DocumentCode :
1491931
Title :
Preference learning on an OSGi based home gateway
Author :
Hasan, Md Kamrul ; Ngoc, Kim Anh Pham ; Lee, Young-Koo ; Lee, Sungyoung
Author_Institution :
Ubiquitous Comput. Lab., Kyung Hee Univ., Suwon, South Korea
Volume :
55
Issue :
3
fYear :
2009
fDate :
8/1/2009 12:00:00 AM
Firstpage :
1322
Lastpage :
1329
Abstract :
The goal of ubiquitous computing is to create intelligent environment. To make the environment adapt rationally according to the desire of users, the system should be able to guess users´ interest, by learning users´ preferences. Users´ preferences are sometimes conflicting and needs to be resolved. When many users are involved in a ubiquitous environment, the decisions of one user can be affected by the desires of others. This makes learning and prediction of user preferences difficult. In this paper we prove that learning and prediction of user preference is NP-hard. So, we propose Bayesian RN-metanetwork, a multilevel Bayesian network to model user preference and priority. This is a semi optimal online learning approach. By using game theory we prove that the method we use will certainly converge after a while. We also provide implementation details of the metanetwork on an OSGi based home gateway.
Keywords :
belief networks; game theory; home computing; internetworking; learning (artificial intelligence); optimisation; ubiquitous computing; user modelling; Bayesian RN-metanetwork; NP-hard problem; OSGi-based home gateway; game theory; intelligent environment; multilevel Bayesian network; semioptimal online learning approach; ubiquitous computing; user interest; user preference learning model; user priority model; Bayesian methods; Fabrics; Game theory; Intelligent actuators; Intelligent sensors; Mood; Pervasive computing; Sensor systems; Smart homes; Ubiquitous computing; Bayesian RN-Metanetwork; Home Gateway; OSGi; Preference Learning;
fLanguage :
English
Journal_Title :
Consumer Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0098-3063
Type :
jour
DOI :
10.1109/TCE.2009.5277995
Filename :
5277995
Link To Document :
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