091526
Filename :
7091526
Link To Document :
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