Personalized Travel Recommendation System Using an Ontology

Author(s):  
Hansika Gunasekara ◽  
Thushari Silva
IJARCCE ◽  
2017 ◽  
Vol 6 (4) ◽  
pp. 358-360
Author(s):  
Prof Gatade D.D. ◽  
Sanket Jain ◽  
Jay Chandarana ◽  
Richa Mahajan ◽  
Shweta More

2021 ◽  
Vol 4 (3) ◽  
pp. 139-154
Author(s):  
Paromita Nitu ◽  
Joseph Coelho ◽  
Praveen Madiraju

2018 ◽  
Vol 7 (2) ◽  
pp. 772
Author(s):  
Shree Laddha ◽  
Shailendra Aote

The major objective of any Travel Recommendation System is to recommend its users to visit the most suitable place in according to the selected location. We present this system of travel recommendation from the experiences of the previously visited users of that location. Apart from the existing systems, our approach not only limited to users traveling interest but also recommends a travel sequence. Our sys-tem also suggest best visiting time, most suitable season, preference of visiting the nearby places and traveling route to reach to your desired location. Here the user can create his friend list and can share his experience of visit to his friends. This user given experience is taken as a feedback by the system to update his recommendations.


2021 ◽  
Vol 2021 ◽  
pp. 1-11
Author(s):  
HongYan Liang

Actual tourism mining models are often used to discover potential information in documents, but tourism models without human knowledge often produce unexplainable topics. This paper combines big data technology to build a personalized recommendation system for smart tourism, model the contextual information usage ontology under the tourism information system, and give the association between various ontologies. Then, this paper uses a matrix to describe each discrete attribute and interval attribute and uses a vector to model the user’s preferences. In addition, this paper constructs an intelligent recommendation system based on the actual needs of travel recommendation and verifies the system in combination with experimental research. Through experimental analysis, it can be known that the intelligent tourism personalized recommendation system based on big data technology proposed in this paper has a high practical effect.


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