DocumentCode :
454264
Title :
A reinforcement self-learning model on an intelligent behavior avatar in a virtual world
Author :
Chen, Jui-Fa ; Lin, Wei-Chuan ; Bai, Hua-Sheng ; Chao, Hsiao-Chuan
Author_Institution :
Dept. of Inf. Eng., Tamkang Univ., Tamsui
Volume :
1
fYear :
2006
fDate :
5-7 June 2006
Abstract :
In this paper, a novel method for personal intelligent behavior avatar (IBA) is proposed to acquire autonomous behavior based on the interactions between user and smart objects in the virtual environment. In this method, the behavior decision model and the self-learning model are integrated by Bayesian networks and reinforcement learning. The Bayesian networks can treat interaction experiences using statistical processes, and the sureness of decision making is represented by certainty factors using stochastic reasoning. The reinforcement learning is implemented by learning experimentation or trial and error mechanisms to improve the performance of IBA through feedback. Therefore, the IBA makes a strategic decision that is approximated and appropriate to the user through the self-learning process by reinforcement learning. Finally, the feasibility of this method is investigated by imitating user´s behavior and the results of self-learning process. The results of simulation show that the method is successful in imitating user´s behavior and improving the performance of IBA
Keywords :
approximation theory; avatars; belief networks; decision making; heuristic programming; statistical analysis; unsupervised learning; Bayesian network; IBA; approximation theory; behavior decision model; learning experimentation; personal intelligent behavior avatar; reinforcement self-learning model; statistical process; stochastic reasoning; strategic decision making; Artificial intelligence; Avatars; Bayesian methods; Chaos; Decision making; Educational institutions; Information technology; Intelligent agent; Learning; Virtual environment;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Sensor Networks, Ubiquitous, and Trustworthy Computing, 2006. IEEE International Conference on
Conference_Location :
Taichung
Print_ISBN :
0-7695-2553-9
Type :
conf
DOI :
10.1109/SUTC.2006.1636185
Filename :
1636185
Link To Document :
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