DocumentCode :
2113067
Title :
Toward a Cross-Cultural and Cross-Language Multi-agent Recommendation Model for Food and Nutrition
Author :
Al-Nazer, Ahmed ; Helmy, Tarek
Author_Institution :
Inf. & Comput. Sci. Dept., King Fahd Univ. of Pet. & Miner., Dhahran, Saudi Arabia
Volume :
3
fYear :
2012
fDate :
4-7 Dec. 2012
Firstpage :
245
Lastpage :
249
Abstract :
In this paper, we present our efforts to develop a multi-agent-based framework for cross-cultural and cross-language personalized health and nutrition semantic search. Many agents that share either the same culture or same language or same health profile could share valuable information found through their semantic search. Their interests in a common viewpoint have some similarities which could be used to shorten the learning curve and give good search results effectively. Each agent is representing a user with a specific culture, language and personal health profile. What an agent likes as culture is likely similar to a different agent with the same culture. The same thing applies with language and health profiles. For example, an agent with a diabetes profile could help another agent that has a similar health profile with its valuable findings. We introduce how multi-agents could team up to contribute to each other, learn from each other, and share valuable information with each other using collaborative profile ontology. We propose a cross-cultural, cross-language, health- and nutrition-based ontology profile that could be used as the basis for collaboration between different agents.
Keywords :
cultural aspects; food technology; multi-agent systems; ontologies (artificial intelligence); recommender systems; collaborative profile ontology; cross cultural multiagent recommendation model; cross language multiagent recommendation model; cross language personalized health; diabetes profile; food; health profiles; multiagent based framework; nutrition based ontology profile; nutrition semantic search; personal health profile; Cross-culture; cross-language; food and nutrition; multi-agent; ontology; recommendation model; semantic web;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Web Intelligence and Intelligent Agent Technology (WI-IAT), 2012 IEEE/WIC/ACM International Conferences on
Conference_Location :
Macau
Print_ISBN :
978-1-4673-6057-9
Type :
conf
DOI :
10.1109/WI-IAT.2012.263
Filename :
6511686
Link To Document :
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