DocumentCode :
34842
Title :
Intelligent Computer-Aided Instruction Modeling and a Method to Optimize Study Strategies for Parallel Robot Instruction
Author :
Da-Peng Tan ; Shi-Ming Ji ; Ming-Sheng Jin
Author_Institution :
Key Lab. of E&M, Zhejiang Univ. of Technol., Hangzhou, China
Volume :
56
Issue :
3
fYear :
2013
fDate :
Aug. 2013
Firstpage :
268
Lastpage :
273
Abstract :
Parallel robots are known for their strong bearing capability and high kinematic accuracy, but they are relatively difficult to design and to teach. This paper addresses this difficulty by presenting an intelligent computer-aided instruction (ICAI) modeling method for parallel robot instruction. The paper analyzes, with reference to their incoming educational profile, Mechatronics students´ cognitive processes while acquiring knowledge of parallel robots; it also compares the educational benefits of various methods of teaching this topic. The ICAI model for teaching parallel robots is rooted in machine learning, using information fusion methods based on an artificial neural network (ANN). Two terms of using the ICAI model have validated the method´s effectiveness in teaching parallel robots, providing a rational study strategy and improving the students´ learning process.
Keywords :
cognition; computer aided instruction; control engineering education; learning (artificial intelligence); mechatronics; neural nets; optimisation; robot kinematics; teaching; ANN; ICAI model; artificial neural network; bearing capability; educational profile; information fusion methods; intelligent computer-aided instruction modeling; kinematic accuracy; knowledge acquisition; machine learning; mechatronic student cognitive process; parallel robot instruction; student learning process; study strategy optimization; teaching method; Computational modeling; Computer aided instruction; Educational robots; Optimization; Parallel robots; Intelligent computer-aided instruction (ICAI); modeling method; parallel robots; study strategy optimization;
fLanguage :
English
Journal_Title :
Education, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9359
Type :
jour
DOI :
10.1109/TE.2012.2212707
Filename :
6280605
Link To Document :
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