DocumentCode :
2865804
Title :
One-to-One Complementary Collaborative Learning Based on Blue-Red Trees and Performance Analysis for Social Network
Author :
Chen, Yung-Hui ; Deng, Lawrence Y. ; Yen, Shwu-Huey ; Hsu, Wu-Hsiao ; Kao, Bruce C. ; Haieh, Yu-Che
Author_Institution :
Dept. of Comput. Inf. & Network Eng., Lunghwa Univerisity of Sci. & Technol., Taoyuan, Taiwan
fYear :
2011
fDate :
3-4 July 2011
Firstpage :
83
Lastpage :
88
Abstract :
In this paper, we used the Rule-Space Model to infer reasonable learning effects represented as Blue-Red trees and their definitions by analyzing all learning objects of courses within a system. We can derive nine learning groups of social network grouping algorithms and classify particular Blue-Red trees that belong to a specific learning group from previous definitions. An example for a course with the Rule-Space Model analysis of learning objects is illustrated and proved. From this example, thirty-six learning effects as Blue-Red trees can be created that are grouped under nine learning groups of social network, and inferred one-to-one complementary collaborative learning group algorithms of strong learning. Thus, the algorithms within the system will recommend those specific Blue-Red trees that satisfy one-to-one complementary collaborative learning group of strong learning and analyze these learning performances of all Blue-Red trees. They will be the basis of verification for one-to-one complementary collaborative learning.
Keywords :
computer aided instruction; groupware; learning (artificial intelligence); social networking (online); trees (mathematics); blue-red trees; inferreasonable learning effects; learning object; one-to-one complementary collaborative learning group algorithm; rule-space model analysis; social network grouping algorithms; social network performance analysis; Algorithm design and analysis; Analytical models; Collaborative work; Education; Knowledge engineering; Large scale integration; Social network services; Blue-Red Tree; Collaborative Learning; Complementary Collaborative Learning Group; Rule-Space Model; Social Network;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Ubi-Media Computing (U-Media), 2011 4th International Conference on
Conference_Location :
Sao Paulo
Print_ISBN :
978-1-4577-1174-9
Electronic_ISBN :
978-0-7695-4493-9
Type :
conf
DOI :
10.1109/U-MEDIA.2011.25
Filename :
5992050
Link To Document :
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